Cargando…

Comprehensive Evolutionary Analysis of CPP Genes in Brassica napus L. and Its Two Diploid Progenitors Revealing the Potential Molecular Basis of Allopolyploid Adaptive Advantage Under Salt Stress

Allopolyploids exist widely in nature and have strong environmental adaptability. The typical allopolyploid Brassica napus L. is a widely cultivated crop, but whether it is superior to its diploid progenitors in abiotic stress resistance and the key genes that may be involved are not fully understoo...

Descripción completa

Detalles Bibliográficos
Autores principales: Li, Mengdi, Wang, Fan, Ma, Jiayu, Liu, Hengzhao, Ye, Hang, Zhao, Peng, Wang, Jianbo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9085292/
https://www.ncbi.nlm.nih.gov/pubmed/35548281
http://dx.doi.org/10.3389/fpls.2022.873071
_version_ 1784703781740478464
author Li, Mengdi
Wang, Fan
Ma, Jiayu
Liu, Hengzhao
Ye, Hang
Zhao, Peng
Wang, Jianbo
author_facet Li, Mengdi
Wang, Fan
Ma, Jiayu
Liu, Hengzhao
Ye, Hang
Zhao, Peng
Wang, Jianbo
author_sort Li, Mengdi
collection PubMed
description Allopolyploids exist widely in nature and have strong environmental adaptability. The typical allopolyploid Brassica napus L. is a widely cultivated crop, but whether it is superior to its diploid progenitors in abiotic stress resistance and the key genes that may be involved are not fully understood. Cystein-rich polycomb-like protein (CPP) genes encode critical transcription factors involved in the response of abiotic stress, including salt stress. To explore the potential molecular basis of allopolyploid adaptation to salt stress, we comprehensively analyzed the characteristics and salt stress response of the CPP genes in B. napus and its two diploid progenitors in this study. We found some molecular basis that might be associated with the adaptability of B. napus, including the expansion of the CPP gene family, the acquisition of introns by some BnCPPs, and abundant cis-acting elements upstream of BnCPPs. We found two duplication modes (whole genome duplication and transposed duplication) might be the main reasons for the expansion of CPP gene family in B. napus during allopolyploidization. CPP gene expression levels and several physiological indexes were changed in B. napus and its diploid progenitors after salt stress, suggesting that CPP genes might play important roles in the response of salt stress. We found that some BnCPPs might undergo new functionalization or subfunctionalization, and some BnCPPs also show biased expression, which might contribute to the adaptation of B. napus under saline environment. Compared with diploid progenitors, B. napus showed stronger physiological responses, and BnCPP gene expression also showed higher changes after salt stress, indicating that the allopolyploid B. napus had an adaptive advantage under salt stress. This study could provide evidence for the adaptability of polyploid and provide important clues for the study of the molecular mechanism of salt stress resistance in B. napus.
format Online
Article
Text
id pubmed-9085292
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-90852922022-05-10 Comprehensive Evolutionary Analysis of CPP Genes in Brassica napus L. and Its Two Diploid Progenitors Revealing the Potential Molecular Basis of Allopolyploid Adaptive Advantage Under Salt Stress Li, Mengdi Wang, Fan Ma, Jiayu Liu, Hengzhao Ye, Hang Zhao, Peng Wang, Jianbo Front Plant Sci Plant Science Allopolyploids exist widely in nature and have strong environmental adaptability. The typical allopolyploid Brassica napus L. is a widely cultivated crop, but whether it is superior to its diploid progenitors in abiotic stress resistance and the key genes that may be involved are not fully understood. Cystein-rich polycomb-like protein (CPP) genes encode critical transcription factors involved in the response of abiotic stress, including salt stress. To explore the potential molecular basis of allopolyploid adaptation to salt stress, we comprehensively analyzed the characteristics and salt stress response of the CPP genes in B. napus and its two diploid progenitors in this study. We found some molecular basis that might be associated with the adaptability of B. napus, including the expansion of the CPP gene family, the acquisition of introns by some