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Disruption of LLM9428/OsCATC Represses Starch Metabolism and Confers Enhanced Blast Resistance in Rice

Catalases (CATs) are important self-originating enzymes and are involved in many of the biological functions of plants. Multiple forms of CATs suggest their versatile role in lesion mimic mutants (LMMs), H(2)O(2) homeostasis and abiotic and biotic stress tolerance. In the current study, we identifie...

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Autores principales: Liao, Yongxiang, Ali, Asif, Xue, Zhenzhen, Zhou, Xia, Ye, Wenwei, Guo, Daiming, Liao, Yingxiu, Jiang, Pengfei, Wu, Tingkai, Zhang, Hongyu, Xu, Peizhou, Chen, Xiaoqiong, Zhou, Hao, Liu, Yutong, Wang, Wenming, Wu, Xianjun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8998287/
https://www.ncbi.nlm.nih.gov/pubmed/35409186
http://dx.doi.org/10.3390/ijms23073827
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author Liao, Yongxiang
Ali, Asif
Xue, Zhenzhen
Zhou, Xia
Ye, Wenwei
Guo, Daiming
Liao, Yingxiu
Jiang, Pengfei
Wu, Tingkai
Zhang, Hongyu
Xu, Peizhou
Chen, Xiaoqiong
Zhou, Hao
Liu, Yutong
Wang, Wenming
Wu, Xianjun
author_facet Liao, Yongxiang
Ali, Asif
Xue, Zhenzhen
Zhou, Xia
Ye, Wenwei
Guo, Daiming
Liao, Yingxiu
Jiang, Pengfei
Wu, Tingkai
Zhang, Hongyu
Xu, Peizhou
Chen, Xiaoqiong
Zhou, Hao
Liu, Yutong
Wang, Wenming
Wu, Xianjun
author_sort Liao, Yongxiang
collection PubMed
description Catalases (CATs) are important self-originating enzymes and are involved in many of the biological functions of plants. Multiple forms of CATs suggest their versatile role in lesion mimic mutants (LMMs), H(2)O(2) homeostasis and abiotic and biotic stress tolerance. In the current study, we identified a large lesion mimic mutant9428 (llm9428) from Ethyl-methane-sulfonate (EMS) mutagenized population. The llm9428 showed a typical phenotype of LMMs including decreased agronomic yield traits. The histochemical assays showed decreased cell viability and increased reactive oxygen species (ROS) in the leaves of llm9428 compared to its wild type (WT). The llm9428 showed enhanced blast disease resistance and increased relative expression of pathogenesis-related (PR) genes. Studies of the sub-cellular structure of the leaf and quantification of starch contents revealed a significant decrease in starch granule formation in llm9428. Genetic analysis revealed a single nucleotide change (C > T) that altered an amino acid (Ala > Val) in the candidate gene (Os03g0131200) encoding a CATALASE C in llm9428. CRISPR-Cas9 targetted knockout lines of LLM9428/OsCATC showed the phenotype of LMMs and reduced starch metabolism. Taken together, the current study results revealed a novel role of OsCATC in starch metabolism in addition to validating previously studied functions of CATs.
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spelling pubmed-89982872022-04-12 Disruption of LLM9428/OsCATC Represses Starch Metabolism and Confers Enhanced Blast Resistance in Rice Liao, Yongxiang Ali, Asif Xue, Zhenzhen Zhou, Xia Ye, Wenwei Guo, Daiming Liao, Yingxiu Jiang, Pengfei Wu, Tingkai Zhang, Hongyu Xu, Peizhou Chen, Xiaoqiong Zhou, Hao Liu, Yutong Wang, Wenming Wu, Xianjun Int J Mol Sci Article Catalases (CATs) are important self-originating enzymes and are involved in many of the biological functions of plants. Multiple forms of CATs suggest their versatile role in lesion mimic mutants (LMMs), H(2)O(2) homeostasis and abiotic and biotic stress tolerance. In the current study, we identified a large lesion mimic mutant9428 (llm9428) from Ethyl-methane-sulfonate (EMS) mutagenized population. The llm9428 showed a typical phenotype of LMMs including decreased agronomic yield traits. The histochemical assays showed decreased cell viability and increased reactive oxygen species (ROS) in the leaves of llm9428 compared to its wild type (WT). The llm9428 showed enhanced blast disease resistance and increased relative expression of pathogenesis-related (PR) genes. Studies of the sub-cellular structure of the leaf and quantification of starch contents revealed a significant decrease in starch granule formation in llm9428. Genetic analysis revealed a single nucleotide change (C > T) that altered an amino acid (Ala > Val) in the candidate gene (Os03g0131200) encoding a CATALASE C in llm9428. CRISPR-Cas9 targetted knockout lines of LLM9428/OsCATC showed the phenotype of LMMs and reduced starch metabolism. Taken together, the current study results revealed a novel role of OsCATC in starch metabolism in addition to validating previously studied functions of CATs. MDPI 2022-03-30 /pmc/articles/PMC8998287/ /pubmed/35409186 http://dx.doi.org/10.3390/ijms23073827 Text en © 2022 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
Liao, Yongxiang
Ali, Asif
Xue, Zhenzhen
Zhou, Xia
Ye, Wenwei
Guo, Daiming
Liao, Yingxiu
Jiang, Pengfei
Wu, Tingkai
Zhang, Hongyu
Xu, Peizhou
Chen, Xiaoqiong
Zhou, Hao
Liu, Yutong
Wang, Wenming
Wu, Xianjun
Disruption of LLM9428/OsCATC Represses Starch Metabolism and Confers Enhanced Blast Resistance in Rice
title Disruption of LLM9428/OsCATC Represses Starch Metabolism and Confers Enhanced Blast Resistance in Rice
title_full Disruption of LLM9428/OsCATC Represses Starch Metabolism and Confers Enhanced Blast Resistance in Rice
title_fullStr Disruption of LLM9428/OsCATC Represses Starch Metabolism and Confers Enhanced Blast Resistance in Rice
title_full_unstemmed Disruption of LLM9428/OsCATC Represses Starch Metabolism and Confers Enhanced Blast Resistance in Rice
title_short Disruption of LLM9428/OsCATC Represses Starch Metabolism and Confers Enhanced Blast Resistance in Rice
title_sort disruption of llm9428/oscatc represses starch metabolism and confers enhanced blast resistance in rice
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8998287/
https://www.ncbi.nlm.nih.gov/pubmed/35409186
http://dx.doi.org/10.3390/ijms23073827
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