Dual functions for the ssDNA-binding protein RPA in meiotic recombination.
Meiotic recombination permits exchange of genetic material between homologous chromosomes. The replication protein A (RPA) complex, the predominant ssDNA-binding complex, is required for nearly all aspects of DNA metabolism, but its role in mammalian meiotic recombination remains unknown due to the...
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2019-02-01
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Series: | PLoS Genetics |
Online Access: | https://doi.org/10.1371/journal.pgen.1007952 |
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doaj-164838f74e2645ec9d4de7ffd1f3ce3e2021-04-21T13:49:10ZengPublic Library of Science (PLoS)PLoS Genetics1553-73901553-74042019-02-01152e100795210.1371/journal.pgen.1007952Dual functions for the ssDNA-binding protein RPA in meiotic recombination.Baolu ShiJiangyang XueHao YinRui GuoMengcheng LuoLan YeQinghua ShiXiaoyan HuangMingxi LiuJiahao ShaP Jeremy WangMeiotic recombination permits exchange of genetic material between homologous chromosomes. The replication protein A (RPA) complex, the predominant ssDNA-binding complex, is required for nearly all aspects of DNA metabolism, but its role in mammalian meiotic recombination remains unknown due to the embryonic lethality of RPA mutant mice. RPA is a heterotrimer of RPA1, RPA2, and RPA3. We find that loss of RPA1, the largest subunit, leads to disappearance of RPA2 and RPA3, resulting in the absence of the RPA complex. Using an inducible germline-specific inactivation strategy, we find that loss of RPA completely abrogates loading of RAD51/DMC1 recombinases to programmed meiotic DNA double strand breaks, thus blocking strand invasion required for chromosome pairing and synapsis. Surprisingly, loading of MEIOB, SPATA22, and ATR to DNA double strand breaks is RPA-independent and does not promote RAD51/DMC1 recruitment in the absence of RPA. Finally, inactivation of RPA reduces crossover formation. Our results demonstrate that RPA plays two distinct roles in meiotic recombination: an essential role in recombinase recruitment at early stages and an important role in promoting crossover formation at later stages.https://doi.org/10.1371/journal.pgen.1007952 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Baolu Shi Jiangyang Xue Hao Yin Rui Guo Mengcheng Luo Lan Ye Qinghua Shi Xiaoyan Huang Mingxi Liu Jiahao Sha P Jeremy Wang |
spellingShingle |
Baolu Shi Jiangyang Xue Hao Yin Rui Guo Mengcheng Luo Lan Ye Qinghua Shi Xiaoyan Huang Mingxi Liu Jiahao Sha P Jeremy Wang Dual functions for the ssDNA-binding protein RPA in meiotic recombination. PLoS Genetics |
author_facet |
Baolu Shi Jiangyang Xue Hao Yin Rui Guo Mengcheng Luo Lan Ye Qinghua Shi Xiaoyan Huang Mingxi Liu Jiahao Sha P Jeremy Wang |
author_sort |
Baolu Shi |
title |
Dual functions for the ssDNA-binding protein RPA in meiotic recombination. |
title_short |
Dual functions for the ssDNA-binding protein RPA in meiotic recombination. |
title_full |
Dual functions for the ssDNA-binding protein RPA in meiotic recombination. |
title_fullStr |
Dual functions for the ssDNA-binding protein RPA in meiotic recombination. |
title_full_unstemmed |
Dual functions for the ssDNA-binding protein RPA in meiotic recombination. |
title_sort |
dual functions for the ssdna-binding protein rpa in meiotic recombination. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS Genetics |
issn |
1553-7390 1553-7404 |
publishDate |
2019-02-01 |
description |
Meiotic recombination permits exchange of genetic material between homologous chromosomes. The replication protein A (RPA) complex, the predominant ssDNA-binding complex, is required for nearly all aspects of DNA metabolism, but its role in mammalian meiotic recombination remains unknown due to the embryonic lethality of RPA mutant mice. RPA is a heterotrimer of RPA1, RPA2, and RPA3. We find that loss of RPA1, the largest subunit, leads to disappearance of RPA2 and RPA3, resulting in the absence of the RPA complex. Using an inducible germline-specific inactivation strategy, we find that loss of RPA completely abrogates loading of RAD51/DMC1 recombinases to programmed meiotic DNA double strand breaks, thus blocking strand invasion required for chromosome pairing and synapsis. Surprisingly, loading of MEIOB, SPATA22, and ATR to DNA double strand breaks is RPA-independent and does not promote RAD51/DMC1 recruitment in the absence of RPA. Finally, inactivation of RPA reduces crossover formation. Our results demonstrate that RPA plays two distinct roles in meiotic recombination: an essential role in recombinase recruitment at early stages and an important role in promoting crossover formation at later stages. |
url |
https://doi.org/10.1371/journal.pgen.1007952 |
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