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Laser Microdissection-Based Tissue-Specific Transcriptome Analysis Reveals a Novel Regulatory Network of Genes Involved in Heat-Induced Grain Chalk in Rice Endosperm

Heat stress occurrence during seed filling leads to the formation of a chalky portion in the limited zone of the starchy endosperm of rice grains. In this study, isolation of aleurone, dorsal, central and lateral tissues of developing endosperm by laser-microdissection (LM) coupled with gene express...

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Autores principales: Ishimaru, Tsutomu, Parween, Sabiha, Saito, Yuhi, Shigemitsu, Takanari, Yamakawa, Hiromoto, Nakazono, Mikio, Masumura, Takehiro, Nishizawa, Naoko K, Kondo, Motohiko, Sreenivasulu, Nese
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6400107/
https://www.ncbi.nlm.nih.gov/pubmed/30517758
http://dx.doi.org/10.1093/pcp/pcy233
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author Ishimaru, Tsutomu
Parween, Sabiha
Saito, Yuhi
Shigemitsu, Takanari
Yamakawa, Hiromoto
Nakazono, Mikio
Masumura, Takehiro
Nishizawa, Naoko K
Kondo, Motohiko
Sreenivasulu, Nese
author_facet Ishimaru, Tsutomu
Parween, Sabiha
Saito, Yuhi
Shigemitsu, Takanari
Yamakawa, Hiromoto
Nakazono, Mikio
Masumura, Takehiro
Nishizawa, Naoko K
Kondo, Motohiko
Sreenivasulu, Nese
author_sort Ishimaru, Tsutomu
collection PubMed
description Heat stress occurrence during seed filling leads to the formation of a chalky portion in the limited zone of the starchy endosperm of rice grains. In this study, isolation of aleurone, dorsal, central and lateral tissues of developing endosperm by laser-microdissection (LM) coupled with gene expression analysis of a 44 K microarray was performed to identify key regulatory genes involved in the formation of milky-white (MW) and white-back (WB) grains during heat stress. Gene regulatory network analysis classified the genes changed under heat stress into five modules. The most distinct expression pattern was observed in modules where most of the small heat shock proteins and cellular organization genes were changed under heat stress in dorsal aleurone cells and dorsal starchy endosperm zones. The histological observation supported the significant increase in cell number and size of dorsal aleurone cells in WB grains. With regard to the central starchy endosperm zone, preferential down-regulation of high molecular weight heat shock proteins (HMW HSPs), including a prominent member encoding endoplasmic reticulum (ER) chaperones, by heat stress was observed, while changes in expression of starch biosynthesis genes were minimal. Characterization of transgenic plants suppressing endosperm lumenal binding protein gene (BiP1), an ER chaperone preferentially down-regulated at the MW zone under heat stress, showed evidence of forming the chalky grains without disturbing the expression of starch biosynthesis genes. The present LM-based comprehensive expression analysis provides novel inferences that HMW HSPs play an important role in controlling redox, nitrogen and amino acid metabolism in endosperm leading to the formation of MW and WB chalky grains under heat stress.
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spelling pubmed-64001072019-03-12 Laser Microdissection-Based Tissue-Specific Transcriptome Analysis Reveals a Novel Regulatory Network of Genes Involved in Heat-Induced Grain Chalk in Rice Endosperm Ishimaru, Tsutomu Parween, Sabiha Saito, Yuhi Shigemitsu, Takanari Yamakawa, Hiromoto Nakazono, Mikio Masumura, Takehiro Nishizawa, Naoko K Kondo, Motohiko Sreenivasulu, Nese Plant Cell Physiol Regular Papers Heat stress occurrence during seed filling leads to the formation of a chalky portion in the limited zone of the starchy endosperm of rice grains. In this study, isolation of aleurone, dorsal, central and lateral tissues of developing endosperm by laser-microdissection (LM) coupled with gene expression analysis of a 44 K microarray was performed to identify key regulatory genes involved in the formation of milky-white (MW) and white-back (WB) grains during heat stress. Gene regulatory network analysis classified the genes changed under heat stress into five modules. The most distinct expression pattern was observed in modules where most of the small heat shock proteins and cellular organization genes were changed under heat stress in dorsal aleurone cells and dorsal starchy endosperm zones. The histological observation supported the significant increase in cell number and size of dorsal aleurone cells in WB grains. With regard to the central starchy endosperm zone, preferential down-regulation of high molecular weight heat shock proteins (HMW HSPs), including a prominent member encoding endoplasmic reticulum (ER) chaperones, by heat stress was observed, while changes in expression of starch biosynthesis genes were minimal. Characterization of transgenic plants suppressing endosperm lumenal binding protein gene (BiP1), an ER chaperone preferentially down-regulated at the MW zone under heat stress, showed evidence of forming the chalky grains without disturbing the expression of starch biosynthesis genes. The present LM-based comprehensive expression analysis provides novel inferences that HMW HSPs play an important role in controlling redox, nitrogen and amino acid metabolism in endosperm leading to the formation of MW and WB chalky grains under heat stress. Oxford University Press 2019-03 2018-12-04 /pmc/articles/PMC6400107/ /pubmed/30517758 http://dx.doi.org/10.1093/pcp/pcy233 Text en � The Author(s) 2018. Published by Oxford University Press on behalf of Japanese Society of Plant Physiologists. http://creativecommons.org/licenses/by/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Regular Papers
Ishimaru, Tsutomu
Parween, Sabiha
Saito, Yuhi
Shigemitsu, Takanari
Yamakawa, Hiromoto
Nakazono, Mikio
Masumura, Takehiro
Nishizawa, Naoko K
Kondo, Motohiko
Sreenivasulu, Nese
Laser Microdissection-Based Tissue-Specific Transcriptome Analysis Reveals a Novel Regulatory Network of Genes Involved in Heat-Induced Grain Chalk in Rice Endosperm
title Laser Microdissection-Based Tissue-Specific Transcriptome Analysis Reveals a Novel Regulatory Network of Genes Involved in Heat-Induced Grain Chalk in Rice Endosperm
title_full Laser Microdissection-Based Tissue-Specific Transcriptome Analysis Reveals a Novel Regulatory Network of Genes Involved in Heat-Induced Grain Chalk in Rice Endosperm
title_fullStr Laser Microdissection-Based Tissue-Specific Transcriptome Analysis Reveals a Novel Regulatory Network of Genes Involved in Heat-Induced Grain Chalk in Rice Endosperm
title_full_unstemmed Laser Microdissection-Based Tissue-Specific Transcriptome Analysis Reveals a Novel Regulatory Network of Genes Involved in Heat-Induced Grain Chalk in Rice Endosperm
title_short Laser Microdissection-Based Tissue-Specific Transcriptome Analysis Reveals a Novel Regulatory Network of Genes Involved in Heat-Induced Grain Chalk in Rice Endosperm
title_sort laser microdissection-based tissue-specific transcriptome analysis reveals a novel regulatory network of genes involved in heat-induced grain chalk in rice endosperm
topic Regular Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6400107/
https://www.ncbi.nlm.nih.gov/pubmed/30517758
http://dx.doi.org/10.1093/pcp/pcy233
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