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Sec66-Dependent Regulation of Yeast Spindle-Pole Body Duplication Through Pom152

In closed mitotic systems such as Saccharomyces cerevisiae, the nuclear envelope (NE) does not break down during mitosis, so microtubule-organizing centers such as the spindle-pole body (SPB) must be inserted into the NE to facilitate bipolar spindle formation and chromosome segregation. The mechani...

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Autores principales: Katta, Santharam S., Chen, Jingjing, Gardner, Jennifer M., Friederichs, Jennifer M., Smith, Sarah E., Gogol, Madelaine, Unruh, Jay R., Slaughter, Brian D., Jaspersen, Sue L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Genetics Society of America 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4676539/
https://www.ncbi.nlm.nih.gov/pubmed/26510791
http://dx.doi.org/10.1534/genetics.115.178012
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author Katta, Santharam S.
Chen, Jingjing
Gardner, Jennifer M.
Friederichs, Jennifer M.
Smith, Sarah E.
Gogol, Madelaine
Unruh, Jay R.
Slaughter, Brian D.
Jaspersen, Sue L.
author_facet Katta, Santharam S.
Chen, Jingjing
Gardner, Jennifer M.
Friederichs, Jennifer M.
Smith, Sarah E.
Gogol, Madelaine
Unruh, Jay R.
Slaughter, Brian D.
Jaspersen, Sue L.
author_sort Katta, Santharam S.
collection PubMed
description In closed mitotic systems such as Saccharomyces cerevisiae, the nuclear envelope (NE) does not break down during mitosis, so microtubule-organizing centers such as the spindle-pole body (SPB) must be inserted into the NE to facilitate bipolar spindle formation and chromosome segregation. The mechanism of SPB insertion has been linked to NE insertion of nuclear pore complexes (NPCs) through a series of genetic and physical interactions between NPCs and SPB components. To identify new genes involved in SPB duplication and NE insertion, we carried out genome-wide screens for suppressors of deletion alleles of SPB components, including Mps3 and Mps2. In addition to the nucleoporins POM152 and POM34, we found that elimination of SEC66/SEC71/KAR7 suppressed lethality of cells lacking MPS2 or MPS3. Sec66 is a nonessential subunit of the Sec63 complex that functions together with the Sec61 complex in import of proteins into the endoplasmic reticulum (ER). Cells lacking Sec66 have reduced levels of Pom152 protein but not Pom34 or Ndc1, a shared component of the NPC and SPB. The fact that Sec66 but not other subunits of the ER translocon bypass deletion mutants in SPB genes suggests a specific role for Sec66 in the control of Pom152 levels. Based on the observation that sec66∆ does not affect the distribution of Ndc1 on the NE or Ndc1 binding to the SPB, we propose that Sec66-mediated regulation of Pom152 plays an NPC-independent role in the control of SPB duplication.
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spelling pubmed-46765392015-12-15 Sec66-Dependent Regulation of Yeast Spindle-Pole Body Duplication Through Pom152 Katta, Santharam S. Chen, Jingjing Gardner, Jennifer M. Friederichs, Jennifer M. Smith, Sarah E. Gogol, Madelaine Unruh, Jay R. Slaughter, Brian D. Jaspersen, Sue L. Genetics Investigations In closed mitotic systems such as Saccharomyces cerevisiae, the nuclear envelope (NE) does not break down during mitosis, so microtubule-organizing centers such as the spindle-pole body (SPB) must be inserted into the NE to facilitate bipolar spindle formation and chromosome segregation. The mechanism of SPB insertion has been linked to NE insertion of nuclear pore complexes (NPCs) through a series of genetic and physical interactions between NPCs and SPB components. To identify new genes involved in SPB duplication and NE insertion, we carried out genome-wide screens for suppressors of deletion alleles of SPB components, including Mps3 and Mps2. In addition to the nucleoporins POM152 and POM34, we found that elimination of SEC66/SEC71/KAR7 suppressed lethality of cells lacking MPS2 or MPS3. Sec66 is a nonessential subunit of the Sec63 complex that functions together with the Sec61 complex in import of proteins into the endoplasmic reticulum (ER). Cells lacking Sec66 have reduced levels of Pom152 protein but not Pom34 or Ndc1, a shared component of the NPC and SPB. The fact that Sec66 but not other subunits of the ER translocon bypass deletion mutants in SPB genes suggests a specific role for Sec66 in the control of Pom152 levels. Based on the observation that sec66∆ does not affect the distribution of Ndc1 on the NE or Ndc1 binding to the SPB, we propose that Sec66-mediated regulation of Pom152 plays an NPC-independent role in the control of SPB duplication. Genetics Society of America 2015-12 2015-10-26 /pmc/articles/PMC4676539/ /pubmed/26510791 http://dx.doi.org/10.1534/genetics.115.178012 Text en Copyright © 2015 by the Genetics Society of America Available freely online through the author-supported open access option.
spellingShingle Investigations
Katta, Santharam S.
Chen, Jingjing
Gardner, Jennifer M.
Friederichs, Jennifer M.
Smith, Sarah E.
Gogol, Madelaine
Unruh, Jay R.
Slaughter, Brian D.
Jaspersen, Sue L.
Sec66-Dependent Regulation of Yeast Spindle-Pole Body Duplication Through Pom152
title Sec66-Dependent Regulation of Yeast Spindle-Pole Body Duplication Through Pom152
title_full Sec66-Dependent Regulation of Yeast Spindle-Pole Body Duplication Through Pom152
title_fullStr Sec66-Dependent Regulation of Yeast Spindle-Pole Body Duplication Through Pom152
title_full_unstemmed Sec66-Dependent Regulation of Yeast Spindle-Pole Body Duplication Through Pom152
title_short Sec66-Dependent Regulation of Yeast Spindle-Pole Body Duplication Through Pom152
title_sort sec66-dependent regulation of yeast spindle-pole body duplication through pom152
topic Investigations
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4676539/
https://www.ncbi.nlm.nih.gov/pubmed/26510791
http://dx.doi.org/10.1534/genetics.115.178012
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