Literature DB >> 24520156

A positive feedback loop between HEAT SHOCK PROTEIN101 and HEAT STRESS-ASSOCIATED 32-KD PROTEIN modulates long-term acquired thermotolerance illustrating diverse heat stress responses in rice varieties.

Meng-yi Lin1, Kuo-hsing Chai, Swee-suak Ko, Lin-yun Kuang, Huu-sheng Lur, Yee-yung Charng.   

Abstract

Heat stress is an important factor that has a negative impact on rice (Oryza sativa) production. To alleviate this problem, it is necessary to extensively understand the genetic basis of heat tolerance and adaptability to heat stress in rice. Here, we report the molecular mechanism underlying heat acclimation memory that confers long-term acquired thermotolerance (LAT) in this monocot plant. Our results showed that a positive feedback loop formed by two heat-inducible genes, HEAT SHOCK PROTEIN101 (HSP101) and HEAT STRESS-ASSOCIATED 32-KD PROTEIN (HSA32), at the posttranscriptional level prolongs the effect of heat acclimation in rice seedlings. The interplay between HSP101 and HSA32 also affects basal thermotolerance of rice seeds. These findings are similar to those reported for the dicot plant Arabidopsis (Arabidopsis thaliana), suggesting a conserved function in plant heat stress response. Comparison between two rice cultivars, japonica Nipponbare and indica N22 showed opposite performance in basal thermotolerance and LAT assays. 'N22' seedlings have a higher basal thermotolerance level than cv Nipponbare and vice versa at the LAT level, indicating that these two types of thermotolerance can be decoupled. The HSP101 and HSA32 protein levels were substantially higher in cv Nipponbare than in cv N22 after a long recovery following heat acclimation treatment, at least partly explaining the difference in the LAT phenotype. Our results point out the complexity of thermotolerance diversity in rice cultivars, which may need to be taken into consideration when breeding for heat tolerance for different climate scenarios.

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Year:  2014        PMID: 24520156      PMCID: PMC3982761          DOI: 10.1104/pp.113.229609

Source DB:  PubMed          Journal:  Plant Physiol        ISSN: 0032-0889            Impact factor:   8.340


  27 in total

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Authors:  N N Wang; S F Yang; Y Charng
Journal:  Plant Physiol       Date:  2001-05       Impact factor: 8.340

Review 2.  Heat shock proteins: modifying factors in physiological stress responses and acquired thermotolerance.

Authors:  Kevin C Kregel
Journal:  J Appl Physiol (1985)       Date:  2002-05

3.  Simple RNAi vectors for stable and transient suppression of gene function in rice.

Authors:  Daisuke Miki; Ko Shimamoto
Journal:  Plant Cell Physiol       Date:  2004-04       Impact factor: 4.927

4.  Interplay between heat shock proteins HSP101 and HSA32 prolongs heat acclimation memory posttranscriptionally in Arabidopsis.

Authors:  Ting-ying Wu; Yu-ting Juan; Yang-hsin Hsu; Sze-hsien Wu; Hsiu-ting Liao; Raymond W M Fung; Yee-yung Charng
Journal:  Plant Physiol       Date:  2013-02-25       Impact factor: 8.340

5.  Highly efficient production and characterization of T-DNA plants for rice ( Oryza sativa L.) functional genomics.

Authors:  C Sallaud; D Meynard; J van Boxtel; C Gay; M Bès; J P Brizard; P Larmande; D Ortega; M Raynal; M Portefaix; P B F Ouwerkerk; S Rueb; M Delseny; E Guiderdoni
Journal:  Theor Appl Genet       Date:  2003-04-03       Impact factor: 5.699

Review 6.  Contribution of the Tos17 retrotransposon to rice functional genomics.

Authors:  H Hirochika
Journal:  Curr Opin Plant Biol       Date:  2001-04       Impact factor: 7.834

7.  Heat shock protein 101 plays a crucial role in thermotolerance in Arabidopsis.

Authors:  C Queitsch; S W Hong; E Vierling; S Lindquist
Journal:  Plant Cell       Date:  2000-04       Impact factor: 11.277

8.  Rice yields decline with higher night temperature from global warming.

Authors:  Shaobing Peng; Jianliang Huang; John E Sheehy; Rebecca C Laza; Romeo M Visperas; Xuhua Zhong; Grace S Centeno; Gurdev S Khush; Kenneth G Cassman
Journal:  Proc Natl Acad Sci U S A       Date:  2004-06-28       Impact factor: 11.205

9.  Maize HSP101 plays important roles in both induced and basal thermotolerance and primary root growth.

Authors:  Jorge Nieto-Sotelo; Luz María Martínez; Georgina Ponce; Gladys I Cassab; Alejandro Alagón; Robert B Meeley; Jean-Marcel Ribaut; Runying Yang
Journal:  Plant Cell       Date:  2002-07       Impact factor: 11.277

10.  Molecular characterization of rice hsp101: complementation of yeast hsp104 mutation by disaggregation of protein granules and differential expression in indica and japonica rice types.

