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On the illusion of auxotrophy: met15Δ yeast cells can grow on inorganic sulfur, thanks to the previously uncharacterized homocysteine synthase Yll058w

Organisms must either synthesize or assimilate essential organic compounds to survive. The homocysteine synthase Met15 has been considered essential for inorganic sulfur assimilation in yeast since its discovery in the 1970s. As a result, MET15 has served as a genetic marker for hundreds of experime...

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Autores principales: Van Oss, S. Branden, Parikh, Saurin Bipin, Castilho Coelho, Nelson, Wacholder, Aaron, Belashov, Ivan, Zdancewicz, Sara, Michaca, Manuel, Xu, Jiazhen, Kang, Yun Pyo, Ward, Nathan P., Yoon, Sang Jun, McCourt, Katherine M., McKee, Jake, Ideker, Trey, VanDemark, Andrew P., DeNicola, Gina M., Carvunis, Anne-Ruxandra
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9763685/
https://www.ncbi.nlm.nih.gov/pubmed/36379252
http://dx.doi.org/10.1016/j.jbc.2022.102697
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author Van Oss, S. Branden
Parikh, Saurin Bipin
Castilho Coelho, Nelson
Wacholder, Aaron
Belashov, Ivan
Zdancewicz, Sara
Michaca, Manuel
Xu, Jiazhen
Kang, Yun Pyo
Ward, Nathan P.
Yoon, Sang Jun
McCourt, Katherine M.
McKee, Jake
Ideker, Trey
VanDemark, Andrew P.
DeNicola, Gina M.
Carvunis, Anne-Ruxandra
author_facet Van Oss, S. Branden
Parikh, Saurin Bipin
Castilho Coelho, Nelson
Wacholder, Aaron
Belashov, Ivan
Zdancewicz, Sara
Michaca, Manuel
Xu, Jiazhen
Kang, Yun Pyo
Ward, Nathan P.
Yoon, Sang Jun
McCourt, Katherine M.
McKee, Jake
Ideker, Trey
VanDemark, Andrew P.
DeNicola, Gina M.
Carvunis, Anne-Ruxandra
author_sort Van Oss, S. Branden
collection PubMed
description Organisms must either synthesize or assimilate essential organic compounds to survive. The homocysteine synthase Met15 has been considered essential for inorganic sulfur assimilation in yeast since its discovery in the 1970s. As a result, MET15 has served as a genetic marker for hundreds of experiments that play a foundational role in eukaryote genetics and systems biology. Nevertheless, we demonstrate here through structural and evolutionary modeling, in vitro kinetic assays, and genetic complementation, that an alternative homocysteine synthase encoded by the previously uncharacterized gene YLL058W enables cells lacking Met15 to assimilate enough inorganic sulfur for survival and proliferation. These cells however fail to grow in patches or liquid cultures unless provided with exogenous methionine or other organosulfurs. We show that this growth failure, which has historically justified the status of MET15 as a classic auxotrophic marker, is largely explained by toxic accumulation of the gas hydrogen sulfide because of a metabolic bottleneck. When patched or cultured with a hydrogen sulfide chelator, and when propagated as colony grids, cells without Met15 assimilate inorganic sulfur and grow, and cells with Met15 achieve even higher yields. Thus, Met15 is not essential for inorganic sulfur assimilation in yeast. Instead, MET15 is the first example of a yeast gene whose loss conditionally prevents growth in a manner that depends on local gas exchange. Our results have broad implications for investigations of sulfur metabolism, including studies of stress response, methionine restriction, and aging. More generally, our findings illustrate how unappreciated experimental variables can obfuscate biological discovery.
