Mandelonitrile Lyase from Ximenia Americana L.: Stereospecificity and Lack of Flavin Prosthetic Group
Overview
Authors
Affiliations
A mandelonitrile lyase (EC 4.1.2.10) that catalyzes the dissociation of (S)-(-)-mandelonitrile to benzaldehyde and hydrogen cyanide has been purified to apparent homogeneity from leaves of Ximenia americana L. (Olacaceae). The lyase was purified 122-fold with 38% yield by chromatography on carboxymethyl-cellulose and chromatofocusing. The enzyme had a pH optimum of 5.5, with a Km value of 280 microM. Activity toward 4-hydroxy-(R,S)-mandelonitrile was 77% of that observed with the endogenous substrate; no activity was observed toward the aliphatic substrate acetone cyanohydrin. The enzyme was stable at 4 degrees C and at room temperature for at least 1 month. Native and subunit molecular weights of 38,000 and 36,500, respectively, suggest the enzyme is a monomer. The isoelectric point was pH 3.9 as determined by isoelectric focusing. Staining with periodic acid-Schiff and fluorescein-labeled concanavalin A reagents indicate this enzyme is a glycoprotein. In contrast to (R)-mandelonitrile lyases isolated from Prunus species, the Ximenia lyase does not appear to be a flavoprotein. A second enzyme that eluted from the chromatofocusing column at pH 4.0 was also active toward mandelonitrile. However, this form accounted for less than 10% of the total activity, and its specific activity was only 6% of that of the major component. Additional physical and kinetic studies suggested this activity may be due to a nonspecific enzyme that is active toward mandelonitrile.
Novel insight of the SVP gene involved in pedicel length based on genomics analysis in cherry.
Tan W, Zhou P, Huang X, Wang Z, Liao R, Hayat F Plant Cell Rep. 2025; 44(2):50.
PMID: 39907812 DOI: 10.1007/s00299-025-03439-4.
: Economic Importance, Medicinal Value, and Current Status in Ethiopia.
Kefelegn G, Desta B ScientificWorldJournal. 2021; 2021:8880021.
PMID: 33746636 PMC: 7960047. DOI: 10.1155/2021/8880021.
Nuylert A, Nakabayashi M, Yamaguchi T, Asano Y ACS Omega. 2020; 5(43):27896-27908.
PMID: 33163773 PMC: 7643134. DOI: 10.1021/acsomega.0c03070.
Poulton J Plant Physiol. 1990; 94(2):401-5.
PMID: 16667728 PMC: 1077245. DOI: 10.1104/pp.94.2.401.
Wajant H, Forster S, Selmar D, Effenberger F, Pfizenmaier K Plant Physiol. 1995; 109(4):1231-1238.
PMID: 12228664 PMC: 157655. DOI: 10.1104/pp.109.4.1231.