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Contribution of Lactococcus Lactis Cell Envelope Proteinase Specificity to Peptide Accumulation and Bitterness in Reduced-fat Cheddar Cheese

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Date 2002 Mar 28
PMID 11916696
Citations 11
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Abstract

Bitterness is a flavor defect in Cheddar cheese that limits consumer acceptance, and specificity of the Lactococcus lactis extracellular proteinase (lactocepin) is widely believed to be a key factor in the development of bitter cheese. To better define the contribution of this enzyme to bitterness, we investigated peptide accumulation and bitterness in 50% reduced-fat Cheddar cheese manufactured with single isogenic strains of Lactococcus lactis as the only starter. Four isogens were developed for the study; one was lactocepin negative, and the others produced a lactocepin with group a, e, or h specificity. Analysis of cheese aqueous extracts by reversed-phase high-pressure liquid chromatography confirmed that accumulation of alpha(S1)-casein (f 1-23)-derived peptides f 1-9, f 1-13, f 1-16, and f 1-17 in cheese was directly influenced by lactocepin specificity. Trained sensory panelists demonstrated that Cheddar cheese made with isogenic starters that produced group a, e, or h lactocepin was significantly more bitter than cheese made with a proteinase-negative isogen and that propensity for bitterness was highest in cells that produced group h lactocepin. These results confirm the role of starter proteinase in bitterness and suggest that the propensity of some industrial strains for production of the bitter flavor defect in cheese could be altered by proteinase gene exchange or gene replacement.

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References
1.
Reid J, Coolbear T . Altered specificity of lactococcal proteinase p(i) (lactocepin I) in humectant systems reflecting the water activity and salt content of cheddar cheese. Appl Environ Microbiol. 2005; 64(2):588-93. PMC: 106087. DOI: 10.1128/AEM.64.2.588-593.1998. View

2.
Poquet I, Saint V, Seznec E, Simoes N, Bolotin A, Gruss A . HtrA is the unique surface housekeeping protease in Lactococcus lactis and is required for natural protein processing. Mol Microbiol. 2000; 35(5):1042-51. DOI: 10.1046/j.1365-2958.2000.01757.x. View

3.
Efstathiou J, McKay L . Inorganic salts resistance associated with a lactose-fermenting plasmid in Streptococcus lactis. J Bacteriol. 1977; 130(1):257-65. PMC: 235201. DOI: 10.1128/jb.130.1.257-265.1977. View

4.
Flambard B, Juillard V . The autoproteolysis of Lactococcus lactis lactocepin III affects its specificity towards beta-casein. Appl Environ Microbiol. 2000; 66(12):5134-40. PMC: 92434. DOI: 10.1128/AEM.66.12.5134-5140.2000. View

5.
Vos P, Simons G, Siezen R, de Vos W . Primary structure and organization of the gene for a procaryotic, cell envelope-located serine proteinase. J Biol Chem. 1989; 264(23):13579-85. View