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Evolution of self-compatibility by a mutant S(m)-RNase in citrus

Self-incompatibility (SI) is an important mechanism that prevents self-fertilization and avoids inbreeding in flowering plants. The most widespread SI system utilizes S-ribonucleases (S-RNases) and S-locus F-boxes (SLFs) as S-determinants. In citrus, SI is ancestral; Citrus maxima (pummelo) is self-...

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Autores principales: Liang, Mei, Cao, Zonghong, Zhu, Andan, Liu, Yuanlong, Tao, Mengqin, Yang, Huayan, Xu, Qiang, Wang, Shaohua, Liu, Junjie, Li, Yongping, Chen, Chuanwu, Xie, Zongzhou, Deng, Chongling, Ye, Junli, Guo, Wenwu, Xia, Rui, Larkin, Robert M, Deng, Xiuxin, Bosch, Maurice, Franklin-Tong, Vernonica E., Chai, Lijun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7030955/
https://www.ncbi.nlm.nih.gov/pubmed/32055045
http://dx.doi.org/10.1038/s41477-020-0597-3
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author Liang, Mei
Cao, Zonghong
Zhu, Andan
Liu, Yuanlong
Tao, Mengqin
Yang, Huayan
Xu, Qiang
Wang, Shaohua
Liu, Junjie
Li, Yongping
Chen, Chuanwu
Xie, Zongzhou
Deng, Chongling
Ye, Junli
Guo, Wenwu
Xu, Qiang
Xia, Rui
Larkin, Robert M
Deng, Xiuxin
Bosch, Maurice
Franklin-Tong, Vernonica E.
Chai, Lijun
author_facet Liang, Mei
Cao, Zonghong
Zhu, Andan
Liu, Yuanlong
Tao, Mengqin
Yang, Huayan
Xu, Qiang
Wang, Shaohua
Liu, Junjie
Li, Yongping
Chen, Chuanwu
Xie, Zongzhou
Deng, Chongling
Ye, Junli
Guo, Wenwu
Xu, Qiang
Xia, Rui
Larkin, Robert M
Deng, Xiuxin
Bosch, Maurice
Franklin-Tong, Vernonica E.
Chai, Lijun
author_sort Liang, Mei
collection PubMed
description Self-incompatibility (SI) is an important mechanism that prevents self-fertilization and avoids inbreeding in flowering plants. The most widespread SI system utilizes S-ribonucleases (S-RNases) and S-locus F-boxes (SLFs) as S-determinants. In citrus, SI is ancestral; Citrus maxima (pummelo) is self-incompatible, while Citrus reticulata (mandarin) and its hybrids are self-compatible (SC). Here we identified nine highly polymorphic pistil-specific, developmentally expressed S-RNases from pummelo that segregate with S-haplotypes in a gametophytic manner and cluster with authentic S-RNases. We provide evidence that these S-RNases function as the female S-determinants in citrus. Moreover, we found that each S-RNase is linked to ~nine SLFs. Analysis of 117 citrus SLF/SLFL genes revealed clustering into 12 types and evidence that the S-RNases and intra-haplotypic SLFs/SLFLs co-evolved. Our data are consistent with citrus having an S-locus comprising a S-RNase and several SLFs that fit the non-self-recognition model. We identified a predominant single nucleotide mutation, S(m)-RNase, in SC citrus, which provides a ‘natural’ loss of function. We present evidence that SI-SC transitions due to the S(m)-RNase, initially arose in mandarin, spreading to its hybrids and became fixed. Identification of an evolutionarily distant new genus utilizing the S-RNase-based SI system, >100 million years separated from the nearest S-RNase family, is a milestone for evolutionary comparative studies.
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spelling pubmed-70309552020-08-13 Evolution of self-compatibility by a mutant S(m)-RNase in citrus Liang, Mei Cao, Zonghong Zhu, Andan Liu, Yuanlong Tao, Mengqin Yang, Huayan Xu, Qiang Wang, Shaohua Liu, Junjie Li, Yongping Chen, Chuanwu Xie, Zongzhou Deng, Chongling Ye, Junli Guo, Wenwu Xu, Qiang Xia, Rui Larkin, Robert M Deng, Xiuxin Bosch, Maurice Franklin-Tong, Vernonica E. Chai, Lijun Nat Plants Article Self-incompatibility (SI) is an important mechanism that prevents self-fertilization and avoids inbreeding in flowering plants. The most widespread SI system utilizes S-ribonucleases (S-RNases) and S-locus F-boxes (SLFs) as S-determinants. In citrus, SI is ancestral; Citrus maxima (pummelo) is self-incompatible, while Citrus reticulata (mandarin) and its hybrids are self-compatible (SC). Here we identified nine highly polymorphic pistil-specific, developmentally expressed S-RNases from pummelo that segregate with S-haplotypes in a gametophytic manner and cluster with authentic S-RNases. We provide evidence that these S-RNases function as the female S-determinants in citrus. Moreover, we found that each S-RNase is linked to ~nine SLFs. Analysis of 117 citrus SLF/SLFL genes revealed clustering into 12 types and evidence that the S-RNases and intra-haplotypic SLFs/SLFLs co-evolved. Our data are consistent with citrus having an S-locus comprising a S-RNase and several SLFs that fit the non-self-recognition model. We identified a predominant single nucleotide mutation, S(m)-RNase, in SC citrus, which provides a ‘natural’ loss of function. We present evidence that SI-SC transitions due to the S(m)-RNase, initially arose in mandarin, spreading to its hybrids and became fixed. Identification of an evolutionarily distant new genus utilizing the S-RNase-based SI system, >100 million years separated from the nearest S-RNase family, is a milestone for evolutionary comparative studies. 2020-02-13 2020-02 /pmc/articles/PMC7030955/ /pubmed/32055045 http://dx.doi.org/10.1038/s41477-020-0597-3 Text en http://www.nature.com/authors/editorial_policies/license.html#terms Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use:http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Liang, Mei
Cao, Zonghong
Zhu, Andan
Liu, Yuanlong
Tao, Mengqin
Yang, Huayan
Xu, Qiang
Wang, Shaohua
Liu, Junjie
Li, Yongping
Chen, Chuanwu
Xie, Zongzhou
Deng, Chongling
Ye, Junli
Guo, Wenwu
Xu, Qiang
Xia, Rui
Larkin, Robert M
Deng, Xiuxin
Bosch, Maurice
Franklin-Tong, Vernonica E.
Chai, Lijun
Evolution of self-compatibility by a mutant S(m)-RNase in citrus
title Evolution of self-compatibility by a mutant S(m)-RNase in citrus
title_full Evolution of self-compatibility by a mutant S(m)-RNase in citrus
title_fullStr Evolution of self-compatibility by a mutant S(m)-RNase in citrus
title_full_unstemmed Evolution of self-compatibility by a mutant S(m)-RNase in citrus
title_short Evolution of self-compatibility by a mutant S(m)-RNase in citrus
title_sort evolution of self-compatibility by a mutant s(m)-rnase in citrus
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7030955/
https://www.ncbi.nlm.nih.gov/pubmed/32055045
http://dx.doi.org/10.1038/s41477-020-0597-3
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