Biology:Biodiversity loss
This article may contain an excessive number of citations. (March 2026) (Learn how and when to remove this template message) |

Biodiversity loss happens when species disappear completely from Earth (extinction) or when there is a decrease or disappearance of species in a specific area. Biodiversity loss means that there is a reduction in biological diversity in a given area. The decrease can be temporary or permanent.[2] It is temporary if the damage that led to the loss is reversible in time, for example through ecological restoration.[2] [3]If this is not possible, then the decrease is permanent. The cause of most of the biodiversity loss is, generally speaking, human activities that push the planetary boundaries too far.[1][4][5] These activities include habitat destruction[6] (for example deforestation) and land use intensification (for example monoculture farming).[7][8] Further problem areas are air and water pollution (including nutrient pollution), over-exploitation, invasive species[9] and climate change.[6]
Many scientists, along with the Global Assessment Report on Biodiversity and Ecosystem Services, say that the main reason for biodiversity loss is a growing human population because this leads to human overpopulation and excessive consumption.[10][11][12][13][14] Others disagree, saying that loss of habitat is caused mainly by "the growth of commodities for export" and that population has very little to do with overall consumption. More important are wealth disparities between and within countries.[15] In any case, all contemporary biodiversity loss has been attributed to human activities.[16]
Climate change is another threat to global biodiversity.[17][18] For example, coral reefs—which are biodiversity hotspots—will be lost by the year 2100 if global warming continues at the current rate.[19][20] Additionally, the change of temperatures are likely to increase fire activity driving events such as forest fires.[21] Still, it is the general habitat destruction (often for expansion of agriculture)[22], not climate change, that is currently the bigger driver of biodiversity loss.[23][24] Invasive species and other disturbances have become more common in forests in the last several decades. These tend to be directly or indirectly connected to climate change and can cause a deterioration of forest ecosystems.[25][26]
Groups that care about the environment have been working for many years to stop the decrease in biodiversity. Nowadays, many global policies include activities to stop biodiversity loss. For example, the UN Convention on Biological Diversity aims to prevent biodiversity loss and to conserve wilderness areas. However, a 2020 United Nations Environment Programme report found that most of these efforts had failed to meet their goals.[27] For example, of the 20 biodiversity goals laid out by the Aichi Biodiversity Targets in 2010, only six were "partially achieved" by 2020.[28][29]
This ongoing global extinction is also called the holocene extinction or sixth mass extinction.
Global estimates across all species

The current rate of global biodiversity loss is estimated to be 100 to 1000 times higher than the (naturally occurring) background extinction rate, faster than at any other time in human history,[30][31][32] and is expected to grow in the upcoming years.[33][34][35] The fast-growing extinction trends of various animal groups like mammals, birds, reptiles, amphibians, and fish have led scientists to declare a current biodiversity crisis in both land and ocean ecosystems.[36][37][38]
In 2006, many more species were formally classified as rare or endangered or threatened; moreover, scientists have estimated that millions more species are at risk that have not been formally recognized.[39] There is also evidence showing that species which are not formally recognized are at greater risk of extinction.[40]
Deforestation also plays a large role in biodiversity loss. More than half of the world's biodiversity is hosted in tropical rainforest.[41] Regions that are subjected to exponential loss of biodiversity are referred to as biodiversity hotspots.[42] Since 1988 the hotspots increased from 10 to 34. Of the total 34 hotspots currently present, 16 of them are in tropical regions (as of 2006).[43] Researchers have noted in 2006 that only 2.3% of the world is covered with biodiversity loss hotspots, and even though only a small percentage of the world is covered in hotspots, it host a large fraction (50%) of vascular plant species.[43]
In 2021, about 28 percent of the 134,400 species assessed using the IUCN Red List criteria are now listed as threatened with extinction[44]—a total of 37,400 species compared to 16,119 threatened species in 2006.[45]
A 2022 study that surveyed more than 3,000 experts found that "global biodiversity loss and its impacts may be greater than previously thought", and estimated that roughly 30% of species "have been globally threatened or driven extinct since the year 1500."[46][47]
Research published in 2023 found that, out of 70,000 species, about 48% are facing decreasing populations due to human activities, while only 3% are seeing an increase in populations.[48][49][50]
Methods to quantify loss
Biologists define biodiversity as the "totality of genes, species and ecosystems of a region".[51][52] To measure biodiversity loss rates for a particular location, scientists record the species richness and its variation over time in that area. In ecology, local abundance is the relative representation of a species in a particular ecosystem.[53] It is usually measured as the number of individuals found per sample. The ratio of abundance of one species to one or multiple other species living in an ecosystem is called relative species abundance.[53] Both indicators are relevant for computing biodiversity.
There are many different biodiversity indexes.[54] These investigate different scales and time spans.[55] Biodiversity has various scales and subcategories (e.g. phylogenetic diversity, species diversity, genetic diversity, nucleotide diversity).[55]
The question of net loss in confined regions is often a matter of debate.[56]
Observations by type of life
Wildlife in general

An October 2020 analysis by Swiss Re found that one-fifth of all countries are at risk of ecosystem collapse as the result of anthropogenic habitat destruction and increased wildlife loss.[59][60] If these losses are not reversed, a total ecosystem collapse could ensue.[61]
In 2022, the World Wildlife Fund reported[62][63] an average population decline of 68% between 1970 and 2016 for 4,400 animal species worldwide, encompassing nearly 21,000 monitored populations.[64]
Terrestrial invertebrates
Insects
Earthworms
Scientists have studied loss of earthworms from several long-term agronomic trials. They found that relative biomass losses of minus 50–100% (with a mean of minus 83%) match or exceed those reported for other faunal groups.[65] Thus it is clear that earthworms are similarly depleted in the soils of fields used for intensive agriculture.[65] Earthworms play an important role in ecosystem function,[65] helping with biological processing in soil, water, and even greenhouse gas balancing.[66] There are five reasons for the decline of earthworm diversity: "(1) soil degradation and habitat loss, (2) climate change, (3) excessive nutrient and other forms of contamination load, (4) over-exploitation and unsustainable management of soil, and (5) invasive species".[66][67] Factors like tillage practices and intensive land use decimate the soil and plant roots that earthworms use to create their biomass.[68] This interferes with carbon and nitrogen cycles.
Knowledge of earthworm species diversity is quite limited as not even 50% of them have been described.[66] Sustainable agriculture methods could help prevent earthworm diversity decline, for example reduced tillage.[66]: 32 The Secretariat of the Convention on Biological Diversity is trying to take action and promote the restoration and maintenance of the many diverse species of earthworms.[66]
Amphibians
Wild mammals
Birds
Some pesticides, like insecticides, likely play a role in reducing the populations of specific bird species.[69] According to a study funded by BirdLife International, 51 bird species are critically endangered and eight could be classified as extinct or in danger of extinction.[70] Nearly 30% of extinction is due to hunting and trapping for the exotic pet trade. Deforestation, caused by unsustainable logging and agriculture, could be the next extinction driver, because birds lose their habitat and their food.[71][72]
Plants
Trees
While plants are essential for human survival, they have not received the same attention as the conservation of animals.[73] It is estimated that a third of all land plant species are at risk of extinction and 94% have yet to be evaluated in terms of their conservation status.[73] Plants existing at the lowest trophic level require increased conservation to reduce negative impacts at higher trophic levels.[74][75]
In 2022, scientists warned that a third of tree species are threatened with extinction. This will significantly alter the world's ecosystems because their plant responses, carbon, water and nutrient cycles will be affected.[76][77][78] Forest areas are degraded due to common factors such as logging, fire, and firewood harvesting.[79] Especially with forest fires and its increases, it will affect biomass recovery and affect species composition as well.[80] The Global Tree Assessment (GTA) has determined that "17,510 (29.9%) tree species are considered threatened with extinction. In addition, there are 142 tree species recorded as Extinct or Extinct in the Wild."[77]
Possible solutions can be found in some silvicultural methods of forest management that promote tree biodiversity, such as selective logging, thinning or crop tree management, and clear cutting and coppicing.[81] Without solutions, secondary forests recovery in species richness can take 50 years to recover the same amount as the primary forest, or 20 years to recover 80% of species richness.[82]
Flowering plants
Freshwater species
Freshwater ecosystems such as swamps, deltas, and rivers make up 1% of earth's surface. They are important because they are home to approximately one third of vertebrate species.[83] Freshwater species are beginning to decline at twice the rate of species that live on land or in the ocean. This rapid loss has already placed 27% of 29,500 species dependent on fresh water on the IUCN Red List.[83]
Global populations of freshwater fish are collapsing due to water pollution and overfishing.[84] Migratory fish populations have declined by 76% since 1970, and large "megafish" populations have fallen by 94% with 16 species declared extinct in 2020.[85]
Marine species
Marine biodiversity encompasses any living organism that resides in the ocean or in estuaries.[86] By 2018, approximately 240,000 marine species had been documented.[87] But many marine species—estimates range between 178,000 and 10 million oceanic species—remain to be described.[86] It is therefore likely that a number of rare species (not seen for decades in the wild) have already disappeared or are on the brink of extinction, unnoticed.[88]
Human activities have a strong and detrimental influence on marine biodiversity. The main drivers of marine species extinction are habitat loss, pollution, invasive species, and overexploitation.[89][90] Greater pressure is placed on marine ecosystems near coastal areas because of the human settlements in those areas.[91][92]
Overexploitation has resulted in the extinction of over 25 marine species. This includes seabirds, marine mammals, algae, and fish.[86][93] Examples of extinct marine species include Steller's sea cow (Hydrodamalis gigas) and the Caribbean monk seal (Monachus tropicalis). Not all extinctions are because of humans. For example, in the 1930s, the eelgrass limpet (Lottia alveus) became extinct in the Atlantic once the Zostera marina seagrass population declined upon exposure to a disease.[94] The Lottia alveus were greatly impacted because the Zostera marina were their sole habitats.[86]
Causes
The main causes of current biodiversity loss are:
- Habitat loss, fragmentation and degradation;[6] for example habitat fragmentation for commercial and agricultural uses (specifically monoculture farming)[7]
- Land use intensification (and ensuing land loss/habitat loss); a significant factor in loss of ecological services due to direct effects as well as biodiversity loss[8]
- Nutrient pollution and other forms of pollution (air and water pollution)
- Overexploitation and unsustainable use (for example unsustainable fishing methods, overfishing, overconsumption and human overpopulation)
- Invasive species that effectively compete for a niche, replacing indigenous species[9]
- Climate change (e.g. extinction risk from climate change, effects of climate change on plant biodiversity)[6]
Jared Diamond describes an "Evil Quartet" of habitat destruction, overkill, introduced species and secondary extinctions.[95] Edward O. Wilson suggested the acronym HIPPO for the main causes of biodiversity loss: Habitat destruction, Invasive species, Pollution, human over-Population and Over-harvesting.[96][97]
Habitat destruction


For example, habitat loss is one of the causes in the decline of insect populations (see the section below on insects).
