Chemistry:Malonic acid

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Short description: Carboxylic acid with chemical formula CH2(COOH)2
Malonic acid
Skeletal formula of malonic acid
Ball-and-stick model of the malonic acid molecule
Names
Preferred IUPAC name
Propanedioic acid[1]
Other names
Methanedicarboxylic acid
Identifiers
3D model (JSmol)
ChEBI
ChEMBL
ChemSpider
DrugBank
UNII
Properties
C3H4O4
Molar mass 104.061 g·mol−1
Density 1.619 g/cm3
Melting point 135 to 137 °C (275 to 279 °F; 408 to 410 K) (decomposes)
Boiling point decomposes
763 g/L
Acidity (pKa) pKa1 = 2.83[2]
pKa2 = 5.69[2]
-46.3·10−6 cm3/mol
Related compounds
Other anions
Malonate
Oxalic acid
Propionic acid
Succinic acid
Fumaric acid
Related compounds
Malondialdehyde
Dimethyl malonate
Hazards
Safety data sheet External MSDS
Except where otherwise noted, data are given for materials in their standard state (at 25 °C [77 °F], 100 kPa).
Infobox references

Malonic acid (IUPAC systematic name: propanedioic acid) is a dicarboxylic acid with structure CH2(COOH)2. The ionized form of malonic acid, as well as its esters and salts, are known as malonates. For example, diethyl malonate is malonic acid's diethyl ester. The name originates from the Greek word μᾶλον (malon) meaning 'apple'.

History

Malonic acid[3] is a naturally occurring substance found in many fruits and vegetables.[4] There is a suggestion that citrus fruits produced in organic farming contain higher levels of malonic acid than fruits produced in conventional agriculture.[5]

Malonic acid was first prepared in 1858 by the French chemist Victor Dessaignes via the oxidation of malic acid.[3][6]

Structure and preparation

The structure has been determined by X-ray crystallography[7] and extensive property data including for condensed phase thermochemistry are available from the National Institute of Standards and Technology.[8] A classical preparation of malonic acid starts from chloroacetic acid:[9]

Preparation of malonic acid from chloroacetic acid.

Sodium carbonate generates the sodium salt, which is then reacted with sodium cyanide to provide the sodium salt of cyanoacetic acid via a nucleophilic substitution. The nitrile group can be hydrolyzed with sodium hydroxide to sodium malonate, and acidification affords malonic acid. Industrially, however, malonic acid is produced by hydrolysis of dimethyl malonate or diethyl malonate.[10] It has also been produced through fermentation of glucose.[11]

Organic reactions

Malonic acid reacts as a typical carboxylic acid: forming amide, ester, anhydride, and chloride derivatives.[12] Malonic anhydride can be used as an intermediate to mono-ester or amide derivatives, while malonyl chloride is most useful to obtain diesters or diamides. In a well-known reaction, malonic acid condenses with urea to form barbituric acid. Malonic acid may also be condensed with acetone to form Meldrum's acid, a versatile intermediate in further transformations. The esters of malonic acid are also used as a CH2COOH synthon in the malonic ester synthesis.

Mitochondrial fatty acid synthesis

Malonic acid is the starting substrate of mitochondrial fatty acid synthesis (mtFASII), in which it is converted to malonyl-CoA by malonyl-CoA synthetase (ACSF3).[13][14]

Additionally, the coenzyme A derivative of malonate, malonyl-CoA, is an important precursor in cytosolic fatty acid biosynthesis along with acetyl CoA. Malonyl CoA is formed there from acetyl CoA by the action of acetyl-CoA carboxylase, and the malonate is transferred to an acyl carrier protein to be added to a fatty acid chain.

Briggs–Rauscher reaction

Malonic acid is a key component in the Briggs–Rauscher reaction, the classic example of an oscillating chemical reaction.[15]

Knoevenagel condensation

In Knoevenagel condensation, malonic acid or its diesters are reacted with the carbonyl group of an aldehyde or ketone, followed by a dehydration reaction.

Z=COOH (malonic acid) or Z=COOR' (malonate ester)

When malonic acid itself is used, it is normally because the desired product is one in which a second step has occurred, with loss of carbon dioxide, in the so-called Doebner modification.[16]

The Doebner modification of the Knoevenagel condensation.

