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Ability of Thermophilic Lactic Acid Bacteria to Produce Aroma Compounds from Amino Acids

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Date 2004 Jul 9
PMID 15240255
Citations 24
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Abstract

Although a large number of key odorants of Swiss-type cheese result from amino acid catabolism, the amino acid catabolic pathways in the bacteria present in these cheeses are not well known. In this study, we compared the in vitro abilities of Lactobacillus delbrueckii subsp. lactis, Lactobacillus helveticus, and Streptococcus thermophilus to produce aroma compounds from three amino acids, leucine, phenylalanine, and methionine, under mid-pH conditions of cheese ripening (pH 5.5), and we investigated the catabolic pathways used by these bacteria. In the three lactic acid bacterial species, amino acid catabolism was initiated by a transamination step, which requires the presence of an alpha-keto acid such as alpha-ketoglutarate (alpha-KG) as the amino group acceptor, and produced alpha-keto acids. Only S. thermophilus exhibited glutamate dehydrogenase activity, which produces alpha-KG from glutamate, and consequently only S. thermophilus was capable of catabolizing amino acids in the reaction medium without alpha-KG addition. In the presence of alpha-KG, lactobacilli produced much more varied aroma compounds such as acids, aldehydes, and alcohols than S. thermophilus, which mainly produced alpha-keto acids and a small amount of hydroxy acids and acids. L. helveticus mainly produced acids from phenylalanine and leucine, while L. delbrueckii subsp. lactis produced larger amounts of alcohols and/or aldehydes. Formation of aldehydes, alcohols, and acids from alpha-keto acids by L. delbrueckii subsp. lactis mainly results from the action of an alpha-keto acid decarboxylase, which produces aldehydes that are then oxidized or reduced to acids or alcohols. In contrast, the enzyme involved in the alpha-keto acid conversion to acids in L. helveticus and S. thermophilus is an alpha-keto acid dehydrogenase that produces acyl coenzymes A.

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References
1.
Amarita F, Requena T, Pelaez C . Conversion of methionine to methional by Lactococcus lactis. FEMS Microbiol Lett. 2001; 204(1):189-95. DOI: 10.1111/j.1574-6968.2001.tb10884.x. View

2.
Klein N, Maillard M, Thierry A, Lortal S . Conversion of amino acids into aroma compounds by cell-free extracts of Lactobacillus helveticus. J Appl Microbiol. 2001; 91(3):404-11. DOI: 10.1046/j.1365-2672.2001.01391.x. View

3.
Rijnen L, Courtin P, Gripon J, Yvon M . Expression of a heterologous glutamate dehydrogenase gene in Lactococcus lactis highly improves the conversion of amino acids to aroma compounds. Appl Environ Microbiol. 2000; 66(4):1354-9. PMC: 91992. DOI: 10.1128/AEM.66.4.1354-1359.2000. View

4.
Fernandez M, van Doesburg W, Rutten G, Marugg J, Alting A, van Kranenburg R . Molecular and functional analyses of the metC gene of Lactococcus lactis, encoding cystathionine beta-lyase. Appl Environ Microbiol. 2000; 66(1):42-8. PMC: 91783. DOI: 10.1128/AEM.66.1.42-48.2000. View

5.
Rijnen L, Bonneau S, Yvon M . Genetic characterization of the major lactococcal aromatic aminotransferase and its involvement in conversion of amino acids to aroma compounds. Appl Environ Microbiol. 1999; 65(11):4873-80. PMC: 91656. DOI: 10.1128/AEM.65.11.4873-4880.1999. View