Urban growth and habitat fragmentation
The direct effects of urban growth on habitat loss are well understood: building construction often results in habitat destruction and fragmentation.[98] This leads to selection for species that are adapted to urban environments.[99] Small habitat patches cannot support the level of genetic or taxonomic diversity they formerly could while some more sensitive species may become locally extinct.[100] Species abundance populations are reduced due to the reduced fragmented area of habitat. This causes an increase of species isolation and forces species toward edge habitats and to adapt to foraging elsewhere.[98] Additionally, edge effects often result in altered light, temperature, and humidity conditions that change vegetation structure and microhabitat suitability, further reducing biodiversity in fragmented urban patches.[101] Urban environments also favor fast-reproducing, mobile species, contributing to biotic homogenization and the global decline of ecological uniqueness.[102]
Infrastructure development in Key Biodiversity Areas (KBA) is a major driver of biodiversity loss, with infrastructure present in roughly 80% of KBAs.[103] Infrastructure development leads to conversion and fragmentation of natural habitat, pollution and disturbance. There can also be direct harm to animals through collisions with vehicles and structures. This can have impacts beyond the infrastructure site.[103] For example, chronic noise from roads can interfere with bird song used in mating and territory defense, reducing reproductive success.[104] Artificial lighting can disrupt nocturnal foraging patterns, predator-prey interactions, and migratory navigation in species such as bats, amphibians, and sea turtles.[105] Infrastructure can also create ecological traps, where animals are drawn to altered environments that ultimately reduce their fitness or survival. Furthermore, road mortality and bird collisions with buildings and power lines cause direct harm to wildlife, with cascading impacts across trophic levels. These impacts often extend well beyond the development footprint and may disrupt landscape connectivity critical for migration and climate adaptation. Fragmented landscapes also impede species' range shifts in response to climate change, making it harder for populations to track suitable environmental conditions and increasing extinction risk.[106]
Land use intensification
Humans are changing the uses of land in various ways, and each can lead to habitat destruction and biodiversity loss. The 2019 Global Assessment Report on Biodiversity and Ecosystem Services found that industrial agriculture is the primary driver of biodiversity collapse.[107][10] The UN's Global Biodiversity Outlook 2014 estimated that 70% of the projected loss of terrestrial biodiversity is caused by agriculture use.[needs update]This is supported by more recent findings from the 2022 Global Land Outlook report by the UN Convention to Combat Desertification, which states that over 50% of agricultural land is moderately or severely degraded.[108] According to a 2005 publication, "Cultivated systems [...] cover 24% of Earth's surface".[109]: 51 The publication defined cultivated areas as "areas in which at least 30% of the landscape is in croplands, shifting cultivation, confined livestock production, or freshwater aquaculture in any particular year".[109]: 51 As of 2023, approximately 38% of the Earth's terrestrial surface is used for agriculture, including grazing and crop production, making it the dominant land use globally.[110]
More than 17,000 species are at risk of losing habitat by 2050 as agriculture continues to expand to meet future food needs (as of 2020).[111] A global shift toward largely plant-based diets would free up land to allow for the restoration of ecosystems and biodiversity.[112] In the 2010s over 80% of all global farmland was used to rear animals.[112] Recent FAO data shows that livestock systems occupy about 77% of agricultural land while providing less than 20% of the global calorie supply — highlighting an imbalance between land use and nutritional output.[113]
As of 2022, 44% of Earth's land area required conservation attention, which may include declaring protected areas and following land-use policies.[114] Additionally, a 2023 analysis in Science Advances concluded that at least 30% of land must be actively protected and ecologically restored by 2030 to meet global biodiversity goals, aligning with the Kunming-Montreal Global Biodiversity Framework agreed upon at COP15.[115]
Nutrient pollution and other forms of pollution
Air pollution

Air pollution adversely affects biodiversity.[116][117] Pollutants are emitted into the atmosphere by the burning of fossil fuels and biomass, for example. Industrial and agricultural activity releases the pollutants sulfur dioxide and nitrogen oxides.[118] Once sulfur dioxide and nitrogen oxide are introduced into the atmosphere, they can react with cloud droplets (cloud condensation nuclei), raindrops, or snowflakes, forming sulfuric acid and nitric acid. With the interaction between water droplets and sulfuric and nitric acids, wet deposition occurs and creates acid rain.[119][120]
A 2009 review studied four air pollutants (sulfur, nitrogen, ozone, and mercury) and several types of ecosystems.[121] Air pollution affects the functioning and biodiversity of terrestrial as well as aquatic ecosystems.[121][122] For example, "air pollution causes or contributes to acidification of lakes, eutrophication of estuaries and coastal waters, and mercury bioaccumulation in aquatic food webs".[121]
Noise pollution
Noise generated by traffic, ships, vehicles, and aircraft can affect the survivability of wildlife species and can reach undisturbed habitats.[123] Noise pollution is common in marine ecosystems, affecting at least 55 marine species.[124] One study found that as seismic noises and naval sonar increases in marine ecosystems, cetacean diversity decreases (including whales and dolphins).[125] Multiple studies have found that fewer fishes, such as cod, haddock, rockfish, herring, sand seal, and blue whiting, have been spotted in areas with seismic noises, with catch rates declining by 40–80%.[124][126][127][128]
Noise pollution has also altered avian communities and diversity. Noise can reduce reproductive success, minimize nesting areas, increase stress response, and reduce species abundance.[129][124] Noise pollution can alter the distribution and abundance of prey species, which can then impact predator populations.[130]
Pollution from fossil fuel extraction

Fossil fuel extraction and associated oil and gas pipelines have major impacts on the biodiversity of many biomes due to land conversion, habitat loss and degradation, and pollution.[132] An example is the Western Amazon region.[133] Exploitation of fossil fuels there has had significant impacts on biodiversity.[131] As of 2018, many of the protected areas with rich biodiversity were in areas containing unexploited fossil fuel reserves worth between $3 and $15 trillion.[131] The protected areas may be under threat in future.
Overexploitation
Continued overexploitation can lead to the destruction of the resource, as it will be unable to replenish.[12][134] The term applies to natural resources such as water aquifers, grazing pastures and forests, wild medicinal plants, fish stocks and other wildlife.
Overfishing


A 2019 Intergovernmental Science-Policy Platform on Biodiversity and Ecosystem Services report found that overfishing is the main driver of mass species extinction in oceans.[136][137] Overfishing has reduced fish and marine mammal biomass by 60% since the 1800s.[138] It is currently pushing over one-third of sharks and rays toward extinction.[139]
Many commercial fishes have been overharvested: a 2020 FAO report classified as overfished 34% of the fish stocks of the world's marine fisheries.[140] By 2020, global fish populations had declined 38% since 1970.[87]
Many regulatory measures are available for controlling overfishing. These include fishing quotas, bag limits, licensing, closed seasons, size limits, and the creation of marine reserves and other marine protected areas.
Human overpopulation and overconsumption

The world's population numbered nearly 7.6 billion as of mid-2017 and is forecast to peak toward the end of the 21st century at 10–12 billion people.[142] Scholars have argued that population size and growth, along with overconsumption, are significant factors in biodiversity loss and soil degradation.[143][144] Review articles, including the 2019 IPBES report, have also noted that human population growth and overconsumption are significant drivers of species decline.[10][11] A 2022 study warned that conservation efforts will continue to fail if the primary drivers of biodiversity loss continue to be ignored, including population size and growth.[12]
Other scientists have criticized the assertion that population growth is a key driver for biodiversity loss.[15] They argue that the main driver is the loss of habitat, caused by "the growth of commodities for export, particularly soybean and oil-palm, primarily for livestock feed or biofuel consumption in higher income economies."[15] Because of the wealth disparities between countries, there is a negative correlation between a country's total population and its per capita footprint. On the other hand, the correlation between a country's GDP and its footprint is strong.[15] The study argues that population as a metric is unhelpful and counterproductive for tackling environmental challenges.[15]
Invasive species
The term invasive is poorly defined and often very subjective.[145] The European Union defines invasive alien species as those outside their natural distribution area that threaten biological diversity.[146][147] Biotic invasion is considered one of the five top drivers of global biodiversity loss and is increasing because of tourism and globalization.[148][149] This may be particularly true in poorly regulated fresh water systems, though quarantines and ballast water rules have improved the situation.[109]
Invasive species may drive local native species to extinction via competitive exclusion, niche displacement, or hybridisation with related native species. Therefore, alien invasions may result in extensive changes in the structure, composition and global distribution of the biota at sites of introduction. This leads to the homogenisation of the world's fauna and flora and biodiversity loss.[150][151]
Climate change

Climate change is another threat to global biodiversity.[17][18][153] It has changed rapidly due to human activities, such as burning fossil fuels and release of methane gas and pollution.[154] Recent studies have found that global surface temperatures are expected to increase due to atmospheric carbon dioxide levels.[155] But habitat destruction, e.g., for the expansion of agriculture, is currently a more significant driver of biodiversity loss.[23][24][156]
A 2021 collaborative report by scientists from the IPBES and the IPCC found that biodiversity loss and climate change must be addressed simultaneously, as they are inextricably linked and have similar effects on human well-being.[157] In 2022, Frans Timmermans, Vice-President of the European Commission, said that people are less aware of the threat of biodiversity loss than they are of the threat of climate change.[158]
The interaction between climate change and invasive species is complex and not easy to assess. Climate change is likely to favour some invasive species and harm others,[159] but few authors have identified specific consequences of climate change for invasive species.[160]
Invasive species and other disturbances have become more common in forests in the last several decades. These tend to be directly or indirectly connected to climate change and have negative consequences for forest ecosystems.[25][26]
Extinction risks
Impacts
On ecosystems
Biodiversity loss has bad effects on the functioning of ecosystems.[161]This in turn affects humans,[54] because affected ecosystems can no longer provide the same quality of ecosystem services, such as crop pollination, cleaning air and water, decomposing waste, and providing forest products as well as areas for recreation and tourism.[109][162]
Two key statements of a 2012 comprehensive review of the previous 20 years of research include:[54]
- "There is now unequivocal evidence that biodiversity loss reduces the efficiency by which ecological communities capture biologically essential resources, produce biomass, decompose and recycle biologically essential nutrients"; and
