A New System for Comparative Functional Genomics of Saccharomyces Yeasts
Author(s) -
Amy A. Caudy,
Yuanfang Guan,
Yue Jia,
Christina Hansen,
Chris DeSevo,
Alicia P. Hayes,
Joy Agee,
Juan R. AlvarezDominguez,
Hugo F. Arellano,
Daniel R. Barrett,
Cynthia Bauerle,
Namita Bisaria,
Patrick H. Bradley,
Jeffrey S. Breunig,
Erin Bush,
David Cappel,
Emily J. Capra,
Walter W. Chen,
John J. Clore,
Peter A. Combs,
Christopher D Doucette,
Olukunle O. Demuren,
Peter Fellowes,
Samuel S. Freeman,
Evgeni M. Frenkel,
Daniel Gadala-Maria,
Richa Gawande,
David S. Glass,
Samuel Grossberg,
Anita Gupta,
Latanya Hammonds-Odie,
Aaron Hoisos,
Jenny H. Hsi,
Yu-Han H. Hsu,
Sachi Inukai,
Konrad J. Karczewski,
Xiaobo Ke,
Mina Kojima,
Samuel Leachman,
Danny Lieber,
Anna Liebowitz,
Julia Liu,
Yufei Liu,
Trevor Martin,
Jose Mena,
Rosa M. Mendoza,
Cameron Myhrvold,
Christian Millian,
Sarah J. Pfau,
Sandeep Raj,
Matt Rich,
Joe Rokicki,
William Rounds,
Michael J. Salazar,
Matthew Salesi,
Rajani Sharma,
Sanford J. Silverman,
Cara Singer,
S.R. Sinha,
Max V. Staller,
Philip Stern,
Hanlin Tang,
Sharon R. Weeks,
Maxwell Weidmann,
Ashley R. Wolf,
Carmen Young,
Jie Yuan,
Christopher A. Crutchfield,
Megan N. McClean,
Coleen T. Murphy,
Manuel Llinás,
David Botstein,
Olga G. Troyanskaya,
Maitreya J. Dunham
Publication year - 2013
Publication title -
genetics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.792
H-Index - 246
eISSN - 1943-2631
pISSN - 0016-6731
DOI - 10.1534/genetics.113.152918
Subject(s) - biology , genetics , genome , comparative genomics , gene , saccharomyces cerevisiae , model organism , functional genomics , computational biology , saccharomyces , human evolutionary genetics , genomics
Whole-genome sequencing, particularly in fungi, has progressed at a tremendous rate. More difficult, however, is experimental testing of the inferences about gene function that can be drawn from comparative sequence analysis alone. We present a genome-wide functional characterization of a sequenced but experimentally understudied budding yeast, Saccharomyces bayanus var. uvarum (henceforth referred to as S. bayanus), allowing us to map changes over the 20 million years that separate this organism from S. cerevisiae. We first created a suite of genetic tools to facilitate work in S. bayanus. Next, we measured the gene-expression response of S. bayanus to a diverse set of perturbations optimized using a computational approach to cover a diverse array of functionally relevant biological responses. The resulting data set reveals that gene-expression patterns are largely conserved, but significant changes may exist in regulatory networks such as carbohydrate utilization and meiosis. In addition to regulatory changes, our approach identified gene functions that have diverged. The functions of genes in core pathways are highly conserved, but we observed many changes in which genes are involved in osmotic stress, peroxisome biogenesis, and autophagy. A surprising number of genes specific to S. bayanus respond to oxidative stress, suggesting the organism may have evolved under different selection pressures than S. cerevisiae. This work expands the scope of genome-scale evolutionary studies from sequence-based analysis to rapid experimental characterization and could be adopted for functional mapping in any lineage of interest. Furthermore, our detailed characterization of S. bayanus provides a valuable resource for comparative functional genomics studies in yeast.
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