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Transcriptome Reveals Allele Contribution to Heterosis in Maize

Heterosis, which has greatly increased maize yields, is associated with gene expression patterns during key developmental stages that enhance hybrid phenotypes relative to parental phenotypes. Before heterosis can be more effectively used for crop improvement, hybrid maize developmental gene express...

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Autores principales: Wu, Jianzhong, Sun, Dequan, Zhao, Qian, Yong, Hongjun, Zhang, Degui, Hao, Zhuanfang, Zhou, Zhiqiang, Han, Jienan, Zhang, Xiaocong, Xu, Zhennan, Li, Xinhai, Li, Mingshun, Weng, Jianfeng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8494984/
https://www.ncbi.nlm.nih.gov/pubmed/34630491
http://dx.doi.org/10.3389/fpls.2021.739072
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author Wu, Jianzhong
Sun, Dequan
Zhao, Qian
Yong, Hongjun
Zhang, Degui
Hao, Zhuanfang
Zhou, Zhiqiang
Han, Jienan
Zhang, Xiaocong
Xu, Zhennan
Li, Xinhai
Li, Mingshun
Weng, Jianfeng
author_facet Wu, Jianzhong
Sun, Dequan
Zhao, Qian
Yong, Hongjun
Zhang, Degui
Hao, Zhuanfang
Zhou, Zhiqiang
Han, Jienan
Zhang, Xiaocong
Xu, Zhennan
Li, Xinhai
Li, Mingshun
Weng, Jianfeng
author_sort Wu, Jianzhong
collection PubMed
description Heterosis, which has greatly increased maize yields, is associated with gene expression patterns during key developmental stages that enhance hybrid phenotypes relative to parental phenotypes. Before heterosis can be more effectively used for crop improvement, hybrid maize developmental gene expression patterns must be better understood. Here, six maize hybrids, including the popular hybrid Zhengdan958 (ZC) from China, were studied. Maize hybrids created in-house were generated using an incomplete diallel cross (NCII)-based strategy from four elite inbred parental lines. Differential gene expression (DEG) profiles corresponding to three developmental stages revealed that hybrid partial expression patterns exhibited complementarity of expression of certain parental genes, with parental allelic expression patterns varying both qualitatively and quantitatively in hybrids. Single-parent expression (SPE) and parent-specific expression (PSE) types of qualitative variation were most prevalent, 43.73 and 41.07% of variation, respectively. Meanwhile, negative super-dominance (NSD) and positive super-dominance (PSD) types of quantitative variation were most prevalent, 31.06 and 24.30% of variation, respectively. During the early reproductive growth stage, the gene expression pattern differed markedly from other developmental stage patterns, with allelic expression patterns during seed development skewed toward low-value parental alleles in hybrid seeds exhibiting significant quantitative variation-associated superiority. Comparisons of qualitative gene expression variation rates between ZC and other hybrids revealed proportions of SPE-DEGs (41.36%) in ZC seed DEGs that significantly exceeded the average proportion of SPE-DEGs found in seeds of other hybrids (28.36%). Importantly, quantitative gene expression variation rate comparisons between ZC and hybrids, except for transgressive expression, revealed that the ZC rate exceeded the average rate for other hybrids, highlighting the importance of partial gene expression in heterosis. Moreover, enriched ZC DEGs exhibiting distinct tissue-specific expression patterns belonged to four biological pathways, including photosynthesis, plant hormone signal transduction, biology metabolism and biosynthesis. These results provide valuable technical insights for creating hybrids exhibiting strong heterosis.
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spelling pubmed-84949842021-10-08 Transcriptome Reveals Allele Contribution to Heterosis in Maize Wu, Jianzhong Sun, Dequan Zhao, Qian Yong, Hongjun Zhang, Degui Hao, Zhuanfang Zhou, Zhiqiang Han, Jienan Zhang, Xiaocong Xu, Zhennan Li, Xinhai Li, Mingshun Weng, Jianfeng Front Plant Sci Plant Science Heterosis, which has greatly increased maize yields, is associated with gene expression patterns during key developmental stages that enhance hybrid phenotypes relative to parental phenotypes. Before heterosis can be more effectively used for crop improvement, hybrid maize developmental gene expression patterns must be better understood. Here, six maize hybrids, including the popular hybrid Zhengdan958 (ZC) from China, were studied. Maize hybrids created in-house were generated using an incomplete diallel cross (NCII)-based strategy from four elite inbred parental lines. Differential gene expression (DEG) profiles corresponding to three developmental stages revealed that hybrid partial expression patterns exhibited complementarity of expression of certain parental genes, with parental allelic expression patterns varying both qualitatively and quantitatively in hybrids. Single-parent expression (SPE) and parent-specific expression (PSE) types of qualitative variation were most prevalent, 43.73 and 41.07% of variation, respectively. Meanwhile, negative super-dominance (NSD) and positive super-dominance (PSD) types of quantitative variation were most prevalent, 31.06 and 24.30% of variation, respectively. During the early reproductive growth stage, the gene expression pattern differed markedly from other developmental stage patterns, with allelic expression patterns during seed development skewed toward low-value parental alleles in hybrid seeds exhibiting significant quantitative variation-associated superiority. Comparisons of qualitative gene expression variation rates between ZC and other hybrids revealed proportions of SPE-DEGs (41.36%) in ZC seed DEGs that significantly exceeded the average proportion of SPE-DEGs found in seeds of other hybrids (28.36%). Importantly, quantitative gene expression variation rate comparisons between ZC and hybrids, except for transgressive expression, revealed that the ZC rate exceeded the average rate for other hybrids, highlighting the importance of partial gene expression in heterosis. Moreover, enriched ZC DEGs exhibiting distinct tissue-specific expression patterns belonged to four biological pathways, including photosynthesis, plant hormone signal transduction, biology metabolism and biosynthesis. These results provide valuable technical insights for creating hybrids exhibiting strong heterosis. Frontiers Media S.A. 2021-09-23 /pmc/articles/PMC8494984/ /pubmed/34630491 http://dx.doi.org/10.3389/fpls.2021.739072 Text en Copyright © 2021 Wu, Sun, Zhao, Yong, Zhang, Hao, Zhou, Han, Zhang, Xu, Li, Li and Weng. 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
Wu, Jianzhong
Sun, Dequan
Zhao, Qian
Yong, Hongjun
Zhang, Degui
Hao, Zhuanfang
Zhou, Zhiqiang
Han, Jienan
Zhang, Xiaocong
Xu, Zhennan
Li, Xinhai
Li, Mingshun
Weng, Jianfeng
Transcriptome Reveals Allele Contribution to Heterosis in Maize
title Transcriptome Reveals Allele Contribution to Heterosis in Maize
title_full Transcriptome Reveals Allele Contribution to Heterosis in Maize
title_fullStr Transcriptome Reveals Allele Contribution to Heterosis in Maize
title_full_unstemmed Transcriptome Reveals Allele Contribution to Heterosis in Maize
title_short Transcriptome Reveals Allele Contribution to Heterosis in Maize
title_sort transcriptome reveals allele contribution to heterosis in maize
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8494984/
https://www.ncbi.nlm.nih.gov/pubmed/34630491
http://dx.doi.org/10.3389/fpls.2021.739072
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