- "Impacts of diversity loss on ecological processes might be sufficiently large to rival the impacts of many other global drivers of environmental change"
Permanent global species loss (extinction) is a more dramatic phenomenon than regional changes in species composition. But even minor changes from a healthy stable state can have a dramatic influence on the food web and the food chain, because reductions in one species can adversely affect the entire chain (coextinction). This can lead to an overall reduction in biodiversity, unless alternative stable states of the ecosystem are possible.[163]
For example, a study on grasslands used manipulated grassland plant diversity and found that ecosystems with higher biodiversity show more resistance of their productivity to climate extremes.[164]
On food and agriculture

In 2019, the UN's Food and Agriculture Organization (FAO) produced its first report on The State of the World's Biodiversity for Food and Agriculture. It warned that "Many key components of biodiversity for food and agriculture at genetic, species and ecosystem levels are in decline."[165][166]
The report also said, "Many of the drivers that have negative impacts on BFA (biodiversity for food and agriculture), including overexploitation, overharvesting, pollution, overuse of external inputs, and changes in land and water management, are at least partially caused by inappropriate agricultural practices"[167]: 6 and "transition to intensive production of a reduced number of species, breeds and varieties, remain major drivers of loss of BFA and ecosystem services."[167]: 6
To reduce biodiversity loss related to agricultural practices, FAO encourages the use of "biodiversity-friendly management practices in crop and livestock production, forestry, fisheries and aquaculture".[167]: 13
On health and medicines
The WHO has analyzed how biodiversity and human health are connected: "Biodiversity and human health, and the respective policies and activities, are interlinked in various ways. First, biodiversity gives rise to health benefits. For example, the variety of species and genotypes provide nutrients and medicines."[168] The ongoing drivers and effects of biodiversity loss has the potential to lead to future zoonotic disease outbreaks like the COVID-19 pandemic.[169]
Medicinal and aromatic plants are widely used in traditional medicine as well as in cosmetic and food industries.[168]: 12 The WHO estimated in 2015 that about "60,000 species are used for their medicinal, nutritional and aromatic properties".[168]: 12 There is a global trade in plants for medicinal purposes.[168]: 12
Biodiversity contributes to the development of pharmaceuticals. A significant proportion of medicines are derived from natural products, either directly or indirectly. Many of these natural products come from marine ecosystems.[170] However, unregulated and inappropriate over-harvesting (bioprospecting) could potentially lead to overexploitation, ecosystem degradation and loss of biodiversity.[171][172] Users and traders harvest plants for traditional medicine either by planting them or by collecting them in the wild. In both cases, sustainable medicinal resource management is important.[168]: 13
Proposed solutions

Scientists are investigating what can be done to address biodiversity loss and climate change together. For both of these crises, there is a need to "conserve enough nature and in the right places".[174] A 2020 study found that "beyond the 15% land area currently protected, 35% of land area is needed to conserve additional sites of particular importance for biodiversity and stabilize the climate."[174]
Additional measures for protecting biodiversity, beyond just environmental protection, are important. Such measures include addressing drivers of land use change, increasing efficiency in agriculture, and reducing the need for animal agriculture. The latter could be achieved by increasing the shares of plant-based diets.[175][176]
Convention on Biological Diversity
Many governments have conserved portions of their territories under the Convention on Biological Diversity (CBD), a multilateral treaty signed in 1992–3. The 20 Aichi Biodiversity Targets are part of the CBD's Strategic Plan 2011–2020 and were published in 2010.[177] Aichi Target Number 11 aimed to protect 17% of terrestrial and inland water areas and 10% of coastal and marine areas by 2020 .[178]
Of the 20 biodiversity goals laid out by the Aichi Biodiversity Targets in 2010, only six were partially achieved by 2020.[28][29] The 2020 CBD report highlighted that if the status quo does not change, biodiversity will continue to decline due to "currently unsustainable patterns of production and consumption, population growth and technological developments".[179][180] The report also singled out Australia, Brazil, Cameroon and the Galapagos Islands (Ecuador) for having had one of its animals lost to extinction in the previous ten years.[181]
Following this, the leaders of 64 nations and the European Union pledged to halt environmental degradation and restore the natural world. The pledge was not signed by leaders from some of the world's biggest polluters, namely China, India, Russia, Brazil and the United States.[182] Some experts contend that the United States' refusal to ratify the Convention on Biological Diversity is harming global efforts to halt the extinction crisis.[183]
Scientists say that even if the targets for 2020 had been met, no substantial reduction of extinction rates would likely have resulted.[144][1] Others have raised concerns that the Convention on Biological Diversity does not go far enough, and argue the goal should be zero extinctions by 2050, along with cutting the impact of unsustainable food production on nature by half. That the targets are not legally binding has also been subject to criticism.[184]
In December 2022, every country except the United States and the Holy See[185] signed onto the Kunming-Montreal Global Biodiversity Framework at the 2022 United Nations Biodiversity Conference.[186]This framework calls for protecting 30% of land and oceans by 2030 (30 by 30). It also has 22 other targets intended to reduce biodiversity loss. At the time of signing the agreement, only 17% of land territory and 10% of ocean territory were protected. The agreement includes protecting the rights of Indigenous peoples and changing the current subsidy policy to one better for biodiversity protection, but it takes a step backward in protecting species from extinction in comparison to the Aichi Targets.[187][188] Critics said the agreement does not go far enough to protect biodiversity, and that the process was rushed.[187]
Other international and national action
In 2019 the Intergovernmental Science-Policy Platform on Biodiversity and Ecosystem Services (IPBES) published the Global Assessment Report on Biodiversity and Ecosystem Services. This report said that up to a million plant and animal species are facing extinction because of human activity.[10] The IPBES is an international organization that has a similar role to the Intergovernmental Panel on Climate Change (IPCC),[189] except that it focuses on biodiversity and ecosystem services, not climate change.
The United Nations' Sustainable Development Goal 15 (SDG 15), "Life on Land", includes biodiversity targets. Its fifth target is: "Take urgent and significant action to reduce the degradation of natural habitats, halt the loss of biodiversity and, by 2020, protect and prevent the extinction of threatened species."[190] This target has one indicator: the Red List Index.[191]
Nearly three-quarters of bird species, two thirds of mammals and more than half of hard corals have been recorded at World Heritage Sites, even though they cover less than 1% of the planet. Countries with World Heritage Sites can include them in their national biodiversity strategies and action plans.[192][193]
See also
- Biodiversity offsetting
- Defaunation
- Depauperate ecosystem
- Ecological collapse
- Ecological extinction
- Effects of climate change on biomes
- Effects of climate change on plant biodiversity
- Species reintroduction
- Triple planetary crisis
References
- ↑ 1.0 1.1 1.2 Bradshaw, Corey J. A.; Ehrlich, Paul R.; Beattie, Andrew; Ceballos, Gerardo; Crist, Eileen; Diamond, Joan; Dirzo, Rodolfo; Ehrlich, Anne H. et al. (2021). "Underestimating the Challenges of Avoiding a Ghastly Future". Frontiers in Conservation Science 1. doi:10.3389/fcosc.2020.615419. Bibcode: 2021FrCS....1.5419B.
- ↑ 2.0 2.1 IPBES (2019) (in en). Summary for policymakers of the global assessment report on biodiversity and ecosystem services (Report). doi:10.5281/zenodo.3553579. https://zenodo.org/doi/10.5281/zenodo.3553579.
- ↑ Bongaarts, John (2019). "IPBES, 2019. Summary for policymakers of the global assessment report on biodiversity and ecosystem services of the Intergovernmental Science-Policy Platform on Biodiversity and Ecosystem Services" (in en). Population and Development Review 45 (3): 680–681. doi:10.1111/padr.12283. ISSN 0098-7921. https://onlinelibrary.wiley.com/doi/10.1111/padr.12283.
- ↑ "World Scientists' Warning to Humanity: A Second Notice". BioScience 67 (12): 1026–1028. 13 November 2017. doi:10.1093/biosci/bix125. "Moreover, we have unleashed a mass extinction event, the sixth in roughly 540 million years, wherein many current life forms could be annihilated or at least committed to extinction by the end of this century.".
- ↑ "The Sixth Mass Extinction: fact, fiction or speculation?". Biological Reviews of the Cambridge Philosophical Society 97 (2): 640–663. April 2022. doi:10.1111/brv.12816. PMID 35014169.
- ↑ 6.0 6.1 6.2 6.3 "Global Biodiversity Outlook 3". Convention on Biological Diversity. 2010. https://www.cbd.int/gbo3/.
- ↑ 7.0 7.1 "Biodiversity at risk under future cropland expansion and intensification" (in en). Nature Ecology & Evolution 1 (8): 1129–1135. August 2017. doi:10.1038/s41559-017-0234-3. ISSN 2397-334X. PMID 29046577. Bibcode: 2017NatEE...1.1129K. http://www.nature.com/articles/s41559-017-0234-3. Retrieved March 28, 2022.
- ↑ 8.0 8.1 "Land use intensification alters ecosystem multifunctionality via loss of biodiversity and changes to functional composition". Ecology Letters 18 (8): 834–843. August 2015. doi:10.1111/ele.12469. PMID 26096863. Bibcode: 2015EcolL..18..834A.
- ↑ 9.0 9.1 "Invasive species triggers a massive loss of ecosystem services through a trophic cascade". Proceedings of the National Academy of Sciences of the United States of America 113 (15): 4081–5. April 2016. doi:10.1073/pnas.1600366113. PMID 27001838. Bibcode: 2016PNAS..113.4081W.
- ↑ 10.0 10.1 10.2 10.3 Stokstad, Erik (6 May 2019). "Landmark analysis documents the alarming global decline of nature". Science. doi:10.1126/science.aax9287. "For the first time at a global scale, the report has ranked the causes of damage. Topping the list, changes in land use—principally agriculture—that have destroyed habitat. Second, hunting and other kinds of exploitation. These are followed by climate change, pollution, and invasive species, which are being spread by trade and other activities. Climate change will likely overtake the other threats in the next decades, the authors note. Driving these threats are the growing human population, which has doubled since 1970 to 7.6 billion, and consumption. (Per capita of use of materials is up 15% over the past 5 decades.)".
- ↑ 11.0 11.1 "The biodiversity of species and their rates of extinction, distribution, and protection". Science 344 (6187). May 2014. doi:10.1126/science.1246752. PMID 24876501. "The overarching driver of species extinction is human population growth and increasing per capita consumption.".
- ↑ 12.0 12.1 12.2 Cafaro, Philip; Hansson, Pernilla; Götmark, Frank (August 2022). "Overpopulation is a major cause of biodiversity loss and smaller human populations are necessary to preserve what is left". Biological Conservation 272. doi:10.1016/j.biocon.2022.109646. ISSN 0006-3207. Bibcode: 2022BCons.27209646C. https://www.sustainable.soltechdesigns.com/Overpopulation-and-biodiversty-loss(2022).pdf. Retrieved December 25, 2022. "Conservation biologists standardly list five main direct drivers of biodiversity loss: habitat loss, overexploitation of species, pollution, invasive species, and climate change. The Global Assessment Report on Biodiversity and Ecosystem Services found that in recent decades habitat loss was the leading cause of terrestrial biodiversity loss, while overexploitation (overfishing) was the most important cause of marine losses (IPBES, 2019). All five direct drivers are important, on land and at sea, and all are made worse by larger and denser human populations.".
