Literature DB >> 25118806

The potential of transcription factor-based genetic engineering in improving crop tolerance to drought.

Roel C Rabara1, Prateek Tripathi, Paul J Rushton.   

Abstract

Drought is one of the major constraints in crop production and has an effect on a global scale. In order to improve crop production, it is necessary to understand how plants respond to stress. A good understanding of regulatory mechanisms involved in plant responses during drought will enable researchers to explore and manipulate key regulatory points in order to enhance stress tolerance in crops. Transcription factors (TFs) have played an important role in crop improvement from the dawn of agriculture. TFs are therefore good candidates for genetic engineering to improve crop tolerance to drought because of their role as master regulators of clusters of genes. Many families of TFs, such as CCAAT, homeodomain, bHLH, NAC, AP2/ERF, bZIP, and WRKY have members that may have the potential to be tools for improving crop tolerance to drought. In this review, the roles of TFs as tools to improve drought tolerance in crops are discussed. The review also focuses on current strategies in the use of TFs, with emphasis on several major TF families in improving drought tolerance of major crops. Finally, many promising transgenic lines that may have improved drought responses have been poorly characterized and consequently their usefulness in the field is uncertain. New advances in high-throughput phenotyping, both greenhouse and field based, should facilitate improved phenomics of transgenic lines. Systems biology approaches should then define the underlying changes that result in higher yields under water stress conditions. These new technologies should help show whether manipulating TFs can have effects on yield under field conditions.

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Year:  2014        PMID: 25118806      PMCID: PMC4175970          DOI: 10.1089/omi.2013.0177

Source DB:  PubMed          Journal:  OMICS        ISSN: 1536-2310


  116 in total

1.  Simultaneous visualization of multiple protein interactions in living cells using multicolor fluorescence complementation analysis.

Authors:  Chang-Deng Hu; Tom K Kerppola
Journal:  Nat Biotechnol       Date:  2003-04-14       Impact factor: 54.908

Review 2.  Profiling a plant: expression analysis in Arabidopsis.

Authors:  Wolfgang Busch; Jan U Lohmann
Journal:  Curr Opin Plant Biol       Date:  2007-02-08       Impact factor: 7.834

3.  Activated expression of WRKY57 confers drought tolerance in Arabidopsis.

Authors:  Yanjuan Jiang; Gang Liang; Diqiu Yu
Journal:  Mol Plant       Date:  2012-08-28       Impact factor: 13.164

4.  The abiotic stress-responsive NAC-type transcription factor OsNAC5 regulates stress-inducible genes and stress tolerance in rice.

Authors:  Hironori Takasaki; Kyonoshin Maruyama; Satoshi Kidokoro; Yusuke Ito; Yasunari Fujita; Kazuo Shinozaki; Kazuko Yamaguchi-Shinozaki; Kazuo Nakashima
Journal:  Mol Genet Genomics       Date:  2010-07-15       Impact factor: 3.291

5.  Dimerization specificity of all 67 B-ZIP motifs in Arabidopsis thaliana: a comparison to Homo sapiens B-ZIP motifs.

Authors:  Christopher D Deppmann; Asha Acharya; Vikas Rishi; Barry Wobbes; Sjef Smeekens; Elizabeth J Taparowsky; Charles Vinson
Journal:  Nucleic Acids Res       Date:  2004-06-29       Impact factor: 16.971

Review 6.  RNA-Seq: a revolutionary tool for transcriptomics.

Authors:  Zhong Wang; Mark Gerstein; Michael Snyder
Journal:  Nat Rev Genet       Date:  2009-01       Impact factor: 53.242

7.  GmWRKY53, a water- and salt-inducible soybean gene for rapid dissection of regulatory elements in BY-2 cell culture.

Authors:  Prateek Tripathi; Roel C Rabara; Jun Lin; Paul J Rushton
Journal:  Plant Signal Behav       Date:  2013-03-19

8.  Dissecting the WRKY web of plant defense regulators.

Authors:  Thomas Eulgem
Journal:  PLoS Pathog       Date:  2006-11       Impact factor: 6.823

9.  The WRKY transcription factor superfamily: its origin in eukaryotes and expansion in plants.

Authors:  Yuanji Zhang; Liangjiang Wang
Journal:  BMC Evol Biol       Date:  2005-01-03       Impact factor: 3.260

10.  PlnTFDB: an integrative plant transcription factor database.

Authors:  Diego Mauricio Riaño-Pachón; Slobodan Ruzicic; Ingo Dreyer; Bernd Mueller-Roeber
Journal:  BMC Bioinformatics       Date:  2007-02-07       Impact factor: 3.169

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  24 in total

Review 1.  Systems Biology for Smart Crops and Agricultural Innovation: Filling the Gaps between Genotype and Phenotype for Complex Traits Linked with Robust Agricultural Productivity and Sustainability.

