Abstract
A systematic strategy was used to create a synoptic set of mutations that are distributed throughout the single beta-tubulin gene of Saccharomyces cerevisiae. Clusters of charged amino acids were targeted for mutagenesis and converted to alanine to maximize alterations on the protein's surface and minimize alterations that affect protein folding. Of the 55 mutations we constructed, three confer dominant-lethality, 11 confer recessive-lethality, 10 confer cold-sensitivity, one confers heat-sensitivity, and 27 confer altered resistance to benomyl. Only 11 alleles give no discernible phenotype. In spite of the fact that beta-tubulin is a highly conserved protein, three-fourths of the mutations do not destroy the ability of the protein to support the growth of yeast at 30 degrees C. The lethal substitutions are primarily located in three regions of the protein and presumably identify domains most critical for beta-tubulin function. Interestingly, most of the conditional-lethal alleles produce specific defects in spindle assembly at their restrictive temperature; cytoplasmic microtubules are relatively unaffected. The exceptions are two mutants that contain abnormally long cytoplasmic microtubules. Mutants with specific spindle defects were not observed in our previous collection of beta-tubulin mutants and should be valuable in dissecting spindle function.
MeSH Terms
Alleles
Amino Acid Sequence
Base Sequence
Benomyl/pharmacology
Cold Temperature
Drug Resistance, Microbial/genetics
Fungal Proteins/genetics
Genes, Dominant
Genes, Fungal
Genes, Lethal
Genes, Recessive
Hot Temperature
Microtubules/ultrastructure
Molecular Sequence Data
Mutagenesis, Site-Directed
Phenotype
Protein Folding
Recombinant Fusion Proteins/genetics
Saccharomyces cerevisiae/drug effects,genetics,growth & development,ultrastructure
Spindle Apparatus/ultrastructure
Tubulin/genetics
Chemicals
Fungal Proteins
Recombinant Fusion Proteins
Tubulin
Benomyl
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Reijo R A
Section of Biochemistry and Molecular and Cell Biology, Cornell University, Ithaca, New York 14853.
Cooper E M
Beagle G J
Huffaker T C
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