- ↑ Crist, Eileen; Mora, Camilo; Engelman, Robert (21 April 2017). "The interaction of human population, food production, and biodiversity protection". Science 356 (6335): 260–264. doi:10.1126/science.aal2011. PMID 28428391. Bibcode: 2017Sci...356..260C. https://www.researchgate.net/publication/316286860. Retrieved 2 January 2023. "Research suggests that the scale of human population and the current pace of its growth contribute substantially to the loss of biological diversity. Although technological change and unequal consumption inextricably mingle with demographic impacts on the environment, the needs of all human beings—especially for food—imply that projected population growth will undermine protection of the natural world.".
- ↑ Ceballos, Gerardo; Ehrlich, Paul R. (2023). "Mutilation of the tree of life via mass extinction of animal genera". Proceedings of the National Academy of Sciences of the United States of America 120 (39). doi:10.1073/pnas.2306987120. PMID 37722053. Bibcode: 2023PNAS..12006987C. "Current generic extinction rates will likely greatly accelerate in the next few decades due to drivers accompanying the growth and consumption of the human enterprise such as habitat destruction, illegal trade, and climate disruption.".
- ↑ 15.0 15.1 15.2 15.3 15.4 Hughes, Alice C.; Tougeron, Kévin; Martin, Dominic A.; Menga, Filippo; Rosado, Bruno H. P.; Villasante, Sebastian; Madgulkar, Shweta; Gonçalves, Fernando et al. (2023-01-01). "Smaller human populations are neither a necessary nor sufficient condition for biodiversity conservation" (in en). Biological Conservation 277. doi:10.1016/j.biocon.2022.109841. ISSN 0006-3207. Bibcode: 2023BCons.27709841H. "Through examining the drivers of biodiversity loss in highly biodiverse countries, we show that it is not population driving the loss of habitats, but rather the growth of commodities for export, particularly soybean and oil-palm, primarily for livestock feed or biofuel consumption in higher income economies.".
- ↑ Weston, Phoebe (March 26, 2025). "Biodiversity loss in all species and every ecosystem linked to humans – report". The Guardian. https://www.theguardian.com/environment/2025/mar/26/human-link-biodiversity-loss-species-ecosystems-climate-pollution-eawag-study-nature-aoe.
- ↑ 17.0 17.1 "Climate change and biodiversity". Intergovernmental Panel on Climate Change. 2005. http://www.ipcc.ch/pdf/technical-papers/climate-changes-biodiversity-en.pdf.
- ↑ 18.0 18.1 Kannan, R.; James, D. A. (2009). "Effects of climate change on global biodiversity: a review of key literature". Tropical Ecology 50 (1): 31–39. http://www.tropecol.com/pdf/open/PDF_50_1/05Kannan.pdf. Retrieved 21 May 2014.
- ↑ "Climate change, reefs and the Coral Triangle". http://wwf.panda.org/what_we_do/where_we_work/coraltriangle/problems/climatechangecoraltriangle/.
- ↑ Aldred, Jessica (2 July 2014). "Caribbean coral reefs 'will be lost within 20 years' without protection". The Guardian. https://www.theguardian.com/environment/2014/jul/02/caribbean-coral-reef-lost-fishing-pollution-report.
- ↑ "Carbon emissions from the 2023 Canadian wildfires". Nature 633 (8031): 835–839. 28 August 2024. doi:10.1038/s41586-024-07878-z. PMID 39198654. Bibcode: 2024Natur.633..835B.
- ↑ Campbell, Bruce; Beare, Douglas; Bennett, Elena; Hall-Spencer, Jason; Ingram, John; Jaramillo, Fernando; Ortiz, Rodomiro; Ramankutty, Navin et al. (2017-10-12). "Ecology and Society: Agriculture production as a major driver of the Earth system exceeding planetary boundaries" (in en). Ecology and Society 22 (4). doi:10.5751/ES-09595-220408. ISSN 1708-3087. https://www.ecologyandsociety.org/vol22/iss4/art8/.
- ↑ 23.0 23.1 Ketcham, Christopher (December 3, 2022). "Addressing Climate Change Will Not "Save the Planet"". The Intercept. https://theintercept.com/2022/12/03/climate-biodiversity-green-energy/.
- ↑ 24.0 24.1 Caro, Tim; Rowe, Zeke (2022). "An inconvenient misconception: Climate change is not the principal driver of biodiversity loss". Conservation Letters 15 (3). doi:10.1111/conl.12868. Bibcode: 2022ConL...15E2868C.
- ↑ 25.0 25.1 Bank, European Investment (2022-12-08) (in EN). Forests at the heart of sustainable development: Investing in forests to meet biodiversity and climate goals. European Investment Bank. ISBN 978-92-861-5403-4. https://www.eib.org/en/publications/20220173-forests-at-the-heart-of-sustainable-development. Retrieved March 9, 2023.
- ↑ 26.0 26.1 Finch, Deborah M.; Butler, Jack L.; Runyon, Justin B.; Fettig, Christopher J.; Kilkenny, Francis F.; Jose, Shibu; Frankel, Susan J.; Cushman, Samuel A. et al. (2021). "Effects of Climate Change on Invasive Species". in Poland, Therese M.; Patel-Weynand, Toral; Finch, Deborah M. et al. (in en). Invasive Species in Forests and Rangelands of the United States: A Comprehensive Science Synthesis for the United States Forest Sector. Cham: Springer International Publishing. pp. 57–83. doi:10.1007/978-3-030-45367-1_4. ISBN 978-3-030-45367-1.
- ↑ United Nations Environment Programme (2021). Making Peace with Nature: A scientific blueprint to tackle the climate, biodiversity and pollution emergencies. Nairobi: United Nations. https://www.unep.org/resources/making-peace-nature. Retrieved March 9, 2021.
- ↑ 28.0 28.1 "More than 150 countries made a plan to preserve biodiversity a decade ago. A new report says they mostly failed.". CBS News. September 15, 2020. https://www.cbsnews.com/news/more-than-150-countries-made-a-plan-to-save-the-worlds-species-and-ecosystems-a-decade-ago-a-new-report-says-they-mostly-failed/.
- ↑ 29.0 29.1 "Global Biodiversity Outlook 5" (in en). https://www.cbd.int/gbo5.
- ↑ "Economics of biodiversity review: what are the recommendations?". The Guardian. February 2, 2021. https://www.theguardian.com/environment/2021/feb/02/economics-of-biodiversity-review-what-are-the-recommendations.
- ↑ "The Economics of Biodiversity: The Dasgupta Review Headline Messages". UK government. 2021. p. 1. https://assets.publishing.service.gov.uk/government/uploads/system/uploads/attachment_data/file/957629/Dasgupta_Review_-_Headline_Messages.pdf. "Biodiversity is declining faster than at any time in human history. Current extinction rates, for example, are around 100 to 1,000 times higher than the baseline rate, and they are increasing."
- ↑ Pimm, S. L.; Jenkins, C. N.; Abell, R.; Brooks, T. M.; Gittleman, J. L.; Joppa, L. N.; Raven, P. H.; Roberts, C. M. et al. (2014-05-30). "The biodiversity of species and their rates of extinction, distribution, and protection". Science 344 (6187). doi:10.1126/science.1246752. PMID 24876501. https://www.science.org/doi/10.1126/science.1246752.
- ↑ "Accelerated modern human-induced species losses: Entering the sixth mass extinction". Science Advances 1 (5). June 2015. doi:10.1126/sciadv.1400253. PMID 26601195. Bibcode: 2015SciA....1E0253C.
- ↑ "Estimating the normal background rate of species extinction". Conservation Biology 29 (2): 452–62. April 2015. doi:10.1111/cobi.12380. PMID 25159086. Bibcode: 2015ConBi..29..452D. https://www.zora.uzh.ch/id/eprint/98443/1/Conservation_Biology_2014_early-view.pdf. Retrieved December 5, 2019.
- ↑ "Vertebrates on the brink as indicators of biological annihilation and the sixth mass extinction". Proceedings of the National Academy of Sciences of the United States of America 117 (24): 13596–13602. June 2020. doi:10.1073/pnas.1922686117. PMID 32482862. Bibcode: 2020PNAS..11713596C.
- ↑ "The past and future human impact on mammalian diversity". Science Advances 6 (36). September 2020. doi:10.1126/sciadv.abb2313. PMID 32917612. Bibcode: 2020SciA....6.2313A.
- ↑ CIESM 2013. Marine extinctions - patterns and processes. CIESM Workshop Monograph n° 45 [F. Briand ed.], 188 p., CIESM Publisher, Monaco.
- ↑ . doi:10.1126/science.1246752. PMID 24876501.
- ↑ Cardinale, Bradley J.; Duffy, J. Emmett; Gonzalez, Andrew; Hooper, David U.; Perrings, Charles; Venail, Patrick; Narwani, Anita; Mace, Georgina M. et al. (2012-06-06). "Biodiversity loss and its impact on humanity". Nature 486 (7401): 59–67. doi:10.1038/nature11148. ISSN 0028-0836. PMID 22678280. Bibcode: 2012Natur.486...59C.
- ↑ Liu, Jiajia; Slik, Ferry; Zheng, Shilu; Lindenmayer, David B. (2022). "Undescribed species have higher extinction risk than known species" (in en). Conservation Letters 15 (3). doi:10.1111/conl.12876. ISSN 1755-263X. Bibcode: 2022ConL...15E2876L. https://onlinelibrary.wiley.com/doi/abs/10.1111/conl.12876.
- ↑ Giam, Xingli (2017-06-06). "Global biodiversity loss from tropical deforestation" (in en). Proceedings of the National Academy of Sciences 114 (23): 5775–5777. doi:10.1073/pnas.1706264114. ISSN 0027-8424. PMID 28550105. Bibcode: 2017PNAS..114.5775G.
- ↑ Myers, Norman (1976-07-16). "An Expanded Approach to the Problem of Disappearing Species". Science 193 (4249): 198–202. doi:10.1126/science.193.4249.198. PMID 17796137. Bibcode: 1976Sci...193..198M. https://www.science.org/doi/10.1126/science.193.4249.198.
- ↑ 43.0 43.1 Jha, S.; Bawa, K. S. (June 2006). "Population Growth, Human Development, and Deforestation in Biodiversity Hotspots" (in en). Conservation Biology 20 (3): 906–912. doi:10.1111/j.1523-1739.2006.00398.x. ISSN 0888-8892. PMID 16909582. Bibcode: 2006ConBi..20..906J. https://conbio.onlinelibrary.wiley.com/doi/10.1111/j.1523-1739.2006.00398.x. Retrieved March 31, 2024.
- ↑ "The IUCN Red List of Threatened Species". https://www.iucnredlist.org/.
- ↑ "The IUCN Red List of Threatened Species". https://www.iucnredlist.org/en.
