Induction of NADPH‐linked D‐xylose reductase and NAD‐linked xylitol dehydrogenase activities in Pachysolen tannophilus by D‐xylose, L‐arabinose, or D‐galactose
- 1 March 1985
- journal article
- research article
- Published by Wiley in Biotechnology & Bioengineering
- Vol. 27 (3) , 302-307
- https://doi.org/10.1002/bit.260270314
Abstract
Considerable interest in the D-xylose catabolic pathway of Pachysolen tannophilus has arisen from the discovery that this yeast is capable of fermenting D-xylose to ethanol. In this organism D-xylose appears to be catabolized through xylitol to D-xylulose. NADPH-linked D-xylose reductase is primarily responsible for the conversion of D-xylose to xylitol, while NAD-linked xylitol dehydrogenase is primarily responsible for the subsequent conversion of xylitol to D-xylulose. Both enzyme activities are readily detectable in cell-free extracts of P. tannophilus grown in medium containing D-xylose, L-arabinose, or D-galactose and appear to be inducible since extracts prepared from cells growth in media containing other carbon sources have only negligible activities, if any. Like D-xylose, L-arabinose and D-galactose were found to serve as substrates for NADPH-linked reactions in extracts of cells grown in medium containing D-xylose, L-arabinose, or D-galactose. These L-arabinose and D-galactose NADPH-linked activities also appear to be inducible, since only minor activity with L-arabinose and no activity with D-galactose is detected in extracts of cells grown in D-glucose medium. The NADPH-linked activities obtained with these three sugars may result from the actions of distinctly different enzymes or from a single aldose reductase acting on different substrates. High-performance liquid chromatography and gas-liquid chromatography of in vitro D-xylose, L-arabinose, and D-galactose NADPH-linked reactions confirmed xylitol, L-arabitol, and galactitol as the respective conversion products of these sugars. Unlike xylitol, however, neither L-arabitol nor galactitol would support comparable NAD-linked reaction(s) in cellfree extracts of induced P. tannophilus. Thus, the metabolic pathway of D-xylose diverges from those of L-arabinose or D-galactose following formation of the pentitol.This publication has 18 references indexed in Scilit:
- Fermentation of D-xylose to ethanol by a strain ofCandida shehataeBiotechnology Letters, 1983
- Continuous conversion ofD-xylose to ethanol by immobilizedpachysolen tannophilusBiotechnology & Bioengineering, 1982
- Enhanced rate of ethanol production from D-xylose using recycled or immobilized cells ofPachysolen tannophilusBiotechnology Letters, 1981
- A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye bindingAnalytical Biochemistry, 1976
- Purification and properties of polyol: NADP oxidoreductase from pichia quercuum.Agricultural and Biological Chemistry, 1975
- The Catabolism of Acyclic Polyols by YeastsJournal of General Microbiology, 1968
- l-arabinose metabolism by cell-free extracts of Penicillium chrysogenumBiochimica et Biophysica Acta, 1961
- A new pathway of pentose metabolismBiochemical and Biophysical Research Communications, 1960
- Metabolism of D-Xylose by MouldsNature, 1960
- Pentose metabolism in candida albicans. I. The reduction of D-xylose and L-arabinoseBiochemical and Biophysical Research Communications, 1960