Noncovalent Enzyme-substrate Interactions in the Catalytic Mechanism of Yeast Aldose Reductase
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The role of noncovalent interactions in the catalytic mechanism of aldose reductase from the yeast Candida tenuis was determined by steady-state kinetic analysis of the NADH-dependent reduction of various aldehydes, differing in hydrophobicity and the hydrogen bonding capability with the binary enzyme-NADH complex. In a series of aliphatic aldehydes, substrate hydrophobicity contributes up to 13.7 kJ/mol of binding energy. The aldehyde binding site of aldose reductase appears to be 1.4 times more hydrophobic than n-octanol and can accommodate a linear alkyl chain with at least seven methylene groups (approximately 14 A in length). Binding energy resulting from interactions at positions 3-6 of the aldehyde is distributed between increasing the catalytic constant 2.6-fold and decreasing the apparent dissociation constant 59-fold. Hydrogen bonding interactions of the enzyme nucleotide complex with the C-2(R) hydroxyl group of the aldehyde are crucial to transition state binding and contribute up to 17 kJ/mol of binding energy. A comparison of the kinetic data of yeast aldose reductase, a key enzyme in the metabolism of D-xylose, and human aldose reductase, a presumably perfect detoxification catalyst [Grimshaw, C. E. (1992) Biochemistry 31, 10139], clearly reflects these differences in physiological function.
Persson V, Foncillas R, Anderes T, Ginestet C, Gorwa-Grauslund M Biotechnol Biofuels Bioprod. 2023; 16(1):168.
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Quijano-Quinones R, Guadarrama-Moreno J, Quesadas-Rojas M, Mena-Rejon G, Castro-Segura C, Caceres-Castillo D RSC Adv. 2022; 11(13):7459-7465.
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Haase M, Kominek J, Langdon Q, Kurtzman C, Hittinger C FEMS Yeast Res. 2017; 17(3).
PMID: 28419220 PMC: 5418364. DOI: 10.1093/femsyr/fox019.
Klimacek M, Kirl E, Krahulec S, Longus K, Novy V, Nidetzky B Microb Cell Fact. 2014; 13(1):37.
PMID: 24606998 PMC: 4007572. DOI: 10.1186/1475-2859-13-37.
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Biswas D, Pandya V, Singh A, Mondal A, Kumaran S PLoS One. 2012; 7(9):e45525.
PMID: 23049810 PMC: 3458928. DOI: 10.1371/journal.pone.0045525.