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A Conserved Requirement for Fbxo7 During Male Germ Cell Cytoplasmic Remodeling

Fbxo7 is the substrate-recognition subunit of an SCF-type ubiquitin E3 ligase complex. It has physiologically important functions in regulating mitophagy, proteasome activity and the cell cycle in multiple cell types, like neurons, lymphocytes and erythrocytes. Here, we show that in addition to the...

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Autores principales: Rathje, Claudia C., Randle, Suzanne J., Al Rawi, Sara, Skinner, Benjamin M., Nelson, David E., Majumdar, Antara, Johnson, Emma E. P., Bacon, Joanne, Vlazaki, Myrto, Affara, Nabeel A., Ellis, Peter J., Laman, Heike
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6795710/
https://www.ncbi.nlm.nih.gov/pubmed/31649556
http://dx.doi.org/10.3389/fphys.2019.01278
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author Rathje, Claudia C.
Randle, Suzanne J.
Al Rawi, Sara
Skinner, Benjamin M.
Nelson, David E.
Majumdar, Antara
Johnson, Emma E. P.
Bacon, Joanne
Vlazaki, Myrto
Affara, Nabeel A.
Ellis, Peter J.
Laman, Heike
author_facet Rathje, Claudia C.
Randle, Suzanne J.
Al Rawi, Sara
Skinner, Benjamin M.
Nelson, David E.
Majumdar, Antara
Johnson, Emma E. P.
Bacon, Joanne
Vlazaki, Myrto
Affara, Nabeel A.
Ellis, Peter J.
Laman, Heike
author_sort Rathje, Claudia C.
collection PubMed
description Fbxo7 is the substrate-recognition subunit of an SCF-type ubiquitin E3 ligase complex. It has physiologically important functions in regulating mitophagy, proteasome activity and the cell cycle in multiple cell types, like neurons, lymphocytes and erythrocytes. Here, we show that in addition to the previously known Parkinsonian and hematopoietic phenotypes, male mice with reduced Fbxo7 expression are sterile. In these males, despite successful meiosis, nuclear elongation and eviction of histones from chromatin, the developing spermatids are phagocytosed by Sertoli cells during late spermiogenesis, as the spermatids undergo cytoplasmic remodeling. Surprisingly, despite the loss of all germ cells, there was no evidence of the symplast formation and cell sloughing that is typically associated with spermatid death in other mouse sterility models, suggesting that novel cell death and/or cell disposal mechanisms may be engaged in Fbxo7 mutant males. Mutation of the Drosophila Fbxo7 ortholog, nutcracker (ntc) also leads to sterility with germ cell death during cytoplasmic remodeling, indicating that the requirement for Fbxo7 at this stage is conserved. The ntc phenotype was attributed to decreased levels of the proteasome regulator, DmPI31 and reduced proteasome activity. Consistent with the fly model, we observe a reduction in PI31 levels in mutant mice; however, there is no alteration in proteasome activity in whole mouse testes. Our results are consistent with findings that Fbxo7 regulates PI31 protein levels, and indicates that a defect at the late stages of spermiogenesis, possibly due to faulty spatial dynamics of proteasomes during cytoplasmic remodeling, may underlie the fertility phenotype in mice.
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spelling pubmed-67957102019-10-24 A Conserved Requirement for Fbxo7 During Male Germ Cell Cytoplasmic Remodeling Rathje, Claudia C. Randle, Suzanne J. Al Rawi, Sara Skinner, Benjamin M. Nelson, David E. Majumdar, Antara Johnson, Emma E. P. Bacon, Joanne Vlazaki, Myrto Affara, Nabeel A. Ellis, Peter J. Laman, Heike Front Physiol Physiology Fbxo7 is the substrate-recognition subunit of an SCF-type ubiquitin E3 ligase complex. It has physiologically important functions in regulating mitophagy, proteasome activity and the cell cycle in multiple cell types, like neurons, lymphocytes and erythrocytes. Here, we show that in addition to the previously known Parkinsonian and hematopoietic phenotypes, male mice with reduced Fbxo7 expression are sterile. In these males, despite successful meiosis, nuclear elongation and eviction of histones from chromatin, the developing spermatids are phagocytosed by Sertoli cells during late spermiogenesis, as the spermatids undergo cytoplasmic remodeling. Surprisingly, despite the loss of all germ cells, there was no evidence of the symplast formation and cell sloughing that is typically associated with spermatid death in other mouse sterility models, suggesting that novel cell death and/or cell disposal mechanisms may be engaged in Fbxo7 mutant males. Mutation of the Drosophila Fbxo7 ortholog, nutcracker (ntc) also leads to sterility with germ cell death during cytoplasmic remodeling, indicating that the requirement for Fbxo7 at this stage is conserved. The ntc phenotype was attributed to decreased levels of the proteasome regulator, DmPI31 and reduced proteasome activity. Consistent with the fly model, we observe a reduction in PI31 levels in mutant mice; however, there is no alteration in proteasome activity in whole mouse testes. Our results are consistent with findings that Fbxo7 regulates PI31 protein levels, and indicates that a defect at the late stages of spermiogenesis, possibly due to faulty spatial dynamics of proteasomes during cytoplasmic remodeling, may underlie the fertility phenotype in mice. Frontiers Media S.A. 2019-10-10 /pmc/articles/PMC6795710/ /pubmed/31649556 http://dx.doi.org/10.3389/fphys.2019.01278 Text en Copyright © 2019 Rathje, Randle, Al Rawi, Skinner, Nelson, Majumdar, Johnson, Bacon, Vlazaki, Affara, Ellis and Laman. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Physiology
Rathje, Claudia C.
Randle, Suzanne J.
Al Rawi, Sara
Skinner, Benjamin M.
Nelson, David E.
Majumdar, Antara
Johnson, Emma E. P.
Bacon, Joanne
Vlazaki, Myrto
Affara, Nabeel A.
Ellis, Peter J.
Laman, Heike
A Conserved Requirement for Fbxo7 During Male Germ Cell Cytoplasmic Remodeling
title A Conserved Requirement for Fbxo7 During Male Germ Cell Cytoplasmic Remodeling
title_full A Conserved Requirement for Fbxo7 During Male Germ Cell Cytoplasmic Remodeling
title_fullStr A Conserved Requirement for Fbxo7 During Male Germ Cell Cytoplasmic Remodeling
title_full_unstemmed A Conserved Requirement for Fbxo7 During Male Germ Cell Cytoplasmic Remodeling
title_short A Conserved Requirement for Fbxo7 During Male Germ Cell Cytoplasmic Remodeling
title_sort conserved requirement for fbxo7 during male germ cell cytoplasmic remodeling
topic Physiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6795710/
https://www.ncbi.nlm.nih.gov/pubmed/31649556
http://dx.doi.org/10.3389/fphys.2019.01278
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