Mutants Affecting the Structure of the Cortical Endoplasmic Reticulum in Saccharomyces cerevisiae
Open Access
- 7 August 2000
- journal article
- Published by Rockefeller University Press in The Journal of cell biology
- Vol. 150 (3) , 461-474
- https://doi.org/10.1083/jcb.150.3.461
Abstract
We find that the peripheral ER in Saccharomyces cerevisiae forms a dynamic network of interconnecting membrane tubules throughout the cell cycle, similar to the ER in higher eukaryotes. Maintenance of this network does not require microtubule or actin filaments, but its dynamic behavior is largely dependent on the actin cytoskeleton. We isolated three conditional mutants that disrupt peripheral ER structure. One has a mutation in a component of the COPI coat complex, which is required for vesicle budding. This mutant has a partial defect in ER segregation into daughter cells and disorganized ER in mother cells. A similar phenotype was found in other mutants with defects in vesicular trafficking between ER and Golgi complex, but not in mutants blocked at later steps in the secretory pathway. The other two mutants found in the screen have defects in the signal recognition particle (SRP) receptor. This receptor, along with SRP, targets ribosome–nascent chain complexes to the ER membrane for protein translocation. A conditional mutation in SRP also disrupts ER structure, but other mutants with translocation defects do not. We also demonstrate that, both in wild-type and mutant cells, the ER and mitochondria partially coalign, and that mutations that disrupt ER structure also affect mitochondrial structure. Our data suggest that both trafficking between the ER and Golgi complex and ribosome targeting are important for maintaining ER structure, and that proper ER structure may be required to maintain mitochondrial structure.Keywords
This publication has 68 references indexed in Scilit:
- Mitochondrial transmission during mating in Saccharomyces cerevisiae is determined by mitochondrial fusion and fission and the intramitochondrial segregation of mitochondrial DNA.Molecular Biology of the Cell, 1997
- A posttargeting signal sequence recognition event in the endoplasmic reticulum membraneCell, 1995
- SRP samples nascent chains for the presenceof signal sequences by interacting with ribosomes at a discrete step during translation elongationCell, 1995
- Actomyosin‐based motility of endoplasmic reticulum and chloroplasts in Vallisneria mesophyll cells*Biology of the Cell, 1995
- MMM1 encodes a mitochondrial outer membrane protein essential for establishing and maintaining the structure of yeast mitochondria.The Journal of cell biology, 1994
- Construction of the endoplasmic reticulum.The Journal of cell biology, 1989
- Segregation of the polypeptide translocation apparatus to regions of the endoplasmic reticulum containing ribophorins and ribosomes. I. Functional tests on rat liver microsomal subfractions.The Journal of cell biology, 1984
- Protein translocation across the endoplasmic reticulum. II. Isolation and characterization of the signal recognition particle receptor.The Journal of cell biology, 1982
- Protein translocation across the endoplasmic reticulum. I. Detection in the microsomal membrane of a receptor for the signal recognition particle.The Journal of cell biology, 1982
- Characterization of molecules involved in protein translocation using a specific antibody.The Journal of cell biology, 1982