- ↑ Melillo, Gianna (July 19, 2022). "Threat of global extinction may be greater than previously thought, study finds". The Hill. https://thehill.com/changing-america/sustainability/environment/3565945-threat-of-global-extinction-may-be-greater-than-previously-thought-study-finds/.
- ↑ Isbell, Forest; Balvanera, Patricia (2022). "Expert perspectives on global biodiversity loss and its drivers and impacts on people". Frontiers in Ecology and the Environment 21 (2): 94–103. doi:10.1002/fee.2536.
- ↑ "Biodiversity: Almost half of animals in decline, research shows". BBC. May 23, 2023. https://www.bbc.com/news/uk-northern-ireland-65681648.
- ↑ Finn, Catherine; Grattarola, Florencia; Pincheira-Donoso, Daniel (2023). "More losers than winners: investigating Anthropocene defaunation through the diversity of population trends". Biological Reviews 98 (5): 1732–1748. doi:10.1111/brv.12974. PMID 37189305. Bibcode: 2023BioRv..98.1732F.
- ↑ Paddison, Laura (May 22, 2023). "Global loss of wildlife is 'significantly more alarming' than previously thought, according to a new study". CNN. https://www.cnn.com/2023/05/22/world/wildlife-crisis-biodiversity-scn-climate-intl/index.html.
- ↑ Tor-Björn Larsson (2001). Biodiversity evaluation tools for European forests. Wiley-Blackwell. p. 178. ISBN 978-87-16-16434-6. https://books.google.com/books?id=zeTU8QauENcC&pg=PA178. Retrieved 28 June 2011.
- ↑ Davis. Intro To Env Engg (Sie), 4E. McGraw-Hill Education (India) Pvt Ltd. p. 4. ISBN 978-0-07-067117-1. https://books.google.com/books?id=n0FvYeoHtAIC&pg=PA40. Retrieved 28 June 2011.
- ↑ 53.0 53.1 Preston, F.W. (July 1948). "The Commonness, and Rarity, of Species". Ecology 29 (3): 254–283. doi:10.2307/1930989. Bibcode: 1948Ecol...29..254P. http://www.bgu.ac.il/desert_agriculture/Vegecology/Papers/Preston48.pdf. Retrieved 2019-02-12.
- ↑ 54.0 54.1 54.2 "Biodiversity loss and its impact on humanity". Nature 486 (7401): 59–67. June 2012. doi:10.1038/nature11148. PMID 22678280. Bibcode: 2012Natur.486...59C. https://pub.epsilon.slu.se/10240/7/wardle_d_etal_130415.pdf. Retrieved April 24, 2021.
- ↑ 55.0 55.1 "Biological diversity and habitat diversity: a matter of Science and perception". Terre et Environnement. 88. Institut Forel, Département de Minéraologie, Département de Géologie et Paléontologie, Section Sciences de la Terre, Université de Genève. 2010. pp. 147–155. ISBN 978-2-940153-87-9. http://www.unige.ch/sciences/near/pdf/Tagliapietra%20and%20Sigovini%202010.pdf. Retrieved September 18, 2019.
- ↑ "Estimating local biodiversity change: a critique of papers claiming no net loss of local diversity". Ecology 97 (8): 1949–1960. August 2016. doi:10.1890/15-1759.1. PMID 27859190. Bibcode: 2016Ecol...97.1949G. "two recent data meta-analyses have found that species richness is decreasing in some locations and is increasing in others. When these trends are combined, these papers argued there has been no net change in species richness, and suggested this pattern is globally representative of biodiversity change at local scales".
- ↑ Ritchie, Hannah (October 2025). "How does the Living Planet Index vary by region?". Our World in Data (OWID). https://ourworldindata.org/living-planet-index-region. See file description page for updated referencing and more complete archives.
- ↑ Whiting, Kate (17 October 2022). "6 charts that show the state of biodiversity and nature loss – and how we can go 'nature positive'". World Economic Forum. https://www.weforum.org/agenda/2022/10/nature-loss-biodiversity-wwf/.
- ↑ "Fifth of countries at risk of ecosystem collapse, analysis finds". The Guardian. October 12, 2020. https://www.theguardian.com/environment/2020/oct/12/fifth-of-nations-at-risk-of-ecosystem-collapse-analysis-finds.
- ↑ "Home" (in en). https://livingplanet.panda.org/.
- ↑ Carrington, Damian (February 24, 2023). "Ecosystem collapse 'inevitable' unless wildlife losses reversed". The Guardian. https://www.theguardian.com/environment/2023/feb/24/ecosystem-collapse-wildlife-losses-permian-triassic-mass-extinction-study. "The researchers concluded: 'A biodiversity crash may be the harbinger of a more devastating ecosystem collapse.'"
- ↑ "The 2022 Living Planet Report" (in en-US). https://livingplanet.panda.org/en-US/.
- ↑ "Home" (in en). https://livingplanet.panda.org/.
- ↑ Lewis, Sophie (September 10, 2020). "Animal populations worldwide have declined nearly 70% in just 50 years, new report says" (in en-US). CBS News. https://www.cbsnews.com/news/endangered-species-animal-population-decline-world-wildlife-fund-new-report/.
- ↑ 65.0 65.1 65.2 "Critical Decline of Earthworms from Organic Origins under Intensive, Humic SOM-Depleting Agriculture". Soil Systems 2 (2): 33. 2018. doi:10.3390/soilsystems2020033. Bibcode: 2018SoiSy...2...33B. 50px Text was copied from this source, which is available under a Creative Commons Attribution 4.0 International License.
- ↑ 66.0 66.1 66.2 66.3 66.4 "Earthworm diversity and ecosystem services under threat.". Reviews in Agricultural Science 3: 25–35. 2015. doi:10.7831/ras.3.0_25. https://www.jstage.jst.go.jp/article/ras/3/0/3_25/_article.
- ↑ "Global distribution of earthworm diversity". Science 366 (6464): 480–485. 2019. doi:10.1126/science.aax4851. PMID 31649197. Bibcode: 2019Sci...366..480P.
- ↑ Briones, María Jesús I.; Schmidt, Olaf (October 2017). "Conventional tillage decreases the abundance and biomass of earthworms and alters their community structure in a global meta-analysis". Global Change Biology 23 (10): 4396–4419. doi:10.1111/gcb.13744. ISSN 1365-2486. PMID 28464547. Bibcode: 2017GCBio..23.4396B.
- ↑ "Common pesticide makes migrating birds anorexic". September 12, 2019. https://www.science.org/content/article/common-pesticide-makes-migrating-birds-anorexic.
- ↑ Vuong, Quan-Hoang; Nguyen, Minh-Hoang (2024). Better economics for the Earth: A lesson from quantum and information theories. AISDL. ISBN 979-8-3328-6579-4.
- ↑ "These 8 Bird Species Have Disappeared This Decade". September 5, 2018. https://www.nationalgeographic.com/environment/2018/09/news-macaw-extinct-bird-species-deforestation/.
- ↑ "Climate change and bird extinctions in the Amazon". PLOS ONE 15 (7). July 17, 2020. doi:10.1371/journal.pone.0236103. PMID 32678834. Bibcode: 2020PLoSO..1536103D.
- ↑ 73.0 73.1 "Plant diversity in a changing world: Status, trends, and conservation needs". Plant Diversity 38 (1): 10–16. February 2016. doi:10.1016/j.pld.2016.01.001. PMID 30159445. Bibcode: 2016PlDiv..38...10C.
- ↑ "Habitat fragmentation causes immediate and time-delayed biodiversity loss at different trophic levels". Ecology Letters 13 (5): 597–605. May 2010. doi:10.1111/j.1461-0248.2010.01457.x. PMID 20337698. Bibcode: 2010EcolL..13..597K.
- ↑ Nic Lughadha, Eimear; Bachman, Steven P.; Leão, Tarciso C. C.; Forest, Félix; Halley, John M.; Moat, Justin; Acedo, Carmen; Bacon, Karen L. et al. (2020). "Extinction risk and threats to plants and fungi" (in en). Plants, People, Planet 2 (5): 389–408. doi:10.1002/ppp3.10146. ISSN 2572-2611. Bibcode: 2020PlPP....2..389N. https://nph.onlinelibrary.wiley.com/doi/10.1002/ppp3.10146.
- ↑ "Prevent tree extinctions or face global ecological catastrophe, scientists warn" (in en). The Guardian. 2 September 2022. https://www.theguardian.com/environment/2022/sep/02/tree-extinctions-species-wildlife-ecosystems-scientists-aoe.
- ↑ 77.0 77.1 Rivers, Malin; Newton, Adrian C.; Oldfield, Sara; ((Global Tree Assessment Contributors)) (2022-08-31). "Scientists' warning to humanity on tree extinctions" (in en). Plants, People, Planet 5 (4): 466–482. doi:10.1002/ppp3.10314. ISSN 2572-2611.
- ↑ "Tropospheric ozone pollution increases the sensitivity of plant production to vapor pressure deficit across diverse ecosystems in the Northern Hemisphere". Science of the Total Environment 951. 15 November 2024. doi:10.1016/j.scitotenv.2024.175748. PMID 39182770. Bibcode: 2024ScTEn.95175748G. https://www.sciencedirect.com/science/article/abs/pii/S0048969724059047. Retrieved 3 April 2026.
- ↑ Corlett, Richard T. (February 2016). "Plant diversity in a changing world: Status, trends, and conservation needs" (in en). Plant Diversity 38 (1): 10–16. doi:10.1016/j.pld.2016.01.001. PMID 30159445. Bibcode: 2016PlDiv..38...10C.
- ↑ "Carbon emissions from the 2023 Canadian wildfires". Nature 633 (8031): 835–839. 28 August 2024. doi:10.1038/s41586-024-07878-z. PMID 39198654. Bibcode: 2024Natur.633..835B.
- ↑ Latterini, Francesco; Mederski, Piotr; Jaeger, Dirk; Venanzi, Rachele; Tavankar, Farzam; Picchio, Rodolfo (2023-02-28). "The Influence of Various Silvicultural Treatments and Forest Operations on Tree Species Biodiversity". Current Forestry Reports 9 (1): 59–71. doi:10.1007/s40725-023-00179-0. Bibcode: 2023CForR...9...59L. https://rdcu.be/da0n9. Retrieved 2023-04-29.
- ↑ Rozendaal, Danaë M. A.; Bongers, Frans; Aide, T. Mitchell; Alvarez-Dávila, Esteban; Ascarrunz, Nataly; Balvanera, Patricia; Becknell, Justin M.; Bentos, Tony V. et al. (March 2019). "Biodiversity recovery of Neotropical secondary forests" (in en). Science Advances 5 (3). doi:10.1126/sciadv.aau3114. ISSN 2375-2548. PMID 30854424. Bibcode: 2019SciA....5.3114R.
