Plant Physiology and Biochemistry2022,Vol.18311.DOI:10.1016/j.plaphy.2022.04.028

OsGLYI3, a glyoxalase gene expressed in rice seed, contributes to seed longevity and salt stress tolerance

Liu, Wenhua Lai, Jianyun Liu, Qinjian Zhang, Wenhu Chen, Zhongjian Gao, Jiadong Song, Songquan Liu, Jun Xiao, Yinghui Liu, Shengjie
Plant Physiology and Biochemistry2022,Vol.18311.DOI:10.1016/j.plaphy.2022.04.028

OsGLYI3, a glyoxalase gene expressed in rice seed, contributes to seed longevity and salt stress tolerance

Liu, Wenhua 1Lai, Jianyun 1Liu, Qinjian 1Zhang, Wenhu 1Chen, Zhongjian 1Gao, Jiadong 1Song, Songquan 2Liu, Jun 1Xiao, Yinghui 3Liu, Shengjie3
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作者信息

  • 1. Guangdong Acad Agr Sci
  • 2. Chinese Acad Sci
  • 3. Hunan Agr Univ
  • 折叠

Abstract

The glyoxalase pathway plays a vital role in the chemical detoxification of methylglyoxal (MG) in biological systems. Our previous study suggested that OsGLYI3 may be effective in seed natural aging. In this study, the rice OsGLYI3 gene was cloned and characterized as specifically expressed in the seed. The accelerated aging (AA) treatment results indicated significant roles of OsGLYI3 in seed longevity and vigor, as the seeds of the transgenic lines with overexpressed and knocked-out OsGLYI3 exhibited higher and lower germination, respectively. The AA treatment also increased the superoxide dismutase (SOD) activity in the overexpressed transgenic seeds compared to the wild-type seeds yet lowered the SOD activity in the CRISPR/Cas9-derived transgenic rice lines. Rice OsGLYI3 was markedly upregulated in response to NaCl induced stress conditions. Compared to wild-type plants, overexpressed transgenic rice lines exhibited increased GLYI activity, decreased MG levels and improved salt stress tolerance, while CRISPR/Cas9 knockout transgenic rice lines showed decreased glyoxalase I activity, increased MG levels, and greater sensitivity to stress treatments with NaCl. Collectively, our results confirmed for the first time that OsGLYI3 is specifically expressed in rice seeds and contributes to seed longevity and salt stress tolerance.

Key words

Glyoxalase I/Methylglyoxal/Stress tolerance/Seed longevity/Rice(Oryza sativa L/)/ORYZA-SATIVA/I GENE/METHYLGLYOXAL/OVEREXPRESSION/PROTEIN/IDENTIFICATION/DETOXIFICATION/DETERIORATION/GERMINATION/DORMANCY

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出版年

2022
Plant Physiology and Biochemistry

Plant Physiology and Biochemistry

SCI
ISSN:0981-9428
被引量4
参考文献量49
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