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Interplay between Synaptonemal Complex, Homologous Recombination, and Centromeres during Mammalian Meiosis

The intimate synapsis of homologous chromosome pairs (homologs) by synaptonemal complexes (SCs) is an essential feature of meiosis. In many organisms, synapsis and homologous recombination are interdependent: recombination promotes SC formation and SCs are required for crossing-over. Moreover, sever...

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Autores principales: Qiao, Huanyu, Chen, Jefferson K., Reynolds, April, Höög, Christer, Paddy, Michael, Hunter, Neil
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3386176/
https://www.ncbi.nlm.nih.gov/pubmed/22761591
http://dx.doi.org/10.1371/journal.pgen.1002790
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author Qiao, Huanyu
Chen, Jefferson K.
Reynolds, April
Höög, Christer
Paddy, Michael
Hunter, Neil
author_facet Qiao, Huanyu
Chen, Jefferson K.
Reynolds, April
Höög, Christer
Paddy, Michael
Hunter, Neil
author_sort Qiao, Huanyu
collection PubMed
description The intimate synapsis of homologous chromosome pairs (homologs) by synaptonemal complexes (SCs) is an essential feature of meiosis. In many organisms, synapsis and homologous recombination are interdependent: recombination promotes SC formation and SCs are required for crossing-over. Moreover, several studies indicate that initiation of SC assembly occurs at sites where crossovers will subsequently form. However, recent analyses in budding yeast and fruit fly imply a special role for centromeres in the initiation of SC formation. In addition, in budding yeast, persistent SC–dependent centromere-association facilitates the disjunction of chromosomes that have failed to become connected by crossovers. Here, we examine the interplay between SCs, recombination, and centromeres in a mammal. In mouse spermatocytes, centromeres do not serve as SC initiation sites and are invariably the last regions to synapse. However, centromeres are refractory to de-synapsis during diplonema and remain associated by short SC fragments. Since SC–dependent centromere association is lost before diakinesis, a direct role in homolog segregation seems unlikely. However, post–SC disassembly, we find evidence of inter-centromeric connections that could play a more direct role in promoting homolog biorientation and disjunction. A second class of persistent SC fragments is shown to be crossover-dependent. Super-resolution structured-illumination microscopy (SIM) reveals that these structures initially connect separate homolog axes and progressively diminish as chiasmata form. Thus, DNA crossing-over (which occurs during pachynema) and axis remodeling appear to be temporally distinct aspects of chiasma formation. SIM analysis of the synapsis and crossover-defective mutant Sycp1(−/−) implies that SCs prevent unregulated fusion of homolog axes. We propose that SC fragments retained during diplonema stabilize nascent bivalents and help orchestrate local chromosome reorganization that promotes centromere and chiasma function.
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spelling pubmed-33861762012-07-03 Interplay between Synaptonemal Complex, Homologous Recombination, and Centromeres during Mammalian Meiosis Qiao, Huanyu Chen, Jefferson K. Reynolds, April Höög, Christer Paddy, Michael Hunter, Neil PLoS Genet Research Article The intimate synapsis of homologous chromosome pairs (homologs) by synaptonemal complexes (SCs) is an essential feature of meiosis. In many organisms, synapsis and homologous recombination are interdependent: recombination promotes SC formation and SCs are required for crossing-over. Moreover, several studies indicate that initiation of SC assembly occurs at sites where crossovers will subsequently form. However, recent analyses in budding yeast and fruit fly imply a special role for centromeres in the initiation of SC formation. In addition, in budding yeast, persistent SC–dependent centromere-association facilitates the disjunction of chromosomes that have failed to become connected by crossovers. Here, we examine the interplay between SCs, recombination, and centromeres in a mammal. In mouse spermatocytes, centromeres do not serve as SC initiation sites and are invariably the last regions to synapse. However, centromeres are refractory to de-synapsis during diplonema and remain associated by short SC fragments. Since SC–dependent centromere association is lost before diakinesis, a direct role in homolog segregation seems unlikely. However, post–SC disassembly, we find evidence of inter-centromeric connections that could play a more direct role in promoting homolog biorientation and disjunction. A second class of persistent SC fragments is shown to be crossover-dependent. Super-resolution structured-illumination microscopy (SIM) reveals that these structures initially connect separate homolog axes and progressively diminish as chiasmata form. Thus, DNA crossing-over (which occurs during pachynema) and axis remodeling appear to be temporally distinct aspects of chiasma formation. SIM analysis of the synapsis and crossover-defective mutant Sycp1(−/−) implies that SCs prevent unregulated fusion of homolog axes. We propose that SC fragments retained during diplonema stabilize nascent bivalents and help orchestrate local chromosome reorganization that promotes centromere and chiasma function. Public Library of Science 2012-06-28 /pmc/articles/PMC3386176/ /pubmed/22761591 http://dx.doi.org/10.1371/journal.pgen.1002790 Text en Qiao et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Qiao, Huanyu
Chen, Jefferson K.
Reynolds, April
Höög, Christer
Paddy, Michael
Hunter, Neil
Interplay between Synaptonemal Complex, Homologous Recombination, and Centromeres during Mammalian Meiosis
title Interplay between Synaptonemal Complex, Homologous Recombination, and Centromeres during Mammalian Meiosis
title_full Interplay between Synaptonemal Complex, Homologous Recombination, and Centromeres during Mammalian Meiosis
title_fullStr Interplay between Synaptonemal Complex, Homologous Recombination, and Centromeres during Mammalian Meiosis
title_full_unstemmed Interplay between Synaptonemal Complex, Homologous Recombination, and Centromeres during Mammalian Meiosis
title_short Interplay between Synaptonemal Complex, Homologous Recombination, and Centromeres during Mammalian Meiosis
title_sort interplay between synaptonemal complex, homologous recombination, and centromeres during mammalian meiosis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3386176/
https://www.ncbi.nlm.nih.gov/pubmed/22761591
http://dx.doi.org/10.1371/journal.pgen.1002790
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