- ↑ 83.0 83.1 "Bending the Curve of Global Freshwater Biodiversity Loss: An Emergency Recovery Plan". BioScience 70 (4): 330–342. April 2020. doi:10.1093/biosci/biaa002. PMID 32284631.
- ↑ Reid, Andrea J.; Carlson, Andrew K.; Creed, Irena F.; Eliason, Erika J.; Gell, Peter A.; Johnson, Pieter T. J.; Kidd, Karen A.; MacCormack, Tyson J. et al. (2019). "Emerging threats and persistent conservation challenges for freshwater biodiversity" (in en). Biological Reviews 94 (3): 849–873. doi:10.1111/brv.12480. ISSN 1464-7931. PMID 30467930. https://onlinelibrary.wiley.com/doi/10.1111/brv.12480.
- ↑ "Global freshwater fish populations at risk of extinction, study finds". The Guardian. February 23, 2021. https://www.theguardian.com/environment/2021/feb/23/global-freshwater-fish-populations-at-risk-of-extinction-study-finds.
- ↑ 86.0 86.1 86.2 86.3 "Global Marine Biodiversity Trends". Annual Review of Environment and Resources 31 (1): 93–122. 2006. doi:10.1146/annurev.energy.31.020105.100235.
- ↑ 87.0 87.1 "Status of Marine Biodiversity in the Anthropocene". YOUMARES 9 – The Oceans: Our Research, Our Future: Proceedings of the 2018 conference for YOUng MArine RESearcher in Oldenburg, Germany. Cham: Springer International Publishing. 2020. pp. 57–82. doi:10.1007/978-3-030-20389-4_4. ISBN 978-3-030-20389-4. http://www.vliz.be/imisdocs/publications/339644.pdf.
- ↑ Briand, F. (October 2012). "Species Missing in Action – Rare or Already Extinct?". National Geographic. https://www.researchgate.net/publication/233408388.
- ↑ "Impacts of biodiversity loss on ocean ecosystem services". Science 314 (5800): 787–90. November 2006. doi:10.1126/science.1132294. PMID 17082450. Bibcode: 2006Sci...314..787W.
- ↑ "Marine biodiversity and ecosystem functioning: what's known and what's next?". Oikos 124 (3): 252–265. 2015. doi:10.1111/oik.01549. Bibcode: 2015Oikos.124..252G. https://scholarworks.wm.edu/vimsarticles/849. Retrieved April 24, 2021.
- ↑ "Spatial and temporal changes in cumulative human impacts on the world's ocean". Nature Communications 6 (1). July 2015. doi:10.1038/ncomms8615. PMID 26172980. Bibcode: 2015NatCo...6.7615H.
- ↑ Doney, Scott C.; Fabry, Victoria J.; Feely, Richard A.; Kleypas, Joan A. (2009). "Ocean Acidification: The Other CO2 Problem" (in en). Annual Review of Marine Science 1: 169–192. doi:10.1146/annurev.marine.010908.163834. PMID 21141034. https://www.annualreviews.org/content/journals/10.1146/annurev.marine.010908.163834.
- ↑ Georgian, Samuel; Hameed, Sarah; Morgan, Lance; Amon, Diva J.; Sumaila, U. Rashid; Johns, David; Ripple, William J. (2022). "Scientists' warning of an imperiled ocean". Biological Conservation 272. doi:10.1016/j.biocon.2022.109595. Bibcode: 2022BCons.27209595G.
- ↑ Carlton, J. T.; Vermeij, G. J.; Lindberg, D. R.; Carlton, D. A.; Dubley, E. C. (1991). "The First Historical Extinction of a Marine Invertebrate in an Ocean Basin: The Demise of the Eelgrass Limpet Lottia alveus" (in en). The Biological Bulletin 180 (1): 72–80. doi:10.2307/1542430. ISSN 0006-3185. PMID 29303643. https://www.journals.uchicago.edu/doi/10.2307/1542430. Retrieved March 23, 2023.
- ↑ Moulton, Michael P.; Sanderson, James (1 September 1998). Wildlife Issues in a Changing World. CRC-Press. ISBN 978-1-56670-351-2. https://books.google.com/books?id=or6sngEACAAJ.
- ↑ Chen, Jim (2003). "Across the Apocalypse on Horseback: Imperfect Legal Responses to Biodiversity Loss". The Jurisdynamics of Environmental Protection: Change and the Pragmatic Voice in Environmental Law. Environmental Law Institute. p. 197. ISBN 978-1-58576-071-8. https://books.google.com/books?id=8vCkSM1auwIC&pg=PA197.
- ↑ "Hippo dilemma". Windows on the Wild. New Africa Books. 2005. ISBN 978-1-86928-380-3. https://books.google.com/books?id=1rzqxEVsMO8C.
- ↑ 98.0 98.1 "Habitat fragmentation and its lasting impact on Earth's ecosystems". Science Advances 1 (2). March 2015. doi:10.1126/sciadv.1500052. PMID 26601154. Bibcode: 2015SciA....1E0052H.
- ↑ Otto, Sarah P. (2018-11-21). "Adaptation, speciation and extinction in the Anthropocene". Proceedings of the Royal Society B: Biological Sciences 285 (1891). doi:10.1098/rspb.2018.2047. ISSN 0962-8452. PMID 30429309. Bibcode: 2018PBioS.28582047O.
- ↑ "Genetic diversity and local population structure of fragmented populations of Trillium camschatcense (Trilliaceae)". Biological Conservation 109 (2): 249–258. 2003. doi:10.1016/S0006-3207(02)00153-2. Bibcode: 2003BCons.109..249T.
- ↑ "Edge Influence on Forest Structure and Composition in Fragmented Landscapes" (in en). Conservation Biology 19 (3): 768–782. 2005. doi:10.1111/j.1523-1739.2005.00045.x. ISSN 1523-1739. https://conbio.onlinelibrary.wiley.com/doi/epdf/10.1111/j.1523-1739.2005.00045.x.
- ↑ McKinney, Michael L. (2006-01-01). "Urbanization as a major cause of biotic homogenization". Biological Conservation 127 (3): 247–260. doi:10.1016/j.biocon.2005.09.005. ISSN 0006-3207. Bibcode: 2006BCons.127..247M. https://www.sciencedirect.com/science/article/abs/pii/S0006320705003563.
- ↑ 103.0 103.1 Simkins, Ashley T.; Beresford, Alison E. (March 23, 2023). "A global assessment of the prevalence of current and potential future infrastructure in Key Biodiversity Areas". Biological Conservation 281. doi:10.1016/j.biocon.2023.109953. Bibcode: 2023BCons.28109953S. 50px Text was copied from this source, which is available under a Creative Commons Attribution 4.0 International License
- ↑ Halfwerk, Wouter; Slabbekoorn, Hans (April 2015). "Pollution going multimodal: the complex impact of the human-altered sensory environment on animal perception and performance". Biology Letters 11 (4). doi:10.1098/rsbl.2014.1051. PMID 25904319.
- ↑ Gaston, Kevin J.; Visser, Marcel E.; Hölker, Franz (2015-05-05). "The biological impacts of artificial light at night: the research challenge". Philosophical Transactions of the Royal Society B: Biological Sciences 370 (1667). doi:10.1098/rstb.2014.0133. PMID 25780244.
- ↑ Opdam, Paul; Wascher, Dirk (2004-05-01). "Climate change meets habitat fragmentation: linking landscape and biogeographical scale levels in research and conservation". Biological Conservation 117 (3): 285–297. doi:10.1016/j.biocon.2003.12.008. ISSN 0006-3207. Bibcode: 2004BCons.117..285O. https://www.sciencedirect.com/science/article/abs/pii/S0006320703004890.
- ↑ "The Rapid Decline Of The Natural World Is A Crisis Even Bigger Than Climate Change". The Huffington Post. March 15, 2019. https://www.huffpost.com/entry/nature-destruction-climate-change-world-biodiversity_n_5c49e78ce4b06ba6d3bb2d44.
- ↑ "Global Land Outlook 2" (in en). https://www.unccd.int/resources/global-land-outlook/glo2.
- ↑ 109.0 109.1 109.2 109.3 Millennium Ecosystem Assessment (2005). "Ecosystems and Human Well-being: Biodiversity Synthesis". World Resources Institute. http://www.millenniumassessment.org/documents/document.354.aspx.pdf.
- ↑ Fao, Ifad (2023) (in English). The State of Food Security and Nutrition in the World 2023. FAO; IFAD; UNICEF; WFP; WHO. ISBN 978-92-5-137226-5. https://openknowledge.fao.org/items/445c9d27-b396-4126-96c9-50b335364d01.
- ↑ "More than 17,000 species worldwide to lose part of habitat if agriculture continues to expand". The Independent. December 22, 2020. https://www.independent.co.uk/environment/species-habitat-loss-agriculture-food-b1777097.html.
- ↑ 112.0 112.1 "Plant-based diets crucial to saving global wildlife, says report". The Guardian. February 3, 2021. https://www.theguardian.com/environment/2021/feb/03/plant-based-diets-crucial-to-saving-global-wildlife-says-report.
- ↑ "FAO Biodiversity | FAO". https://www.fao.org/family-farming/detail/en/c/1633360/.
- ↑ Allan, James R.; Possingham, Hugh P.; Atkinson, Scott C.; Waldron, Anthony; Di Marco, Moreno; Butchart, Stuart H. M.; Adams, Vanessa M.; Kissling, W. Daniel et al. (2022). "The minimum land area requiring conservation attention to safeguard biodiversity" (in en). Science 376 (6597): 1094–1101. doi:10.1126/science.abl9127. ISSN 0036-8075. PMID 35653463. Bibcode: 2022Sci...376.1094A. https://www.science.org/doi/10.1126/science.abl9127. Retrieved June 7, 2022.
- ↑ Dinerstein, Eric; Olson, David; Joshi, Anup; Vynne, Carly; Burgess, Neil D.; Wikramanayake, Eric; Hahn, Nathan; Palminteri, Suzanne et al. (2017-06-01). "An Ecoregion-Based Approach to Protecting Half the Terrestrial Realm". BioScience 67 (6): 534–545. doi:10.1093/biosci/bix014. ISSN 0006-3568. PMID 28608869.
- ↑ Barker, Jerry R. (1992). Air Pollution Effects on Biodiversity. David T. Tingey. Boston, MA: Springer US. ISBN 978-1-4615-3538-6. OCLC 840285207.
- ↑ Fowler, David. "The global nitrogen cycle in the twenty-first century". Science. doi:10.1126/science.1251724. https://www.science.org/doi/10.1126/science.1251724.
- ↑ Environmental and Ecological Chemistry – Volume I. EOLSS Publications. 2009. ISBN 978-1-84826-186-0.
- ↑ "Acid rain and its ecological consequences". Journal of Environmental Biology 29 (1): 15–24. January 2008. PMID 18831326.
