The Complete Pathway for Thiosulfate Utilization in Saccharomyces cerevisiae
Author(s) -
Zhigang Chen,
Xi Zhang,
Huanjie Li,
Huaiwei Liu,
Yongzhen Xia,
Luying Xun
Publication year - 2018
Publication title -
applied and environmental microbiology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.552
H-Index - 324
eISSN - 1070-6291
pISSN - 0099-2240
DOI - 10.1128/aem.01241-18
Subject(s) - thiosulfate , rhodanese , assimilation (phonology) , biochemistry , sulfur , saccharomyces cerevisiae , sulfate , yeast , archaea , sulfurtransferase , bacteria , fermentation , biology , chemistry , enzyme , genetics , organic chemistry , gene , cysteine , linguistics , philosophy
Saccharomyces cerevisiae is known to grow with thiosulfate as a sulfur source, and it produces more ethanol when using thiosulfate than using sulfate. Here, we report how it assimilates thiosulfate. S. cerevisiae absorbed thiosulfate into the cell through two sulfate permeases, Sul1 and Sul2. Two rhodaneses, Rdl1 and Rdl2, converted thiosulfate to a persulfide and sulfite. The persulfide was reduced by cellular thiols to H 2 S, and sulfite was reduced by sulfite reductase to H 2 S. Cysteine synthase incorporated H 2 S into O -acetyl-l-homoserine to produce l-homocysteine, which is the precursor for cysteine and methionine in S. cerevisiae Several other rhodaneses replaced Rdl1 and Rdl2 for thiosulfate utilization in the yeast. Thus, any organisms with the sulfate assimilation system potentially could use thiosulfate as a sulfur source, since rhodaneses are common in most organisms. IMPORTANCE The complete pathway of thiosulfate assimilation in baker's yeast is determined. The finding reveals the extensive overlap between sulfate and thiosulfate assimilation. Rhodanese is the only additional enzyme for thiosulfate utilization. The common presence of rhodanese in most organisms, including Bacteria , Archaea , and Eukarya , suggests that most organisms with the sulfate assimilation system also use thiosulfate. Since it takes less energy to reduce thiosulfate than sulfate for assimilation, thiosulfate has the potential to become a choice of sulfur in optimized media for industrial fermentation.
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