BnCPPs, and abundant cis-acting elements upstream of BnCPPs. We found two duplication modes (whole genome duplication and transposed duplication) might be the main reasons for the expansion of CPP gene family in B. napus during allopolyploidization. CPP gene expression levels and several physiological indexes were changed in B. napus and its diploid progenitors after salt stress, suggesting that CPP genes might play important roles in the response of salt stress. We found that some BnCPPs might undergo new functionalization or subfunctionalization, and some BnCPPs also show biased expression, which might contribute to the adaptation of B. napus under saline environment. Compared with diploid progenitors, B. napus showed stronger physiological responses, and BnCPP gene expression also showed higher changes after salt stress, indicating that the allopolyploid B. napus had an adaptive advantage under salt stress. This study could provide evidence for the adaptability of polyploid and provide important clues for the study of the molecular mechanism of salt stress resistance in B. napus. Frontiers Media S.A. 2022-04-25 /pmc/articles/PMC9085292/ /pubmed/35548281 http://dx.doi.org/10.3389/fpls.2022.873071 Text en Copyright © 2022 Li, Wang, Ma, Liu, Ye, Zhao and Wang. https://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 Plant Science
Li, Mengdi
Wang, Fan
Ma, Jiayu
Liu, Hengzhao
Ye, Hang
Zhao, Peng
Wang, Jianbo
Comprehensive Evolutionary Analysis of CPP Genes in Brassica napus L. and Its Two Diploid Progenitors Revealing the Potential Molecular Basis of Allopolyploid Adaptive Advantage Under Salt Stress
title Comprehensive Evolutionary Analysis of CPP Genes in Brassica napus L. and Its Two Diploid Progenitors Revealing the Potential Molecular Basis of Allopolyploid Adaptive Advantage Under Salt Stress
title_full Comprehensive Evolutionary Analysis of CPP Genes in Brassica napus L. and Its Two Diploid Progenitors Revealing the Potential Molecular Basis of Allopolyploid Adaptive Advantage Under Salt Stress
title_fullStr Comprehensive Evolutionary Analysis of CPP Genes in Brassica napus L. and Its Two Diploid Progenitors Revealing the Potential Molecular Basis of Allopolyploid Adaptive Advantage Under Salt Stress
title_full_unstemmed Comprehensive Evolutionary Analysis of CPP Genes in Brassica napus L. and Its Two Diploid Progenitors Revealing the Potential Molecular Basis of Allopolyploid Adaptive Advantage Under Salt Stress
title_short Comprehensive Evolutionary Analysis of CPP Genes in Brassica napus L. and Its Two Diploid Progenitors Revealing the Potential Molecular Basis of Allopolyploid Adaptive Advantage Under Salt Stress
title_sort comprehensive evolutionary analysis of cpp genes in brassica napus l. and its two diploid progenitors revealing the potential molecular basis of allopolyploid adaptive advantage under salt stress
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9085292/
https://www.ncbi.nlm.nih.gov/pubmed/35548281
http://dx.doi.org/10.3389/fpls.2022.873071
work_keys_str_mv AT limengdi comprehensiveevolutionaryanalysisofcppgenesinbrassicanapuslanditstwodiploidprogenitorsrevealingthepotentialmolecularbasisofallopolyploidadaptiveadvantageundersaltstress
AT wangfan comprehensiveevolutionaryanalysisofcppgenesinbrassicanapuslanditstwodiploidprogenitorsrevealingthepotentialmolecularbasisofallopolyploidadaptiveadvantageundersaltstress
AT majiayu comprehensiveevolutionaryanalysisofcppgenesinbrassicanapuslanditstwodiploidprogenitorsrevealingthepotentialmolecularbasisofallopolyploidadaptiveadvantageundersaltstress
AT liuhengzhao comprehensiveevolutionaryanalysisofcppgenesinbrassicanapuslanditstwodiploidprogenitorsrevealingthepotentialmolecularbasisofallopolyploidadaptiveadvantageundersaltstress
AT yehang comprehensiveevolutionaryanalysisofcppgenesinbrassicanapuslanditstwodiploidprogenitorsrevealingthepotentialmolecularbasisofallopolyploidadaptiveadvantageundersaltstress
AT zhaopeng comprehensiveevolutionaryanalysisofcppgenesinbrassicanapuslanditstwodiploidprogenitorsrevealingthepotentialmolecularbasisofallopolyploidadaptiveadvantageundersaltstress
AT wangjianbo comprehensiveevolutionaryanalysisofcppgenesinbrassicanapuslanditstwodiploidprogenitorsrevealingthepotentialmolecularbasisofallopolyploidadaptiveadvantageundersaltstress