Authors:  Manu Agarwal; Chandan Sahi; Surekha Katiyar-Agarwal; Sangeeta Agarwal; Todd Young; Daniel R Gallie; Vishva Mitra Sharma; K Ganesan; Anil Grover
Journal:  Plant Mol Biol       Date:  2003-03       Impact factor: 4.076

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  35 in total

1.  Alternative Splicing Provides a Mechanism to Regulate LlHSFA3 Function in Response to Heat Stress in Lily.

Authors:  Ze Wu; Jiahui Liang; Chengpeng Wang; Liping Ding; Xin Zhao; Xing Cao; Sujuan Xu; Nianjun Teng; Mingfang Yi
Journal:  Plant Physiol       Date:  2019-10-14       Impact factor: 8.340

Review 2.  Rice functional genomics: decades' efforts and roads ahead.

Authors:  Rongzhi Chen; Yiwen Deng; Yanglin Ding; Jingxin Guo; Jie Qiu; Bing Wang; Changsheng Wang; Yongyao Xie; Zhihua Zhang; Jiaxin Chen; Letian Chen; Chengcai Chu; Guangcun He; Zuhua He; Xuehui Huang; Yongzhong Xing; Shuhua Yang; Daoxin Xie; Yaoguang Liu; Jiayang Li
Journal:  Sci China Life Sci       Date:  2021-12-07       Impact factor: 6.038

3.  Heat shock protein 101 contributes to the thermotolerance of male meiosis in maize.

Authors:  Yunfei Li; Yumin Huang; Huayue Sun; Tianyi Wang; Wei Ru; Lingling Pan; Xiaoming Zhao; Zhaobin Dong; Wei Huang; Weiwei Jin
Journal:  Plant Cell       Date:  2022-09-27       Impact factor: 12.085

Review 4.  Regulatory roles of selective autophagy through targeting of native proteins in plant adaptive responses.

Authors:  Yan Zhang; Gengshou Xia; Li Sheng; Mingjue Chen; Chenyang Hu; Yule Ye; Xiaoyan Yue; Shaocong Chen; Wenwu OuYang; Zhenkai Xia
Journal:  Plant Cell Rep       Date:  2022-08-03       Impact factor: 4.964

5.  The Proteasome Stress Regulon Is Controlled by a Pair of NAC Transcription Factors in Arabidopsis.

Authors:  Nicholas P Gladman; Richard S Marshall; Kwang-Hee Lee; Richard D Vierstra
Journal:  Plant Cell       Date:  2016-05-18       Impact factor: 11.277

6.  Mutualistic fungal endophytes produce phytohormones and organic acids that promote japonica rice plant growth under prolonged heat stress.

Authors:  Muhammad Waqas; Abdul Latif Khan; Raheem Shahzad; Ihsan Ullah; Abdur Rahim Khan; In-Jung Lee
Journal:  J Zhejiang Univ Sci B       Date:  2015-12       Impact factor: 3.066

7.  Intergenic sequence between Arabidopsis caseinolytic protease B-cytoplasmic/heat shock protein100 and choline kinase genes functions as a heat-inducible bidirectional promoter.

Authors:  Ratnesh Chandra Mishra; Anil Grover
Journal:  Plant Physiol       Date:  2014-10-03       Impact factor: 8.340

8.  Genome-wide analysis of Hsp70 and Hsp100 gene families in Ziziphus jujuba.

Authors:  Kishor Prabhakar Panzade; Sonam S Kale; Narendra R Chavan; Bhupal Hatzade
Journal:  Cell Stress Chaperones       Date:  2020-11-12       Impact factor: 3.667

Review 9.  High temperature-mediated disturbance of carbohydrate metabolism and gene expressional regulation in rice: a review.

Authors:  Deng Qin-Di; Jian Gui-Hua; Wang Xiu-Neng; Mo Zun-Guang; Peng Qing-Yong; Chen Shiyun; Mo Yu-Jian; Zhou Shuang-Xi; Huang Yong-Xiang; Ling Yu
Journal:  Plant Signal Behav       Date:  2021-01-20

10.  Individual and Combined Effects of Booting and Flowering High-Temperature Stress on Rice Biomass Accumulation.

Authors:  Aqib Mahmood; Wei Wang; Iftikhar Ali; Fengxian Zhen; Raheel Osman; Bing Liu; Leilei Liu; Yan Zhu; Weixing Cao; Liang Tang
Journal:  Plants (Basel)       Date:  2021-05-20
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