Literature DB >> 23498861

Generating high temperature tolerant transgenic plants: Achievements and challenges.

Anil Grover1, Dheeraj Mittal, Manisha Negi, Dhruv Lavania.   

Abstract

Production of plants tolerant to high temperature stress is of immense significance in the light of global warming and climate change. Plant cells respond to high temperature stress by re-programming their genetic machinery for survival and reproduction. High temperature tolerance in transgenic plants has largely been achieved either by over-expressing heat shock protein genes or by altering levels of heat shock factors that regulate expression of heat shock and non-heat shock genes. Apart from heat shock factors, over-expression of other trans-acting factors like DREB2A, bZIP28 and WRKY proteins has proven useful in imparting high temperature tolerance. Besides these, elevating the genetic levels of proteins involved in osmotic adjustment, reactive oxygen species removal, saturation of membrane-associated lipids, photosynthetic reactions, production of polyamines and protein biosynthesis process have yielded positive results in equipping transgenic plants with high temperature tolerance. Cyclic nucleotide gated calcium channel proteins that regulate calcium influxes across the cell membrane have recently been shown to be the key players in induction of high temperature tolerance. The involvement of calmodulins and kinases in activation of heat shock factors has been implicated as an important event in governing high temperature tolerance. Unfilled gaps limiting the production of high temperature tolerant transgenic plants for field level cultivation are discussed.
Copyright © 2013 Elsevier Ireland Ltd. All rights reserved.

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Year:  2013        PMID: 23498861     DOI: 10.1016/j.plantsci.2013.01.005

Source DB:  PubMed          Journal:  Plant Sci        ISSN: 0168-9452            Impact factor:   4.729


  48 in total

Review 1.  Heat or cold priming-induced cross-tolerance to abiotic stresses in plants: key regulators and possible mechanisms.

Authors:  Mohammad Anwar Hossain; Zhong-Guang Li; Tahsina Sharmin Hoque; David J Burritt; Masayuki Fujita; Sergi Munné-Bosch
Journal:  Protoplasma       Date:  2017-08-04       Impact factor: 3.356

Review 2.  WRKY transcription factors: Jack of many trades in plants.

Authors:  Madhunita Bakshi; Ralf Oelmüller
Journal:  Plant Signal Behav       Date:  2014-02-03

Review 3.  The dynamics and role of sphingolipids in eukaryotic organisms upon thermal adaptation.

Authors:  João Henrique Tadini Marilhano Fabri; Nivea Pereira de Sá; Iran Malavazi; Maurizio Del Poeta
Journal:  Prog Lipid Res       Date:  2020-09-02       Impact factor: 16.195

4.  Lethal heat stress-dependent volatile emissions from tobacco leaves: what happens beyond the thermal edge?

Authors:  Satpal Turan; Kaia Kask; Arooran Kanagendran; Shuai Li; Rinaldo Anni; Eero Talts; Bahtijor Rasulov; Astrid Kännaste; Ülo Niinemets
Journal:  J Exp Bot       Date:  2019-09-24       Impact factor: 6.992

5.  RNA-Seq Analysis of Developing Grains of Wheat to Intrigue Into the Complex Molecular Mechanism of the Heat Stress Response.

Authors:  Surinder Paul; Joginder Singh Duhan; Sarika Jaiswal; Ulavappa B Angadi; Ruchika Sharma; Nishu Raghav; Om Prakash Gupta; Sonia Sheoran; Pradeep Sharma; Rajender Singh; Anil Rai; Gyanendra Pratap Singh; Dinesh Kumar; Mir Asif Iquebal; Ratan Tiwari
Journal:  Front Plant Sci       Date:  2022-06-02       Impact factor: 6.627

6.  Overexpression of receptor-like kinase ERECTA improves thermotolerance in rice and tomato.

Authors:  Hui Shen; Xiangbin Zhong; Fangfang Zhao; Yanmei Wang; Bingxiao Yan; Qun Li; Genyun Chen; Bizeng Mao; Jianjun Wang; Yangsheng Li; Guoying Xiao; Yuke He; Han Xiao; Jianming Li; Zuhua He
Journal:  Nat Biotechnol       Date:  2015-08-17       Impact factor: 54.908

7.  The grapevine VviPrx31 peroxidase as a candidate gene involved in anthocyanin degradation in ripening berries under high temperature.

Authors:  Nooshin Movahed; Chiara Pastore; Antonio Cellini; Gianluca Allegro; Gabriele Valentini; Sara Zenoni; Erika Cavallini; Erica D'Incà; Giovanni Battista Tornielli; Ilaria Filippetti
Journal:  J Plant Res       Date:  2016-01-29       Impact factor: 2.629

8.  Integrating Omics and Alternative Splicing Reveals Insights into Grape Response to High Temperature.

Authors:  Jianfu Jiang; Xinna Liu; Chonghuai Liu; Guotian Liu; Shaohua Li; Lijun Wang
Journal:  Plant Physiol       Date:  2017-01-03       Impact factor: 8.340

9.  Characterization of high-temperature stress-tolerant tomato (Solanum lycopersicum L.) genotypes by biochemical analysis and expression profiling of heat-responsive genes.

Authors:  Suhas Gorakh Karkute; Waquar Akhter Ansari; Achuit Kumar Singh; Prabhakar Mohan Singh; Nagendra Rai; Anant Bahadur; Jagdish Singh
Journal:  3 Biotech       Date:  2021-01-11       Impact factor: 2.406

Review 10.  Physiological, biochemical, and molecular mechanisms of heat stress tolerance in plants.

Authors:  Mirza Hasanuzzaman; Kamrun Nahar; Md Mahabub Alam; Rajib Roychowdhury; Masayuki Fujita
Journal:  Int J Mol Sci       Date:  2013-05-03       Impact factor: 5.923

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