Literature DB >> 32744336

Improving crop salt tolerance using transgenic approaches: An update and physiological analysis.

Lukasz Kotula1,2, Pedro Garcia Caparros3, Christian Zörb4, Timothy D Colmer1,2, Timothy J Flowers1,5.   

Abstract

Salinization of land is likely to increase due to climate change with impact on agricultural production. Since most species used as crops are sensitive to salinity, improvement of salt tolerance is needed to maintain global food production. This review summarises successes and failures of transgenic approaches in improving salt tolerance in crop species. A conceptual model of coordinated physiological mechanisms in roots and shoots required for salt tolerance is presented. Transgenic plants overexpressing genes of key proteins contributing to Na+ 'exclusion' (PM-ATPases with SOS1 antiporter, and HKT1 transporter) and Na+ compartmentation in vacuoles (V-H+ ATPase and V-H+ PPase with NHX antiporter), as well as two proteins potentially involved in alleviating water deficit during salt stress (aquaporins and dehydrins), were evaluated. Of the 51 transformations, with gene(s) involved in Na+ 'exclusion' or Na+ vacuolar compartmentation that contained quantitative data on growth and include a non-saline control, 48 showed improvements in salt tolerance (less impact on plant mass) of transgenic plants, but with only two tested in field conditions. Of these 51 transformations, 26 involved crop species. Tissue ion concentrations were altered, but not always in the same way. Although glasshouse data are promising, field studies are required to assess crop salinity tolerance.
© 2020 John Wiley & Sons Ltd.

Entities:  

Keywords:  HKT1; NHX; SOS1; plasma membrane ATPase; salt tolerance; salt ‘exclusion’; sodium vacuolar compartmentation; transgenic plants; vacuolar-H+ATPase; vacuolar-H+PPase

Mesh:

Year:  2020        PMID: 32744336     DOI: 10.1111/pce.13865

Source DB:  PubMed          Journal:  Plant Cell Environ        ISSN: 0140-7791            Impact factor:   7.228


  19 in total

1.  The E3 Ligase GmPUB21 Negatively Regulates Drought and Salinity Stress Response in Soybean.

Authors:  Yunhua Yang; Adhimoolam Karthikeyan; Jinlong Yin; Tongtong Jin; Rui Ren; Fei Fang; Han Cai; Mengzhuo Liu; Dagang Wang; Kai Li; Haijian Zhi
Journal:  Int J Mol Sci       Date:  2022-06-21       Impact factor: 6.208

2.  Transcriptome Analysis to Understand Salt Stress Regulation Mechanism of Chromohalobacter salexigens ANJ207.

Authors:  Alok Kumar Srivastava; Ruchi Srivastava; Anjney Sharma; Akhilendra Pratap Bharati; Jagriti Yadav; Alok Kumar Singh; Praveen Kumar Tiwari; Anchal Kumar Srivatava; Hillol Chakdar; Prem Lal Kashyap; Anil Kumar Saxena
Journal:  Front Microbiol       Date:  2022-06-30       Impact factor: 6.064

Review 3.  Salinity stress tolerance and omics approaches: revisiting the progress and achievements in major cereal crops.

Authors:  Pardeep Kumar; Mukesh Choudhary; Tanushree Halder; Nitish Ranjan Prakash; Vishal Singh; Vineeth T V; Seema Sheoran; Ravikiran K T; Ningthaipuilu Longmei; Sujay Rakshit; Kadambot H M Siddique
Journal:  Heredity (Edinb)       Date:  2022-03-05       Impact factor: 3.832

4.  Comprehensive dissection into morpho-physiologic responses, ionomic homeostasis, and transcriptomic profiling reveals the systematic resistance of allotetraploid rapeseed to salinity.

Authors:  Ying-Na Feng; Jia-Qian Cui; Ting Zhou; Ying Liu; Cai-Peng Yue; Jin-Yong Huang; Ying-Peng Hua
Journal:  BMC Plant Biol       Date:  2020-11-24       Impact factor: 4.215

5.  Physiological and Biochemical Responses of Ungrafted and Grafted Bell Pepper Plants (Capsicum annuum L. var. grossum (L.) Sendtn.) Grown under Moderate Salt Stress.

Authors:  Nina Kacjan Maršić; Petra Štolfa; Dominik Vodnik; Katarina Košmelj; Maja Mikulič-Petkovšek; Bojka Kump; Rajko Vidrih; Doris Kokalj; Saša Piskernik; Blaz Ferjančič; Maja Dragutinović; Robert Veberič; Metka Hudina; Helena Šircelj
Journal:  Plants (Basel)       Date:  2021-02-06

6.  Quinoa (Chenopodium quinoa Willd.): Genetic Diversity According to ISSR and SCoT Markers, Relative Gene Expression, and Morpho-Physiological Variation under Salinity Stress.

Authors:  Diaa Abd El-Moneim; Eman I S ELsarag; Salman Aloufi; Asmaa M El-Azraq; Salha Mesfer ALshamrani; Fatmah Ahmed Ahmed Safhi; Amira A Ibrahim
Journal:  Plants (Basel)       Date:  2021-12-17

7.  Histone Deacetylase Inhibitor SAHA Improves High Salinity Tolerance Associated with Hyperacetylation-Enhancing Expression of Ion Homeostasis-Related Genes in Cotton.

Authors:  Shibin He; Yunfei Hao; Qi Zhang; Penghui Zhang; Fengfeng Ji; Hui Cheng; Dong Lv; Yanfeng Sun; Fushun Hao; Chen Miao
Journal:  Int J Mol Sci       Date:  2020-09-26       Impact factor: 5.923

8.  Genome-Wide Identification, Primary Functional Characterization of the NHX Gene Family in Canavalia rosea, and Their Possible Roles for Adaptation to Tropical Coral Reefs.

Authors:  Lin Pu; Ruoyi Lin; Tao Zou; Zhengfeng Wang; Mei Zhang; Shuguang Jian
Journal:  Genes (Basel)       Date:  2021-12-23       Impact factor: 4.096

9.  Evaluation of the Saline-Alkaline Tolerance of Rice (Oryza sativa L.) Mutants Induced by Heavy-Ion Beam Mutagenesis.

Authors:  Xin Zhang; Fu Yang; Hongyuan Ma; Jingpeng Li
Journal:  Biology (Basel)       Date:  2022-01-13

Review 10.  Genetic, Epigenetic, Genomic and Microbial Approaches to Enhance Salt Tolerance of Plants: A Comprehensive Review.

Authors:  Gargi Prasad Saradadevi; Debajit Das; Satendra K Mangrauthia; Sridev Mohapatra; Channakeshavaiah Chikkaputtaiah; Manish Roorkiwal; Manish Solanki; Raman Meenakshi Sundaram; Neeraja N Chirravuri; Akshay S Sakhare; Suneetha Kota; Rajeev K Varshney; Gireesha Mohannath
Journal:  Biology (Basel)       Date:  2021-12-01
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