Authors:  Anil Kumar; Rajesh Kumar Pathak; Sanjay Mohan Gupta; Vikram Singh Gaur; Dinesh Pandey
Journal:  OMICS       Date:  2015-10

2.  Harnessing Next Generation Sequencing in Climate Change: RNA-Seq Analysis of Heat Stress-Responsive Genes in Wheat (Triticum aestivum L.).

Authors:  Ranjeet R Kumar; Suneha Goswami; Sushil K Sharma; Yugal K Kala; Gyanendra K Rai; Dwijesh C Mishra; Monendra Grover; Gyanendra P Singh; Himanshu Pathak; Anil Rai; Viswanathan Chinnusamy; Raj D Rai
Journal:  OMICS       Date:  2015-09-25

Review 3.  "Omics" of maize stress response for sustainable food production: opportunities and challenges.

Authors:  Fangping Gong; Le Yang; Fuju Tai; Xiuli Hu; Wei Wang
Journal:  OMICS       Date:  2014-12

4.  Genome-wide identification of HD-ZIP transcription factors in maize and their regulatory roles in promoting drought tolerance.

Authors:  Xiao Qiu; GuoRui Wang; Salah Fatouh Abou-Elwafa; Jiaxu Fu; Zhixue Liu; PengYu Zhang; Xiaowen Xie; Lixia Ku; Ying Ma; XiaoKang Guan; Li Wei
Journal:  Physiol Mol Biol Plants       Date:  2022-03-05

5.  Transcriptomic analysis of the primary roots of Alhagi sparsifolia in response to water stress.

Authors:  Huanian Wu; Yongqiang Zhang; Wangbin Zhang; Xinwu Pei; Chao Zhang; Shirong Jia; Weimin Li
Journal:  PLoS One       Date:  2015-03-30       Impact factor: 3.240

6.  Transcriptome profiling of tobacco under water deficit conditions.

Authors:  Roel C Rabara; Prateek Tripathi; Mani Kant Choudhary; Michael P Timko; Qingxi J Shen; Paul J Rushton
Journal:  Genom Data       Date:  2015-06-02

7.  Tobacco drought stress responses reveal new targets for Solanaceae crop improvement.

Authors:  Roel C Rabara; Prateek Tripathi; R Neil Reese; Deena L Rushton; Danny Alexander; Michael P Timko; Qingxi J Shen; Paul J Rushton
Journal:  BMC Genomics       Date:  2015-06-30       Impact factor: 3.969

Review 8.  Transcriptional regulation of osmotic stress tolerance in wheat (Triticum aestivum L.).

Authors:  Shabir H Wani; Prateek Tripathi; Abbu Zaid; Ghana S Challa; Anuj Kumar; Vinay Kumar; Jyoti Upadhyay; Rohit Joshi; Manoj Bhatt
Journal:  Plant Mol Biol       Date:  2018-08-14       Impact factor: 4.076

9.  Genome-wide analysis, identification, evolution and genomic organization of dehydration responsive element-binding (DREB) gene family in Solanum tuberosum.

Authors:  Nida Mushtaq; Faiza Munir; Alvina Gul; Rabia Amir; Rehan Zafar Paracha
Journal:  PeerJ       Date:  2021-06-24       Impact factor: 2.984

10.  Pepper CabZIP63 acts as a positive regulator during Ralstonia solanacearum or high temperature-high humidity challenge in a positive feedback loop with CaWRKY40.

Authors:  Lei Shen; Zhiqin Liu; Sheng Yang; Tong Yang; Jiaqi Liang; Jiayu Wen; Yanyan Liu; Jiazhi Li; Lanping Shi; Qian Tang; Wei Shi; Jiong Hu; Cailing Liu; Yangwen Zhang; Wei Lin; Rongzhang Wang; Huanxin Yu; Shaoliang Mou; Ansar Hussain; Wei Cheng; Hanyang Cai; Li He; Deyi Guan; Yang Wu; Shuilin He
Journal:  J Exp Bot       Date:  2016-03-01       Impact factor: 6.992

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