- THIS ARTICLE
- Full Text (PDF)
- Alert me when this article is cited
- Alert me if a correction is posted
- SERVICES
- Similar articles in this journal
- Similar articles in PubMed
- Alert me to new issues of the journal
- Download to citation manager
- Reprints & Permissions
- CITING ARTICLES
- Citing Articles via HighWire
- Citing Articles via Google Scholar
- GOOGLE SCHOLAR
- Articles by Falco, S. C.
- Articles by Dumas, K. S.
- Search for Related Content
- PUBMED
- PubMed Citation
- Articles by Falco, S. C.
- Articles by Dumas, K. S.
GENETIC ANALYSIS OF MUTANTS OF SACCHAROMYCES CEREVISIAE RESISTANT TO THE HERBICIDE SULFOMETURON METHYL
S. C. Falco 1 and K. S. Dumas 1
1 Central Research and Development Department, Experimental
Station, E. I. du Pont de Nemours and Company, Wilmington, Delaware 19898
Sulfometuron methyl (SM), a potent new sulfonylurea herbicide, inhibits growth of the yeast Saccharomyces cerevisiae on minimal media. Sixty-six spontaneous mutants resistant to SM were isolated. All of the resistance mutations segregate 2:2 in tetrads; 51 of the mutations are dominant, five are semidominant and ten are recessive. The mutations occur in three linkage groups, designated SMR1, smr2 and smr3. Several lines of evidence demonstrate that the SMR1 mutations (47 dominant and four semidominant) are alleles of ILV2 which encodes acetolactate synthase (ALS), the target of SM. First, SMR1 mutations result in the production of ALS enzyme activity with increased resistance to SM. Second, molecular cloning of the ILV2 gene permitted the isolation of mutations in the cloned gene which result in the production of SM-resistant ALS. Finally, SMR1 mutations map at the ILV2 locus. The smr2 mutations (four recessive, two dominant and one semidominant) map at the pdr1 (pleiotropic drug resistance) locus and show cross-resistance to other inhibitors, typical of mutations at this locus. The smr3 mutations (six recessive and two dominant) define a new gene which maps approximately midway between ADE2 and HIS3 on the right arm of chromosome XV.
Submitted on July 13, 1984Accepted on September 10, 1984
This article has been cited by other articles:
![]() |
J. Kota, M. Melin-Larsson, P. O. Ljungdahl, and H. Forsberg Ssh4, Rcr2 and Rcr1 Affect Plasma Membrane Transporter Activity in Saccharomyces cerevisiae Genetics, April 1, 2007; 175(4): 1681 - 1694. [Abstract] [Full Text] [PDF] |
||||
![]() |
S. MacPherson, M. Larochelle, and B. Turcotte A Fungal Family of Transcriptional Regulators: the Zinc Cluster Proteins Microbiol. Mol. Biol. Rev., September 1, 2006; 70(3): 583 - 604. [Abstract] [Full Text] [PDF] |
||||
![]() |
J. M. Kingsbury, Z. Yang, T. M. Ganous, G. M. Cox, and J. H. McCusker Cryptococcus neoformans Ilv2p confers resistance to sulfometuron methyl and is required for survival at 37 {degrees}C and in vivo Microbiology, May 1, 2004; 150(5): 1547 - 1558. [Abstract] [Full Text] [PDF] |
||||
![]() |
G. Schmitz and D. M. Downs Reduced Transaminase B (IlvE) Activity Caused by the Lack of yjgF Is Dependent on the Status of Threonine Deaminase (IlvA) in Salmonella enterica Serovar Typhimurium J. Bacteriol., February 1, 2004; 186(3): 803 - 810. [Abstract] [Full Text] [PDF] |
||||
![]() |
N. J. Morey, P. W. Doetsch, and S. Jinks-Robertson Delineating the Requirements for Spontaneous DNA Damage Resistance Pathways in Genome Maintenance and Viability in Saccharomyces cerevisiae Genetics, June 1, 2003; 164(2): 443 - 455. [Abstract] [Full Text] [PDF] |
||||
![]() |
K. L. Byrne and P. A. Meacock Thiamin auxotrophy in yeast through altered cofactor dependence of the enzyme acetohydroxyacid synthase Microbiology, September 1, 2001; 147(9): 2389 - 2398. [Abstract] [Full Text] [PDF] |
||||
![]() |
Y. Wei, A. C. Vollmer, and R. A. LaRossa In Vivo Titration of Mitomycin C Action by Four Escherichia coli Genomic Regions on Multicopy Plasmids J. Bacteriol., April 1, 2001; 183(7): 2259 - 2264. [Abstract] [Full Text] |
||||
![]() |
M. H. JIA, R. A. LAROSSA, J.-M. LEE, A. RAFALSKI, E. DEROSE, G. GONYE, and Z. XUE Global expression profiling of yeast treated with an inhibitor of amino acid biosynthesis, sulfometuron methyl Physiol Genomics, August 9, 2000; 3(2): 83 - 92. [Abstract] [Full Text] [PDF] |
||||
![]() |
C. E. Whitcomb An introduction to ALS-inhibiting herbicides Toxicology and Industrial Health, February 1, 1999; 15(1-2): 232 - 240. [Abstract] [PDF] |
||||
![]() |
S. Epelbaum, R. A. LaRossa, T. K. VanDyk, T. Elkayam, D. M. Chipman, and Z.'e. Barak Branched-Chain Amino Acid Biosynthesis in Salmonella typhimurium: a Quantitative Analysis J. Bacteriol., August 15, 1998; 180(16): 4056 - 4067. [Abstract] [Full Text] |
||||





