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dc.contributor.authorLei, V.-
dc.contributor.authorAmoa-Awua, W. K.-
dc.contributor.authorBrimer, L.-
dc.date.accessioned2017-10-04T11:25:58Z-
dc.date.available2017-10-04T11:25:58Z-
dc.date.issued1999-
dc.identifier.citationInternational Journal Of Food Microbiology, 53, 169-184en_US
dc.identifier.issn0168-1605-
dc.identifier.urihttps://csirspace.foodresearchgh.site/handle/123456789/115-
dc.description.abstractStrains of Lactobacillus plantarum, Leuconostoc mesenteroides, Candida tropicalis and Penicillium sclerotiorum were screened for 19 enzymatic activities using the commercial kit API zym (Bio Me´rieux). This activity was compared to the ability of degrading the toxic cyanogenic glycosides amygdalin, linamarin, and linseed cyanogens (a mixture of linustatin and neolinustatin). Good correlation between the b-glucosidase activity found in the API zym screening and the ability to degrade the cyanogenic glycosides was found for the first three species mentioned. P. sclerotiorum strains exhibited very high activity in the API zym test (substrate: 6-Br-2-naphthyl-beta-D-glucopyranoside), but proved unable to degrade any of the cyanogenic substrates. Among the seven strains of L. plantarum tested, a great variation was seen in the b-glucosidase activity as well as in the ability to degrade the cyanogens. This was also the case for the strains of C. tropicalis. However, all the glucosidase positive strains of these species were also able to degrade all of the cyanogens tested and at approximately the same rate. A co-culture of the most active strain of L. plantarum and C. tropicalis seemed to degrade linamarin faster than the mono cultures. L. plantarum LP1 (originally isolated from fermented cassava) was investigated in further detail. The hydrolytic activity of this strain was intracellular or cell bound, and b-bis-glycosides such as amygdalin were hydrolysed by a two-stage sequential mechanism as follows: (1) amygdalin to prunasin and (2) prunasin to cyanohydrin. Finally, inoculation of extracted linseed meal (containing linustatin and neolinustatin) with L. plantarum LP1 resulted in hydrolysis of the glycosidesen_US
dc.language.isoenen_US
dc.publisherElsevier Science B.V.en_US
dc.subjectLactobacillus plantarumen_US
dc.subjectLeuconostoc mesenteroidesen_US
dc.subjectCandida tropicalisen_US
dc.subjectPenicillium sclerotiorumen_US
dc.subjectBeta glucosidaseen_US
dc.subjectCyanogenic glycosidesen_US
dc.subjectAmygdalinen_US
dc.subjectLinamarinen_US
dc.subjectLinustatinen_US
dc.subjectLinseeden_US
dc.subjectFlaxen_US
dc.subjectCassavaen_US
dc.subjectDetoxificationen_US
dc.subjectCo-culturesen_US
dc.titleDegradation of cyanogenic glycosides by Lactobacillus plantarum strains from spontaneous cassava fermentation and other microorganismsen_US
dc.typeArticleen_US
dc.journalnameInternational Journal Of Food Microbiology-
Appears in Collections:Food Research Institute

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