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spelling pubmed-97636852022-12-23 On the illusion of auxotrophy: met15Δ yeast cells can grow on inorganic sulfur, thanks to the previously uncharacterized homocysteine synthase Yll058w Van Oss, S. Branden Parikh, Saurin Bipin Castilho Coelho, Nelson Wacholder, Aaron Belashov, Ivan Zdancewicz, Sara Michaca, Manuel Xu, Jiazhen Kang, Yun Pyo Ward, Nathan P. Yoon, Sang Jun McCourt, Katherine M. McKee, Jake Ideker, Trey VanDemark, Andrew P. DeNicola, Gina M. Carvunis, Anne-Ruxandra J Biol Chem Research Article Organisms must either synthesize or assimilate essential organic compounds to survive. The homocysteine synthase Met15 has been considered essential for inorganic sulfur assimilation in yeast since its discovery in the 1970s. As a result, MET15 has served as a genetic marker for hundreds of experiments that play a foundational role in eukaryote genetics and systems biology. Nevertheless, we demonstrate here through structural and evolutionary modeling, in vitro kinetic assays, and genetic complementation, that an alternative homocysteine synthase encoded by the previously uncharacterized gene YLL058W enables cells lacking Met15 to assimilate enough inorganic sulfur for survival and proliferation. These cells however fail to grow in patches or liquid cultures unless provided with exogenous methionine or other organosulfurs. We show that this growth failure, which has historically justified the status of MET15 as a classic auxotrophic marker, is largely explained by toxic accumulation of the gas hydrogen sulfide because of a metabolic bottleneck. When patched or cultured with a hydrogen sulfide chelator, and when propagated as colony grids, cells without Met15 assimilate inorganic sulfur and grow, and cells with Met15 achieve even higher yields. Thus, Met15 is not essential for inorganic sulfur assimilation in yeast. Instead, MET15 is the first example of a yeast gene whose loss conditionally prevents growth in a manner that depends on local gas exchange. Our results have broad implications for investigations of sulfur metabolism, including studies of stress response, methionine restriction, and aging. More generally, our findings illustrate how unappreciated experimental variables can obfuscate biological discovery. American Society for Biochemistry and Molecular Biology 2022-11-13 /pmc/articles/PMC9763685/ /pubmed/36379252 http://dx.doi.org/10.1016/j.jbc.2022.102697 Text en © 2022 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Article
Van Oss, S. Branden
Parikh, Saurin Bipin
Castilho Coelho, Nelson
Wacholder, Aaron
Belashov, Ivan
Zdancewicz, Sara
Michaca, Manuel
Xu, Jiazhen
Kang, Yun Pyo
Ward, Nathan P.
Yoon, Sang Jun
McCourt, Katherine M.
McKee, Jake
Ideker, Trey
VanDemark, Andrew P.
DeNicola, Gina M.
Carvunis, Anne-Ruxandra
On the illusion of auxotrophy: met15Δ yeast cells can grow on inorganic sulfur, thanks to the previously uncharacterized homocysteine synthase Yll058w
title On the illusion of auxotrophy: met15Δ yeast cells can grow on inorganic sulfur, thanks to the previously uncharacterized homocysteine synthase Yll058w
title_full On the illusion of auxotrophy: met15Δ yeast cells can grow on inorganic sulfur, thanks to the previously uncharacterized homocysteine synthase Yll058w
title_fullStr On the illusion of auxotrophy: met15Δ yeast cells can grow on inorganic sulfur, thanks to the previously uncharacterized homocysteine synthase Yll058w
title_full_unstemmed On the illusion of auxotrophy: met15Δ yeast cells can grow on inorganic sulfur, thanks to the previously uncharacterized homocysteine synthase Yll058w
title_short On the illusion of auxotrophy: met15Δ yeast cells can grow on inorganic sulfur, thanks to the previously uncharacterized homocysteine synthase Yll058w
title_sort on the illusion of auxotrophy: met15δ yeast cells can grow on inorganic sulfur, thanks to the previously uncharacterized homocysteine synthase yll058w
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9763685/
https://www.ncbi.nlm.nih.gov/pubmed/36379252
http://dx.doi.org/10.1016/j.jbc.2022.102697
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