Thus, for example, the reaction product of acrolein and malonic acid in pyridine is trans-2,4-Pentadienoic acid with one carboxylic acid group and not two.[17]

Preparation of carbon suboxide

Carbon suboxide is prepared by warming a dry mixture of phosphorus pentoxide (P
4
O
10
) and malonic acid.[18] It reacts in a similar way to malonic anhydride, forming malonates.[19]

Applications

Malonic acid is a precursor to specialty polyesters. It can be converted into 1,3-propanediol for use in polyesters and polymers (whose usefulness is unclear though). It can also be a component in alkyd resins, which are used in a number of coatings applications for protecting against damage caused by UV light, oxidation, and corrosion. One application of malonic acid is in the coatings industry as a crosslinker for low-temperature cure powder coatings, which are becoming increasingly valuable for heat sensitive substrates and a desire to speed up the coatings process.[20] The global coatings market for automobiles was estimated to be $18.59 billion in 2014 with projected combined annual growth rate of 5.1% through 2022.[21]

It is used in a number of manufacturing processes as a high value specialty chemical including the electronics industry, flavors and fragrances industry,[4] specialty solvents, polymer crosslinking, and pharmaceutical industry. In 2004, annual global production of malonic acid and related diesters was over 20,000 metric tons.[22] Potential growth of these markets could result from advances in industrial biotechnology that seeks to displace petroleum-based chemicals in industrial applications.

In 2004, malonic acid was listed by the US Department of Energy as one of the top 30 chemicals to be produced from biomass.[23]

In food and drug applications, malonic acid can be used to control acidity, either as an excipient in pharmaceutical formulation or natural preservative additive for foods.[4]

Malonic acid is used as a building block chemical to produce numerous valuable compounds,[24] including the flavor and fragrance compounds gamma-nonalactone, cinnamic acid, and the pharmaceutical compound valproate.

Malonic acid (up to 37.5% w/w) has been used to cross-link corn and potato starches to produce a biodegradable thermoplastic; the process is performed in water using non-toxic catalysts.[25][26] Starch-based polymers comprised 38% of the global biodegradable polymers market in 2014 with food packaging, foam packaging, and compost bags as the largest end-use segments.[27]

Eastman Kodak company and others use malonic acid and derivatives as a surgical adhesive.[28]

Pathology

If elevated malonic acid levels are accompanied by elevated methylmalonic acid levels, this may indicate the metabolic disease combined malonic and methylmalonic aciduria (CMAMMA). By calculating the malonic acid to methylmalonic acid ratio in blood plasma, CMAMMA can be distinguished from classic methylmalonic acidemia.[29]

Biochemistry

Malonic acid is the classic example of a competitive inhibitor of the enzyme succinate dehydrogenase (complex II), in the respiratory electron transport chain.[30] It binds to the active site of the enzyme without reacting, competing with the usual substrate succinate but lacking the −CH2CH2− group required for dehydrogenation. This observation was used to deduce the structure of the active site in succinate dehydrogenase. Inhibition of this enzyme decreases cellular respiration.[31][32] Since malonic acid is a natural component of many foods, it is present in mammals including humans.[33]

Related Chemicals

The fluorinated version of malonic acide is difluoromalonic acid.[1]

Chemical structure of the malonate dianion.

Malonic acid is diprotic; that is, it can donate two protons per molecule. Its first [math]\displaystyle{ pK a }[/math] is 2.8 and the second is 5.7.[2] Thus the malonate ion can be HOOCCH
2
COO
or CH
2
(COO)2−
2
. Malonate or propanedioate compounds include salts and esters of malonic acid, such as

