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The miRNA–mRNA Networks Involving Abnormal Energy and Hormone Metabolisms Restrict Tillering in a Wheat Mutant dmc

Tillers not only determine plant architecture but also influence crop yield. To explore the miRNA regulatory network restraining tiller development in a dwarf-monoculm wheat mutant (dmc) derived from Guomai 301 (wild type, WT), we employed miRNome and transcriptome integrative analysis, real-time qR...

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Autores principales: An, Junhang, Niu, Hao, Ni, Yongjing, Jiang, Yumei, Zheng, Yongxing, He, Ruishi, Li, Junchang, Jiao, Zhixin, Zhang, Jing, Li, Huijuan, Li, Qiaoyun, Niu, Jishan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6770018/
https://www.ncbi.nlm.nih.gov/pubmed/31533225
http://dx.doi.org/10.3390/ijms20184586
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author An, Junhang
Niu, Hao
Ni, Yongjing
Jiang, Yumei
Zheng, Yongxing
He, Ruishi
Li, Junchang
Jiao, Zhixin
Zhang, Jing
Li, Huijuan
Li, Qiaoyun
Niu, Jishan
author_facet An, Junhang
Niu, Hao
Ni, Yongjing
Jiang, Yumei
Zheng, Yongxing
He, Ruishi
Li, Junchang
Jiao, Zhixin
Zhang, Jing
Li, Huijuan
Li, Qiaoyun
Niu, Jishan
author_sort An, Junhang
collection PubMed
description Tillers not only determine plant architecture but also influence crop yield. To explore the miRNA regulatory network restraining tiller development in a dwarf-monoculm wheat mutant (dmc) derived from Guomai 301 (wild type, WT), we employed miRNome and transcriptome integrative analysis, real-time qRT-PCR, histochemistry, and determinations of the key metabolites and photosynthesis parameters. A total of 91 differentially expressed miRNAs (DEMs) were identified between dmc and WT. Among them, 40 key DEMs targeted 45 differentially expressed genes (DEGs) including the key DEGs encode growth-regulating factors (GRF), auxin response factors (ARF), and other proteins involved in the metabolisms of hormones and carbohydrates, etc. Compared with WT, both the chlorophyll contents and the photosynthesis rate were lower in dmc. The contents of glucose, sucrose, fructose, and maltose were lower in dmc. The contents of auxin (IAA) and zeatin (ZA) were significantly lower, but gibberellin (GA) was significantly higher in the tiller tissues of dmc. This research demonstrated that the DEMs regulating hormone and carbohydrate metabolisms were important causes for dmc to not tiller. A primary miRNA–mRNA regulatory model for dmc tillering was established. The lower photosynthesis rate, insufficient energy, and abnormal hormone metabolisms restrict tillering in dmc.
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spelling pubmed-67700182019-10-30 The miRNA–mRNA Networks Involving Abnormal Energy and Hormone Metabolisms Restrict Tillering in a Wheat Mutant dmc An, Junhang Niu, Hao Ni, Yongjing Jiang, Yumei Zheng, Yongxing He, Ruishi Li, Junchang Jiao, Zhixin Zhang, Jing Li, Huijuan Li, Qiaoyun Niu, Jishan Int J Mol Sci Article Tillers not only determine plant architecture but also influence crop yield. To explore the miRNA regulatory network restraining tiller development in a dwarf-monoculm wheat mutant (dmc) derived from Guomai 301 (wild type, WT), we employed miRNome and transcriptome integrative analysis, real-time qRT-PCR, histochemistry, and determinations of the key metabolites and photosynthesis parameters. A total of 91 differentially expressed miRNAs (DEMs) were identified between dmc and WT. Among them, 40 key DEMs targeted 45 differentially expressed genes (DEGs) including the key DEGs encode growth-regulating factors (GRF), auxin response factors (ARF), and other proteins involved in the metabolisms of hormones and carbohydrates, etc. Compared with WT, both the chlorophyll contents and the photosynthesis rate were lower in dmc. The contents of glucose, sucrose, fructose, and maltose were lower in dmc. The contents of auxin (IAA) and zeatin (ZA) were significantly lower, but gibberellin (GA) was significantly higher in the tiller tissues of dmc. This research demonstrated that the DEMs regulating hormone and carbohydrate metabolisms were important causes for dmc to not tiller. A primary miRNA–mRNA regulatory model for dmc tillering was established. The lower photosynthesis rate, insufficient energy, and abnormal hormone metabolisms restrict tillering in dmc. MDPI 2019-09-17 /pmc/articles/PMC6770018/ /pubmed/31533225 http://dx.doi.org/10.3390/ijms20184586 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
An, Junhang
Niu, Hao
Ni, Yongjing
Jiang, Yumei
Zheng, Yongxing
He, Ruishi
Li, Junchang
Jiao, Zhixin
Zhang, Jing
Li, Huijuan
Li, Qiaoyun
Niu, Jishan
The miRNA–mRNA Networks Involving Abnormal Energy and Hormone Metabolisms Restrict Tillering in a Wheat Mutant dmc
title The miRNA–mRNA Networks Involving Abnormal Energy and Hormone Metabolisms Restrict Tillering in a Wheat Mutant dmc
title_full The miRNA–mRNA Networks Involving Abnormal Energy and Hormone Metabolisms Restrict Tillering in a Wheat Mutant dmc
title_fullStr The miRNA–mRNA Networks Involving Abnormal Energy and Hormone Metabolisms Restrict Tillering in a Wheat Mutant dmc
title_full_unstemmed The miRNA–mRNA Networks Involving Abnormal Energy and Hormone Metabolisms Restrict Tillering in a Wheat Mutant dmc
title_short The miRNA–mRNA Networks Involving Abnormal Energy and Hormone Metabolisms Restrict Tillering in a Wheat Mutant dmc
title_sort mirna–mrna networks involving abnormal energy and hormone metabolisms restrict tillering in a wheat mutant dmc
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6770018/
https://www.ncbi.nlm.nih.gov/pubmed/31533225
http://dx.doi.org/10.3390/ijms20184586
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