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Glycolate Oxidase Isozymes Are Coordinately Controlled by GLO1 and GLO4 in Rice

Glycolate oxidase (GLO) is a key enzyme in photorespiratory metabolism. Four putative GLO genes were identified in the rice genome, but how each gene member contributes to GLO activities, particularly to its isozyme profile, is not well understood. In this study, we analyzed how each gene plays a ro...

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Autores principales: Zhang, Zhisheng, Lu, Yusheng, Zhai, Liguang, Deng, Rongshu, Jiang, Jun, Li, Yong, He, Zhenghui, Peng, Xinxiang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3383670/
https://www.ncbi.nlm.nih.gov/pubmed/22761858
http://dx.doi.org/10.1371/journal.pone.0039658
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author Zhang, Zhisheng
Lu, Yusheng
Zhai, Liguang
Deng, Rongshu
Jiang, Jun
Li, Yong
He, Zhenghui
Peng, Xinxiang
author_facet Zhang, Zhisheng
Lu, Yusheng
Zhai, Liguang
Deng, Rongshu
Jiang, Jun
Li, Yong
He, Zhenghui
Peng, Xinxiang
author_sort Zhang, Zhisheng
collection PubMed
description Glycolate oxidase (GLO) is a key enzyme in photorespiratory metabolism. Four putative GLO genes were identified in the rice genome, but how each gene member contributes to GLO activities, particularly to its isozyme profile, is not well understood. In this study, we analyzed how each gene plays a role in isozyme formation and enzymatic activities in both yeast cells and rice tissues. Five GLO isozymes were detected in rice leaves. GLO1 and GLO4 are predominately expressed in rice leaves, while GLO3 and GLO5 are mainly expressed in the root. Enzymatic assays showed that all yeast-expressed GLO members except GLO5 have enzymatic activities. Further analyses suggested that GLO1, GLO3 and GLO4 interacted with each other, but no interactions were observed for GLO5. GLO1/GLO4 co-expressed in yeast exhibited the same isozyme pattern as that from rice leaves. When either GLO1 or GLO4 was silenced, expressions of both genes were simultaneously suppressed and most of the GLO activities were lost, and consistent with this observation, little GLO isozyme protein was detected in the silenced plants. In contrast, no observable effect was detected when GLO3 was suppressed. Comparative analyses between the GLO isoforms expressed in yeast and the isozymes from rice leaves indicated that two of the five isozymes are homo-oligomers composed of either GLO1 or GLO4, and the other three are hetero-oligomers composed of both GLO1 and GLO4. Our current data suggest that GLO isozymes are coordinately controlled by GLO1 and GLO4 in rice, and the existence of GLO isozymes and GLO molecular and compositional complexities implicate potential novel roles for GLO in plants.
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spelling pubmed-33836702012-07-03 Glycolate Oxidase Isozymes Are Coordinately Controlled by GLO1 and GLO4 in Rice Zhang, Zhisheng Lu, Yusheng Zhai, Liguang Deng, Rongshu Jiang, Jun Li, Yong He, Zhenghui Peng, Xinxiang PLoS One Research Article Glycolate oxidase (GLO) is a key enzyme in photorespiratory metabolism. Four putative GLO genes were identified in the rice genome, but how each gene member contributes to GLO activities, particularly to its isozyme profile, is not well understood. In this study, we analyzed how each gene plays a role in isozyme formation and enzymatic activities in both yeast cells and rice tissues. Five GLO isozymes were detected in rice leaves. GLO1 and GLO4 are predominately expressed in rice leaves, while GLO3 and GLO5 are mainly expressed in the root. Enzymatic assays showed that all yeast-expressed GLO members except GLO5 have enzymatic activities. Further analyses suggested that GLO1, GLO3 and GLO4 interacted with each other, but no interactions were observed for GLO5. GLO1/GLO4 co-expressed in yeast exhibited the same isozyme pattern as that from rice leaves. When either GLO1 or GLO4 was silenced, expressions of both genes were simultaneously suppressed and most of the GLO activities were lost, and consistent with this observation, little GLO isozyme protein was detected in the silenced plants. In contrast, no observable effect was detected when GLO3 was suppressed. Comparative analyses between the GLO isoforms expressed in yeast and the isozymes from rice leaves indicated that two of the five isozymes are homo-oligomers composed of either GLO1 or GLO4, and the other three are hetero-oligomers composed of both GLO1 and GLO4. Our current data suggest that GLO isozymes are coordinately controlled by GLO1 and GLO4 in rice, and the existence of GLO isozymes and GLO molecular and compositional complexities implicate potential novel roles for GLO in plants. Public Library of Science 2012-06-26 /pmc/articles/PMC3383670/ /pubmed/22761858 http://dx.doi.org/10.1371/journal.pone.0039658 Text en Zhang et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Zhang, Zhisheng
Lu, Yusheng
Zhai, Liguang
Deng, Rongshu
Jiang, Jun
Li, Yong
He, Zhenghui
Peng, Xinxiang
Glycolate Oxidase Isozymes Are Coordinately Controlled by GLO1 and GLO4 in Rice
title Glycolate Oxidase Isozymes Are Coordinately Controlled by GLO1 and GLO4 in Rice
title_full Glycolate Oxidase Isozymes Are Coordinately Controlled by GLO1 and GLO4 in Rice
title_fullStr Glycolate Oxidase Isozymes Are Coordinately Controlled by GLO1 and GLO4 in Rice
title_full_unstemmed Glycolate Oxidase Isozymes Are Coordinately Controlled by GLO1 and GLO4 in Rice
title_short Glycolate Oxidase Isozymes Are Coordinately Controlled by GLO1 and GLO4 in Rice
title_sort glycolate oxidase isozymes are coordinately controlled by glo1 and glo4 in rice
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3383670/
https://www.ncbi.nlm.nih.gov/pubmed/22761858
http://dx.doi.org/10.1371/journal.pone.0039658
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