- ↑ "Nitrogen deposition and plant biodiversity: past, present, and future". Frontiers in Ecology and the Environment 15 (8): 431–436. October 2017. doi:10.1002/fee.1528. Bibcode: 2017FrEE...15..431P. https://e-space.mmu.ac.uk/619669/1/Payne%20et%20al.%20Nitrogen%20Pollution%20%281%29.pdf. Retrieved November 1, 2021.
- ↑ 121.0 121.1 121.2 Lovett, Gary M.; Tear, Timothy H.; Evers, David C.; Findlay, Stuart E.G.; Cosby, B. Jack; Dunscomb, Judy K.; Driscoll, Charles T.; Weathers, Kathleen C. (2009). "Effects of Air Pollution on Ecosystems and Biological Diversity in the Eastern United States" (in en). Annals of the New York Academy of Sciences 1162 (1): 99–135. doi:10.1111/j.1749-6632.2009.04153.x. ISSN 0077-8923. PMID 19432647. Bibcode: 2009NYASA1162...99L. https://nyaspubs.onlinelibrary.wiley.com/doi/10.1111/j.1749-6632.2009.04153.x. Retrieved February 6, 2024.
- ↑ . doi:10.1126/science.1251724.
- ↑ "Evidence of the environmental impact of noise pollution on biodiversity: a systematic map protocol". Environmental Evidence 8 (1). 2019. doi:10.1186/s13750-019-0146-6. Bibcode: 2019EnvEv...8....8S.
- ↑ 124.0 124.1 124.2 Weilgart LS (2008). The Impact of Ocean Noise Pollution on Marine Biodiversity (PDF) (Thesis). CiteSeerX 10.1.1.542.534. S2CID 13176067. Archived (PDF) from the original on November 1, 2021. Retrieved November 1, 2021.
- ↑ "'Gas and fat embolic syndrome' involving a mass stranding of beaked whales (family Ziphiidae) exposed to anthropogenic sonar signals". Veterinary Pathology 42 (4): 446–57. July 2005. doi:10.1354/vp.42-4-446. PMID 16006604.
- ↑ "Effects of seismic shooting on local abundance and catch rates of cod ((Gadus morhua) and haddock )(Melanogrammus aeglefinus)". Canadian Journal of Fisheries and Aquatic Sciences 53 (10): 2238–2249. 2011. doi:10.1139/f96-177.
- ↑ "Effects of Sounds from a Geophysical Survey Device on Catch-per-Unit-Effort in a Hook-and-Line Fishery for Rockfish (Sebastes spp.)". Canadian Journal of Fisheries and Aquatic Sciences 49 (7): 1357–1365. 2011. doi:10.1139/f92-151.
- ↑ "Acoustic mapping of pelagic fish distribution and abundance in relation to a seismic shooting area off the Norwegian west coast". Fisheries Research 67 (2): 143–150. 2004. doi:10.1016/j.fishres.2003.09.046. Bibcode: 2004FishR..67..143S.
- ↑ "Noise pollution changes avian communities and species interactions". Current Biology 19 (16): 1415–9. August 2009. doi:10.1016/j.cub.2009.06.052. PMID 19631542. Bibcode: 2009CBio...19.1415F.
- ↑ Barber, Jesse R.; Crooks, Kevin R.; Fristrup, Kurt M. (2010-03-01). "The costs of chronic noise exposure for terrestrial organisms" (in English). Trends in Ecology & Evolution 25 (3): 180–189. doi:10.1016/j.tree.2009.08.002. ISSN 0169-5347. PMID 19762112. Bibcode: 2010TEcoE..25..180B. https://www.cell.com/trends/ecology-evolution/abstract/S0169-5347(09)00261-4. Retrieved February 24, 2023.
- ↑ 131.0 131.1 131.2 Harfoot, Michael B. J.; Tittensor, Derek P.; Knight, Sarah; Arnell, Andrew P.; Blyth, Simon; Brooks, Sharon; Butchart, Stuart H. M.; Hutton, Jon et al. (2018). "Present and future biodiversity risks from fossil fuel exploitation" (in en). Conservation Letters 11 (4). doi:10.1111/conl.12448. Bibcode: 2018ConL...11E2448H. 50px Text was copied from this source, which is available under a Creative Commons Attribution 4.0 International License
- ↑ Ellis, Erle C.; Klein Goldewijk, Kees; Siebert, Stefan; Lightman, Deborah; Ramankutty, Navin (September 2010). "Anthropogenic transformation of the biomes, 1700 to 2000" (in en). Global Ecology and Biogeography 19 (5): 589–606. doi:10.1111/j.1466-8238.2010.00540.x. ISSN 1466-822X. Bibcode: 2010GloEB..19..589E. https://onlinelibrary.wiley.com/doi/10.1111/j.1466-8238.2010.00540.x.
- ↑ "Conservation. Biodiversity risks from fossil fuel extraction". Science 342 (6157): 425–6. October 2013. doi:10.1126/science.1237261. PMID 24159031. Bibcode: 2013Sci...342..425B. https://espace.library.uq.edu.au/view/UQ:314798/UQ314798_OA.pdf.
- ↑ IPBES (2019-11-25) (in en). Summary for policymakers of the global assessment report on biodiversity and ecosystem services (Report). doi:10.5281/zenodo.3553579. https://zenodo.org/doi/10.5281/zenodo.3553579.
- ↑ Frank, Kenneth T.; Petrie, Brian; Choi, Jae S.; Leggett, William C. (2005). "Trophic Cascades in a Formerly Cod-Dominated Ecosystem". Science 308 (5728): 1621–1623. doi:10.1126/science.1113075. PMID 15947186. Bibcode: 2005Sci...308.1621F.
- ↑ "Half a century of global decline in oceanic sharks and rays". Nature 589 (7843): 567–571. January 2021. doi:10.1038/s41586-020-03173-9. PMID 33505035. Bibcode: 2021Natur.589..567P.
- ↑ "UN report: Humans accelerating extinction of other species". Associated Press. May 6, 2019. https://apnews.com/aaf1091c5aae40b0a110daaf04950672.
- ↑ "The global ocean size spectrum from bacteria to whales". Science Advances 7 (46). November 2021. doi:10.1126/sciadv.abh3732. PMID 34757796. Bibcode: 2021SciA....7.3732H.
- ↑ "Overfishing drives over one-third of all sharks and rays toward a global extinction crisis". Current Biology 31 (21): 4773–4787.e8. November 2021. doi:10.1016/j.cub.2021.08.062. PMID 34492229. Bibcode: 2021CBio...31E4773D.
- ↑ (in en) The State of World Fisheries and Aquaculture 2020. FAO. 2020. doi:10.4060/ca9229en. ISBN 978-92-5-132692-3. http://www.fao.org/documents/card/en/c/ca9229en. Retrieved November 30, 2022.
- ↑ Ritchie, Hannah (April 20, 2021). "Wild mammals have declined by 85% since the rise of humans, but there is a possible future where they flourish". https://ourworldindata.org/wild-mammal-decline.
- ↑ "World Population Prospects 2022, Graphs / Profiles". United Nations Department of Economic and Social Affairs, Population Division. 2022. https://population.un.org/wpp/Graphs/Probabilistic/POP/TOT/900.
- ↑ Ceballos, Gerardo; Ehrlich, Paul R; Dirzo, Rodolfo (23 May 2017). "Biological annihilation via the ongoing sixth mass extinction signaled by vertebrate population losses and declines". PNAS 114 (30): E6089–E6096. doi:10.1073/pnas.1704949114. PMID 28696295. Bibcode: 2017PNAS..114E6089C. "Much less frequently mentioned are, however, the ultimate drivers of those immediate causes of biotic destruction, namely, human overpopulation and continued population growth, and overconsumption, especially by the rich. These drivers, all of which trace to the fiction that perpetual growth can occur on a finite planet, are themselves increasing rapidly.".
- ↑ 144.0 144.1 Weston, Phoebe (13 January 2021). "Top scientists warn of 'ghastly future of mass extinction' and climate disruption". The Guardian. https://www.theguardian.com/environment/2021/jan/13/top-scientists-warn-of-ghastly-future-of-mass-extinction-and-climate-disruption-aoe.
- ↑ Colautti, Robert I.; MacIsaac, Hugh J. (24 February 2004). "A neutral terminology to define 'invasive' species: Defining invasive species". Diversity and Distributions 10 (2): 135–141. doi:10.1111/j.1366-9516.2004.00061.x.
- ↑ "Communication From The Commission To The Council, The European Parliament, The European Economic And Social Committee And The Committee Of The Regions Towards An EU Strategy On Invasive Species". http://ec.europa.eu/environment/nature/invasivealien/docs/1_EN_resume_impact_assesment_part1_v3.pdf.
- ↑ Lakicevic, Milena; Mladenovic, Emina (2018). "Non-native and invasive tree species – their impact on biodiversity loss". Zbornik Matice Srpske Za Prirodne Nauke (134): 19–26. doi:10.2298/ZMSPN1834019L.
- ↑ National Research Council (US) Committee on the Scientific Basis for Predicting the Invasive Potential of Nonindigenous Plants Plant Pests in the United States (2002). Predicting Invasions of Nonindigenous Plants and Plant Pests. doi:10.17226/10259. ISBN 978-0-309-08264-8. Bibcode: 2002nap..book10259N. https://www.nap.edu/read/10259/chapter/1. Retrieved November 17, 2019.
- ↑ Lewis, Simon L.; Maslin, Mark A. (2015). "Defining the Anthropocene". Nature 519 (7542): 171–180. doi:10.1038/nature14258. PMID 25762280. Bibcode: 2015Natur.519..171L. https://zotero.org/groups/5435545/items/CF2PI4C2.
- ↑ Baiser, Benjamin; Olden, Julian D.; Record, Sydne; Lockwood, Julie L.; McKinney, Michael L. (2012). "Pattern and process of biotic homogenization in the New Pangaea". Proceedings of the Royal Society B: Biological Sciences 279 (1748): 4772–4777. doi:10.1098/rspb.2012.1651. PMID 23055062.
- ↑ Odendaal, L. J.; Haupt, T. M.; Griffiths, C. L. (2008). "The alien invasive land snail Theba pisana in the West Coast National Park: Is there cause for concern?". Koedoe 50 (1): 93–98. doi:10.4102/koedoe.v50i1.153.
- ↑ Song, Haijun; Kemp, David B.; Tian, Li; Chu, Daoliang; Song, Huyue; Dai, Xu (August 4, 2021). "Thresholds of temperature change for mass extinctions" (in en). Nature Communications 12 (1): 4694. doi:10.1038/s41467-021-25019-2. PMID 34349121. Bibcode: 2021NatCo..12.4694S.
- ↑ "Climate Change 2022: Impacts, Adaptation and Vulnerability" (in en). https://www.ipcc.ch/report/ar6/wg2/.
