Abstract
The gene encoding clathrin heavy chain in Saccharomyces cerevisiae (CHC1) is not essential for growth in most laboratory strains tested. However, in certain genetic backgrounds, a deletion of CHC1 (chc1) results in cell death. Lethality in these chc1 strains is determined by a locus designated SCD1 (suppressor of clathrin deficiency) which is unlinked to CHC1 (S. K. Lemmon and E. W. Jones, Science 238:504-509, 1987). The lethal allele of SCD1 has no effect on cell growth when the wild-type version of CHC1 is present. This result led to the proposal that most yeast strains are viable in the absence of clathrin heavy chain because they possess the SCD1 suppressor. Discovery of another yeast strain that cannot grow without clathrin heavy chain has allowed us to perform a genetic test of the suppressor hypothesis. Genetic crosses show that clathrin-deficient lethality in the latter strain is conferred by a single genetic locus (termed CDL1, for clathrin-deficient lethality). By constructing strains in which CHC1 expression is regulated by the GAL10 promoter, we demonstrate that the lethal alleles of SCD1 and CDL1 are recessive. In both cases, very low expression of CHC1 can allow cells to escape from lethality. Genetic complementation and segregation analyses indicate that CDL1 and SCD1 are distinct genes. The lethal CDL1 allele does not cause a defect in the secretory pathway of either wild-type or clathrin heavy-chain-deficient yeast. A systematic screen to identify mutants unable to grow in the absence of clathrin heavy chain uncovered numerous genes similar to SCD1 and CDL1. These findings argue against the idea that viability of chc1 cells is due to genetic suppression, since this hypothesis would require the existence of a large number of unlinked genes, all of which are required for suppression. Instead, lethality appears to be a common, nonspecific occurrence when a second-site mutation arises in a strain whose cell growth is already severely compromised by the lack of clathrin heavy chain.
MeSH Terms
Chromosome Deletion
Clathrin/genetics
DNA, Fungal/genetics
Diploidy
Ethyl Methanesulfonate/pharmacology
Genes, Fungal
Genes, Lethal
Genotype
Heterozygote
Kinetics
Macromolecular Substances
Mutagenesis
Plasmids
Restriction Mapping
Saccharomyces cerevisiae/drug effects,genetics,growth & development
Spores, Fungal/physiology
Suppression, Genetic
Chemicals
Clathrin
DNA, Fungal
Macromolecular Substances
Ethyl Methanesulfonate
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Munn A L
Department of Biological Chemistry, UCLA School of Medicine 90024.
Silveira L
Elgort M
Payne G S
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