References

  1. International Union of Pure and Applied Chemistry (2014). Nomenclature of Organic Chemistry: IUPAC Recommendations and Preferred Names 2013. The Royal Society of Chemistry. pp. 746. doi:10.1039/9781849733069. ISBN 978-0-85404-182-4. 
  2. 2.0 2.1 2.2 pKa Data Compiled by R. Williams (pdf; 77 kB)
  3. 3.0 3.1 Chisholm, Hugh, ed (1911). "Malonic Acid". Encyclopædia Britannica. 17 (11th ed.). Cambridge University Press. p. 495. 
  4. 4.0 4.1 4.2 "Propanedioic acid". http://www.thegoodscentscompany.com/data/rw1030881.html. 
  5. "Organic Acids Concentration in Citrus Juice from Conventional Versus Organic Farming". Acta Horticulturae 933 (933): 601–606. 2012. doi:10.17660/actahortic.2012.933.78. ISSN 0567-7572. https://www.researchgate.net/publication/216429503. 
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  7. "An experimental charge density study of aliphatic dicarboxylic acids". Journal of Molecular Structure 521 (1–3): 97–106. 2000. doi:10.1016/S0022-2860(99)00293-8. Bibcode2000JMoSt.521...97S. 
  8. NIST Chemistry WebBook. "Propanedioic acid". https://webbook.nist.gov/cgi/inchi/InChI%3D1S/C3H4O4/c4-2(5)1-3(6)7/h1H2%2C(H%2C4%2C5)(H%2C6%2C7). 
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  10. Britton EC, Ezra M, "Production of malonic acid", US patent 2373011, issued 1945-04-03, assigned to Dow Chemical Co
  11. Dietrich JA, "Recombinant host cells for the production of malonate.", US patent 20200172941, assigned to Lygos Inc
  12. "Malonic Acid and Derivatives". Van Nostrand's Encyclopedia of Chemistry. 2005. doi:10.1002/0471740039.vec1571. ISBN 0471740039. 
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  14. Bowman, Caitlyn E.; Rodriguez, Susana; Selen Alpergin, Ebru S.; Acoba, Michelle G.; Zhao, Liang; Hartung, Thomas; Claypool, Steven M.; Watkins, Paul A. et al. (2017). "The Mammalian Malonyl-CoA Synthetase ACSF3 Is Required for Mitochondrial Protein Malonylation and Metabolic Efficiency" (in en). Cell Chemical Biology 24 (6): 673–684.e4. doi:10.1016/j.chembiol.2017.04.009. PMID 28479296. PMC 5482780. https://linkinghub.elsevier.com/retrieve/pii/S2451945617301095. 
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  16. "Ueber die der Sorbinsäure homologen, ungesättigten Säuren mit zwei Doppelbindungen". Berichte der Deutschen Chemischen Gesellschaft 35: 1136–36. 1902. doi:10.1002/cber.190203501187. https://zenodo.org/record/1426042. 
  17. "1-N-Acylamino-1,3-dienes from 2,4-pentadienoic acids by the Curtius rearrangement: benzyl trans-1,3-butadiene-1-carbamate". Organic Syntheses. 1988. http://www.orgsyn.org/demo.aspx?prep=cv6p0095. ; Collective Volume, 6, pp. 95 
  18. "Ueber das Kohlensuboxyd. I". Chem. Ber. 39: 689–697. 1906. doi:10.1002/cber.190603901103. https://zenodo.org/record/1426170. 
  19. "Paradigms and Paradoxes: Aspects of the Energetics of Carboxylic Acids and Their Anhydrides". Structural Chemistry 11 (4): 265–269. 2000. doi:10.1023/A:1009270411806. 
  20. "Diethylmalonate blocked isocyanate as crosslinkers for low temperature cure powder coatings.". Proceedings of 31st International Waterborene, High-Solids and Powder Coating Symposium. February 2004. 
  21. Global Automotive Coatings Market. 2015 Grand View Research Market Report (Report). 
  22. "Malonic acid diesters". UNEP Publications. http://www.inchem.org/documents/sids/sids/malonates.pdf. 
  23. Top Value Added Chemicals From Biomass. Volume I: Results of Screening for Potential Candidates from Sugars and Synthesis Gas (Report). US Department of Energy. August 2004. doi:10.2172/926125. https://www.pnnl.gov/main/publications/external/technical_reports/PNNL-14808.pdf. 
  24. Hildbrand, S.; Pollak, P. Malonic Acid & Derivatives. March 15, 2001. Ullmann's Encyclopedia of Industrial Chemistry
  25. Netravali AN, Dastidar TG, "Crosslinked native and waxy starch resin compositions and processes for their manufacture.", US patent 9790350, assigned to Cornell University
  26. "'Green' crosslinking of native starches with malonic acid and their properties". Carbohydrate Polymers 90 (4): 1620–8. November 2012. doi:10.1016/j.carbpol.2012.07.041. PMID 22944425. 
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  28. Hawkins G, Fassett D, "Surgical Adhesive Compositions", US patent 3591676
  29. "A New Approach for Fast Metabolic Diagnostics in CMAMMA". JIMD Reports (Berlin, Heidelberg: Springer) 30: 15–22. 2016. doi:10.1007/8904_2016_531. ISBN 978-3-662-53681-0. PMID 26915364. 
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  31. "Studies on the Mechanism of Hydrogen Transport in Animal Tissues : VI. Inhibitor Studies with Succinic Dehydrogenase". The Journal of General Physiology 26 (4): 391–404. March 1943. doi:10.1085/jgp.26.4.391. PMID 19873352. 
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  33. "Metabocard for Malonic acid". 2020-03-13. https://hmdb.ca/metabolites/HMDB0000691. 

External links