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Maize DNA Methylation in Response to Drought Stress Is Involved in Target Gene Expression and Alternative Splicing

DNA methylation is important for plant growth, development, and stress response. To understand DNA methylation dynamics in maize roots under water stress (WS), we reanalyzed DNA methylation sequencing data to profile DNA methylation and the gene expression landscape of two inbred lines with differen...

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Autores principales: Wang, Qi, Xu, Jie, Pu, Xuemei, Lv, Haozhe, Liu, Yanjun, Ma, Huili, Wu, Fengkai, Wang, Qingjun, Feng, Xuanjun, Liu, Tianhong, Tang, Qi, Liu, Yaxi, Lu, Yanli
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8347047/
https://www.ncbi.nlm.nih.gov/pubmed/34361051
http://dx.doi.org/10.3390/ijms22158285
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author Wang, Qi
Xu, Jie
Pu, Xuemei
Lv, Haozhe
Liu, Yanjun
Ma, Huili
Wu, Fengkai
Wang, Qingjun
Feng, Xuanjun
Liu, Tianhong
Tang, Qi
Liu, Yaxi
Lu, Yanli
author_facet Wang, Qi
Xu, Jie
Pu, Xuemei
Lv, Haozhe
Liu, Yanjun
Ma, Huili
Wu, Fengkai
Wang, Qingjun
Feng, Xuanjun
Liu, Tianhong
Tang, Qi
Liu, Yaxi
Lu, Yanli
author_sort Wang, Qi
collection PubMed
description DNA methylation is important for plant growth, development, and stress response. To understand DNA methylation dynamics in maize roots under water stress (WS), we reanalyzed DNA methylation sequencing data to profile DNA methylation and the gene expression landscape of two inbred lines with different drought sensitivities, as well as two of their derived recombination inbred lines (RILs). Combined with genotyping-by-sequencing, we found that the inheritance pattern of DNA methylation between RILs and parental lines was sequence-dependent. Increased DNA methylation levels were observed under WS and the methylome of drought-tolerant inbred lines were much more stable than that of the drought-sensitive inbred lines. Distinctive differentially methylated genes were found among diverse genetic backgrounds, suggesting that inbred lines with different drought sensitivities may have responded to stress in varying ways. Gene body DNA methylation showed a negative correlation with gene expression but a positive correlation with exon splicing events. Furthermore, a positive correlation of a varying extent was observed between small interfering RNA (siRNA) and DNA methylation, which at different genic regions. The response of siRNAs under WS was consistent with the differential DNA methylation. Taken together, our data can be useful in deciphering the roles of DNA methylation in plant drought-tolerance variations and in emphasizing its function in alternative splicing.
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spelling pubmed-83470472021-08-08 Maize DNA Methylation in Response to Drought Stress Is Involved in Target Gene Expression and Alternative Splicing Wang, Qi Xu, Jie Pu, Xuemei Lv, Haozhe Liu, Yanjun Ma, Huili Wu, Fengkai Wang, Qingjun Feng, Xuanjun Liu, Tianhong Tang, Qi Liu, Yaxi Lu, Yanli Int J Mol Sci Article DNA methylation is important for plant growth, development, and stress response. To understand DNA methylation dynamics in maize roots under water stress (WS), we reanalyzed DNA methylation sequencing data to profile DNA methylation and the gene expression landscape of two inbred lines with different drought sensitivities, as well as two of their derived recombination inbred lines (RILs). Combined with genotyping-by-sequencing, we found that the inheritance pattern of DNA methylation between RILs and parental lines was sequence-dependent. Increased DNA methylation levels were observed under WS and the methylome of drought-tolerant inbred lines were much more stable than that of the drought-sensitive inbred lines. Distinctive differentially methylated genes were found among diverse genetic backgrounds, suggesting that inbred lines with different drought sensitivities may have responded to stress in varying ways. Gene body DNA methylation showed a negative correlation with gene expression but a positive correlation with exon splicing events. Furthermore, a positive correlation of a varying extent was observed between small interfering RNA (siRNA) and DNA methylation, which at different genic regions. The response of siRNAs under WS was consistent with the differential DNA methylation. Taken together, our data can be useful in deciphering the roles of DNA methylation in plant drought-tolerance variations and in emphasizing its function in alternative splicing. MDPI 2021-07-31 /pmc/articles/PMC8347047/ /pubmed/34361051 http://dx.doi.org/10.3390/ijms22158285 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Wang, Qi
Xu, Jie
Pu, Xuemei
Lv, Haozhe
Liu, Yanjun
Ma, Huili
Wu, Fengkai
Wang, Qingjun
Feng, Xuanjun
Liu, Tianhong
Tang, Qi
Liu, Yaxi
Lu, Yanli
Maize DNA Methylation in Response to Drought Stress Is Involved in Target Gene Expression and Alternative Splicing
title Maize DNA Methylation in Response to Drought Stress Is Involved in Target Gene Expression and Alternative Splicing
title_full Maize DNA Methylation in Response to Drought Stress Is Involved in Target Gene Expression and Alternative Splicing
title_fullStr Maize DNA Methylation in Response to Drought Stress Is Involved in Target Gene Expression and Alternative Splicing
title_full_unstemmed Maize DNA Methylation in Response to Drought Stress Is Involved in Target Gene Expression and Alternative Splicing
title_short Maize DNA Methylation in Response to Drought Stress Is Involved in Target Gene Expression and Alternative Splicing
title_sort maize dna methylation in response to drought stress is involved in target gene expression and alternative splicing
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8347047/
https://www.ncbi.nlm.nih.gov/pubmed/34361051
http://dx.doi.org/10.3390/ijms22158285
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