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Transcriptome analysis of grain-filling caryopses reveals involvement of multiple regulatory pathways in chalky grain formation in rice

BACKGROUND: Grain endosperm chalkiness of rice is a varietal characteristic that negatively affects not only the appearance and milling properties but also the cooking texture and palatability of cooked rice. However, grain chalkiness is a complex quantitative genetic trait and the molecular mechani...

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Autores principales: Liu, Xiaolu, Guo, Tao, Wan, Xiangyuan, Wang, Haiyang, Zhu, Mingzhu, Li, Aili, Su, Ning, Shen, Yingyue, Mao, Bigang, Zhai, Huqu, Mao, Long, Wan, Jianmin
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3023816/
https://www.ncbi.nlm.nih.gov/pubmed/21192807
http://dx.doi.org/10.1186/1471-2164-11-730
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author Liu, Xiaolu
Guo, Tao
Wan, Xiangyuan
Wang, Haiyang
Zhu, Mingzhu
Li, Aili
Su, Ning
Shen, Yingyue
Mao, Bigang
Zhai, Huqu
Mao, Long
Wan, Jianmin
author_facet Liu, Xiaolu
Guo, Tao
Wan, Xiangyuan
Wang, Haiyang
Zhu, Mingzhu
Li, Aili
Su, Ning
Shen, Yingyue
Mao, Bigang
Zhai, Huqu
Mao, Long
Wan, Jianmin
author_sort Liu, Xiaolu
collection PubMed
description BACKGROUND: Grain endosperm chalkiness of rice is a varietal characteristic that negatively affects not only the appearance and milling properties but also the cooking texture and palatability of cooked rice. However, grain chalkiness is a complex quantitative genetic trait and the molecular mechanisms underlying its formation are poorly understood. RESULTS: A near-isogenic line CSSL50-1 with high chalkiness was compared with its normal parental line Asominori for grain endosperm chalkiness. Physico-biochemical analyses of ripened grains showed that, compared with Asominori, CSSL50-1 contains higher levels of amylose and 8 DP (degree of polymerization) short-chain amylopectin, but lower medium length 12 DP amylopectin. Transcriptome analysis of 15 DAF (day after flowering) caryopses of the isogenic lines identified 623 differential expressed genes (P < 0.01), among which 324 genes are up-regulated and 299 down-regulated. These genes were classified into 18 major categories, with 65.3% of them belong to six major functional groups: signal transduction, cell rescue/defense, transcription, protein degradation, carbohydrate metabolism and redox homeostasis. Detailed pathway dissection demonstrated that genes involved in sucrose and starch synthesis are up-regulated, whereas those involved in non-starch polysaccharides are down regulated. Several genes involved in oxidoreductive homeostasis were found to have higher expression levels in CSSL50-1 as well, suggesting potential roles of ROS in grain chalkiness formation. CONCLUSION: Extensive gene expression changes were detected during rice grain chalkiness formation. Over half of these differentially expressed genes are implicated in several important categories of genes, including signal transduction, transcription, carbohydrate metabolism and redox homeostasis, suggesting that chalkiness formation involves multiple metabolic and regulatory pathways.
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spelling pubmed-30238162011-01-20 Transcriptome analysis of grain-filling caryopses reveals involvement of multiple regulatory pathways in chalky grain formation in rice Liu, Xiaolu Guo, Tao Wan, Xiangyuan Wang, Haiyang Zhu, Mingzhu Li, Aili Su, Ning Shen, Yingyue Mao, Bigang Zhai, Huqu Mao, Long Wan, Jianmin BMC Genomics Research Article BACKGROUND: Grain endosperm chalkiness of rice is a varietal characteristic that negatively affects not only the appearance and milling properties but also the cooking texture and palatability of cooked rice. However, grain chalkiness is a complex quantitative genetic trait and the molecular mechanisms underlying its formation are poorly understood. RESULTS: A near-isogenic line CSSL50-1 with high chalkiness was compared with its normal parental line Asominori for grain endosperm chalkiness. Physico-biochemical analyses of ripened grains showed that, compared with Asominori, CSSL50-1 contains higher levels of amylose and 8 DP (degree of polymerization) short-chain amylopectin, but lower medium length 12 DP amylopectin. Transcriptome analysis of 15 DAF (day after flowering) caryopses of the isogenic lines identified 623 differential expressed genes (P < 0.01), among which 324 genes are up-regulated and 299 down-regulated. These genes were classified into 18 major categories, with 65.3% of them belong to six major functional groups: signal transduction, cell rescue/defense, transcription, protein degradation, carbohydrate metabolism and redox homeostasis. Detailed pathway dissection demonstrated that genes involved in sucrose and starch synthesis are up-regulated, whereas those involved in non-starch polysaccharides are down regulated. Several genes involved in oxidoreductive homeostasis were found to have higher expression levels in CSSL50-1 as well, suggesting potential roles of ROS in grain chalkiness formation. CONCLUSION: Extensive gene expression changes were detected during rice grain chalkiness formation. Over half of these differentially expressed genes are implicated in several important categories of genes, including signal transduction, transcription, carbohydrate metabolism and redox homeostasis, suggesting that chalkiness formation involves multiple metabolic and regulatory pathways. BioMed Central 2010-12-30 /pmc/articles/PMC3023816/ /pubmed/21192807 http://dx.doi.org/10.1186/1471-2164-11-730 Text en Copyright ©2010 Liu et al; licensee BioMed Central Ltd. This is an Open Access article distributed under the terms of the Creative Commons Attribution License (<url>http://creativecommons.org/licenses/by/2.0</url>), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Liu, Xiaolu
Guo, Tao
Wan, Xiangyuan
Wang, Haiyang
Zhu, Mingzhu
Li, Aili
Su, Ning
Shen, Yingyue
Mao, Bigang
Zhai, Huqu
Mao, Long
Wan, Jianmin
Transcriptome analysis of grain-filling caryopses reveals involvement of multiple regulatory pathways in chalky grain formation in rice
title Transcriptome analysis of grain-filling caryopses reveals involvement of multiple regulatory pathways in chalky grain formation in rice
title_full Transcriptome analysis of grain-filling caryopses reveals involvement of multiple regulatory pathways in chalky grain formation in rice
title_fullStr Transcriptome analysis of grain-filling caryopses reveals involvement of multiple regulatory pathways in chalky grain formation in rice
title_full_unstemmed Transcriptome analysis of grain-filling caryopses reveals involvement of multiple regulatory pathways in chalky grain formation in rice
title_short Transcriptome analysis of grain-filling caryopses reveals involvement of multiple regulatory pathways in chalky grain formation in rice
title_sort transcriptome analysis of grain-filling caryopses reveals involvement of multiple regulatory pathways in chalky grain formation in rice
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3023816/
https://www.ncbi.nlm.nih.gov/pubmed/21192807
http://dx.doi.org/10.1186/1471-2164-11-730
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