Affiliation:
1. Forest Products Laboratory, U.S. Department of Agriculture, Forest Service, Madison, Wisconsin 53705, and Department of Bacteriology, University of Wisconsin, Madison, Wisconsin 53706
Abstract
ABSTRACT
Two genes coding for isozymes of alcohol dehydrogenase (ADH); designated
PsADH1
and
PsADH2
, have been identified and isolated from
Pichia stipitis
CBS 6054 genomic DNA by Southern hybridization to
Saccharomyces cerevisiae ADH
genes, and their physiological roles have been characterized through disruption. The amino acid sequences of the PsADH1 and PsADH2 isozymes are 80.5% identical to one another and are 71.9 and 74.7% identical to the
S. cerevisiae
ADH1 protein. They also show a high level identity with the group I ADH proteins from
Kluyveromyces lactis
. The PsADH isozymes are presumably localized in the cytoplasm, as they do not possess the amino-terminal extension of mitochondrion-targeted ADHs. Gene disruption studies suggest that PsADH1 plays a major role in xylose fermentation because
PsADH1
disruption results in a lower growth rate and profoundly greater accumulation of xylitol. Disruption of
PsADH2
does not significantly affect ethanol production or aerobic growth on ethanol as long as
PsADH1
is present. The PsADH1 and PsADH2 isozymes appear to be equivalent in the ability to convert ethanol to acetaldehyde, and either is sufficient to allow cell growth on ethanol. However, disruption of both genes blocks growth on ethanol.
P. stipitis
strains disrupted in either
PsADH1
or
PsADH2
still accumulate ethanol, although in different amounts, when grown on xylose under oxygen-limited conditions. The
PsADH
double disruptant, which is unable to grow on ethanol, still produces ethanol from xylose at about 13% of the rate seen in the parental strain. Thus, deletion of both
PsADH1
and
PsADH2
blocks ethanol respiration but not production, implying a separate path for fermentation.
Publisher
American Society for Microbiology
Subject
Ecology,Applied Microbiology and Biotechnology,Food Science,Biotechnology
Cited by
51 articles.
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