- ↑ "Climate Change and the Sea: A Major Disruption in Steady State and the Master Variables". ACS Environmental Au 3 (4): 195–208. 19 April 2023. doi:10.1021/acsenvironau.2c00061. PMID 37483305. Bibcode: 2023ACSEA...3..195S.
- ↑ "Individual and Interactive Effects of Elevated Ozone and Temperature on Plant Responses". Horticulturae 8 (3): 211. 8 February 2022. doi:10.3390/horticulturae8030211.
- ↑ "Climate Change 2022: Impacts, Adaptation and Vulnerability" (in en). https://www.ipcc.ch/report/ar6/wg2/.
- ↑ "Climate change and biodiversity loss must be tackled together – report". Reuters. June 10, 2021. https://www.reuters.com/business/environment/climate-change-biodiversity-loss-must-be-tackled-together-report-2021-06-10/.
- ↑ Rankin, Jennifer; Harvey, Fiona (July 21, 2022). "Destruction of nature as threatening as climate crisis, EU deputy warns". The Guardian. https://www.theguardian.com/environment/2022/jul/21/destruction-nature-as-threatening-climate-crisis-eu-deputy-warns-frans-timmerman.
- ↑ "Does global change increase the success of biological invaders?". Trends in Ecology & Evolution 14 (4): 135–139. April 1999. doi:10.1016/s0169-5347(98)01554-7. PMID 10322518.
- ↑ "Five potential consequences of climate change for invasive species". Conservation Biology 22 (3): 534–543. June 2008. doi:10.1111/j.1523-1739.2008.00951.x. PMID 18577082. Bibcode: 2008ConBi..22..534H.
- ↑ "Biodiversity loss and its impact on humanity". Nature 486 (7401): 59–67. 2012. doi:10.1038/nature11148. PMID 22678280. Bibcode: 2012Natur.486...59C. https://www.nature.com/articles/nature11148.
- ↑ IPBES (2019-11-25) (in en). Summary for policymakers of the global assessment report on biodiversity and ecosystem services (Report). doi:10.5281/zenodo.3553579. https://zenodo.org/doi/10.5281/zenodo.3553579.
- ↑ Dirzo, Rodolfo; Raven, Peter H. (November 2003). "Global State of Biodiversity and Loss". Annual Review of Environment and Resources 28 (1): 137–167. doi:10.1146/annurev.energy.28.050302.105532. ISSN 1543-5938.
- ↑ "Biodiversity increases the resistance of ecosystem productivity to climate extremes". Nature 526 (7574): 574–577. 2015. doi:10.1038/nature15374. PMID 26466564. Bibcode: 2015Natur.526..574I.
- ↑ The State of the World's Biodiversity for Food and Agriculture (Report). Rome: FAO Commission on Genetic Resources for Food and Agriculture. 2019. http://www.fao.org/state-of-biodiversity-for-food-agriculture/en/. Retrieved February 22, 2019.
- ↑ "UN: Growing threat to food from decline in biodiversity". BBC News. February 22, 2019. https://www.bbc.co.uk/news/science-environment-47308235.
- ↑ 167.0 167.1 167.2 In brief – The State of the World's Biodiversity for Food and Agriculture. Rome: FAO. 2019. http://www.fao.org/3/ca3229en/ca3229en.pdf. Alt URL, text has been copied from this publication and a Wikipedia-specific license statement is available.
- ↑ 168.0 168.1 168.2 168.3 168.4 World Health Organization; Convention on Biological Diversity (2015) (in en). Connecting global priorities: biodiversity and human health: a state of knowledge review. Geneva: World Health Organization. ISBN 978-92-4-150853-7. https://iris.who.int/handle/10665/174012. Retrieved February 6, 2024.
- ↑ Lawler, Odette K; Allan, Hannah L; Baxter, Peter W J; Castagnino, Romi; Tor, Marina Corella; Dann, Leah E; Hungerford, Joshua; Karmacharya, Dibesh et al. (2021). "The COVID-19 pandemic is intricately linked to biodiversity loss and ecosystem health". The Lancet Planetary Health 5 (11): e840–e850. doi:10.1016/s2542-5196(21)00258-8. ISSN 2542-5196. PMID 34774124.
- ↑ Roopesh, J. (2008). "Marine organisms: Potential Source for Drug Discovery". Current Science 94 (3): 292. http://www.ias.ac.in/currsci/feb102008/292a.pdf. Retrieved February 6, 2024.
- ↑ Dhillion, S. S.; Svarstad, H.; Amundsen, C.; Bugge, H. C. (September 2002). "Bioprospecting: Effects on Environment and Development". Ambio 31 (6): 491–493. doi:10.1639/0044-7447(2002)031[0491:beoead2.0.co;2]. PMID 12436849.
- ↑ Cole, Andrew (2005). "Looking for new compounds in sea is endangering ecosystem". BMJ 330 (7504): 1350. doi:10.1136/bmj.330.7504.1350-d. PMID 15947392.
- ↑ "Red List Index". https://ourworldindata.org/grapher/red-list-index.
- ↑ 174.0 174.1 "A "Global Safety Net" to reverse biodiversity loss and stabilize Earth's climate". Science Advances 6 (36). September 2020. doi:10.1126/sciadv.abb2824. PMID 32917614. Bibcode: 2020SciA....6.2824D.
- ↑ "Bending the curve of biodiversity loss" (in en). phys.org. https://phys.org/news/2020-09-biodiversity-loss.html.
- ↑ Leclère, David; Obersteiner, Michael; Barrett, Mike; Butchart, Stuart H. M.; Chaudhary, Abhishek; De Palma, Adriana; DeClerck, Fabrice A. J.; Di Marco, Moreno et al. (September 2020). "Bending the curve of terrestrial biodiversity needs an integrated strategy". Nature 585 (7826): 551–556. doi:10.1038/s41586-020-2705-y. PMID 32908312. Bibcode: 2020Natur.585..551L. http://pure.iiasa.ac.at/id/eprint/16699/1/Leclere_et_al_ms_R3_CommentsAccepted.pdf. Retrieved March 7, 2023.
- ↑ "Aichi Biodiversity Targets". May 11, 2018. https://www.cbd.int/sp/targets/.
- ↑ "Convention on Biological Diversity" (in en). https://www.cbd.int/aichi-targets/target/11#:~:text=By%202020,%20at%20least%2017,well%20connected%20systems%20of%20protected.
- ↑ "The world set a 2020 deadline to save nature but not a single target was met, UN report says". CNN. September 16, 2020. https://edition.cnn.com/2020/09/16/world/un-biodiversity-report-intl-hnk-scli-scn/.
- ↑ Secretariat of the Convention on Biological Diversity (2020) Global Biodiversity Outlook 5 . Montreal.
- ↑ "Australia singled out for mammal extinction in UN's dire global biodiversity report". Australian Broadcasting Corporation. September 16, 2020. https://www.abc.net.au/news/science/2020-09-16/un-biodiversity-bramble-cay-melomys-extinction/12668356.
- ↑ "Countries pledge to reverse destruction of nature after missing biodiversity targets". Deutsche Welle. September 28, 2020. https://www.dw.com/en/global-biodiversity-outlook-targets-extinction-summit-new-york-pledge/a-54932895.
- ↑ "Why the US won't join the single most important treaty to protect nature". Vox. May 20, 2021. https://www.vox.com/22434172/us-cbd-treaty-biological-diversity-nature-conservation.
- ↑ "Nature's Paris moment: does the global bid to stem wildlife decline go far enough?". The Guardian. July 23, 2021. https://www.theguardian.com/environment/2021/jul/24/natures-paris-moment-does-the-global-bid-to-stem-wildlife-decline-go-far-enough.
- ↑ Einhorn, Catrin (December 19, 2022). "Nearly Every Country Signs On to a Sweeping Deal to Protect Nature". The New York Times. https://www.nytimes.com/2022/12/19/climate/biodiversity-cop15-montreal-30x30.html. "The United States is just one of two countries in the world that are not party to the Convention on Biological Diversity, largely because Republicans, who are typically opposed to joining treaties, have blocked United States membership. That means the American delegation was required to participate from the sidelines. (The only other country that has not joined the treaty is the Holy See.)"
- ↑ Danielsen, Finn; Ali, Natasha; Andrianandrasana, Herizo T.; Baquero, Andrea; Basilius, Umai; de Araujo Lima Constantino, Pedro; Despot-Belmonte, Katherine; Frederiksen, Per Ole et al. (2024). "Involving citizens in monitoring the Kunming–Montreal Global Biodiversity Framework" (in en). Nature Sustainability 7 (12): 1730–1739. doi:10.1038/s41893-024-01447-y. ISSN 2398-9629. Bibcode: 2024NatSu...7.1730D. https://www.nature.com/articles/s41893-024-01447-y.
- ↑ 187.0 187.1 Paddison, Laura (December 19, 2022). "More than 190 countries sign landmark agreement to halt the biodiversity crisis". CNN. https://www.cnn.com/2022/12/19/world/cop15-biodiversity-agreement-montreal-climate-scn-intl/index.html.
- ↑ Curry, Tierra (December 24, 2022). "COP15 biodiversity summit: Paving the road to extinction with good intentions". The Hill. https://thehill.com/opinion/energy-environment/3787000-cop15-biodiversity-summit-paving-the-road-to-extinction-with-good-intentions/.
- ↑ "Biodiversity crisis is worse than climate change, experts say". January 20, 2012. https://www.sciencedaily.com/releases/2012/01/120120010357.htm.
- ↑ Resolution adopted by the General Assembly on 6 July 2017 (Report). United Nations. 2017. https://undocs.org/A/RES/71/313. Retrieved February 1, 2024.
- ↑ "Goal 15: Life on Land – SDG Tracker" (in en). https://sdg-tracker.org/biodiversity. 50x50px Text was copied from this source, which is available under a Creative Commons Attribution 4.0 International License
- ↑ Greenfield, Patrick (2023-08-31). "Fifth of known species on Earth found in Unesco world heritage sites – survey" (in en-GB). The Guardian. ISSN 0261-3077. https://www.theguardian.com/environment/2023/aug/31/fifth-of-known-life-on-earth-found-in-unesco-world-heritage-sites-survey-finds-aoe.
- ↑ "New research underscores the vital role played by the World Heritage Convention in protecting biodiversity" (in en). UNESCO. https://www.unesco.org/en/articles/new-research-underscores-vital-role-played-world-heritage-convention-protecting-biodiversity.
Further reading
- Johns, David; Crist, Eileen; Sahgal, Bittu, eds (2022). "Ending the Colonization of the Non-Human World". Biological Conservation. https://www.sciencedirect.com/journal/biological-conservation/special-issue/10574WDL8SQ.
External links
- Biodiversity at Our World in Data
- "Forests, desertification and biodiversity". http://www.un.org/sustainabledevelopment/biodiversity/.
- Global Biodiversity Outlook Convention on Biological Diversity
- Biodiversity and Health WHO website
de:Verlust von Biodiversität
