Drought Response in Wheat: Key Genes and Regulatory Mechanisms Controlling Root System Architecture and Transpiration Efficiency

被引:149
作者
Kulkarni, Manoj [1 ]
Soolanayakanahally, Raju [2 ]
Ogawa, Satoshi [3 ]
Uga, Yusaku [4 ]
Selvaraj, Michael G. [5 ]
Kagale, Sateesh [1 ]
机构
[1] Natl Res Council Canada NRC CNRC, Canadian Wheat Improvement Flagship Program, Saskatoon, SK, Canada
[2] Agr & Agri Food Canada, Saskatoon Res & Dev Ctr, Saskatoon, SK, Canada
[3] Univ Tokyo, Grad Sch Agr & Life Sci, Dept Global Agr Sci, Tokyo, Japan
[4] Natl Agr & Food Res Org NARO, Inst Crop Sci NICS, Tsukuba, Ibaraki, Japan
[5] Int Ctr Trop Agr CIAT, Agrobiovers Res Area, Cali, Colombia
关键词
wheat; drought; root traits; transpiration efficiency; transcriptional regulation; EAR motif; ZINC-FINGER PROTEIN; WRKY TRANSCRIPTION FACTORS; TRITICUM-AESTIVUM L; WATER-USE EFFICIENCY; EAR-MOTIF; ABIOTIC STRESS; ABSCISIC-ACID; DOMINANT REPRESSION; WIDE IDENTIFICATION; ECTOPIC EXPRESSION;
D O I
10.3389/fchem.2017.00106
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Abiotic stresses such as, drought, heat, salinity, and flooding threaten global food security. Crop genetic improvement with increased resilience to abiotic stresses is a critical component of crop breeding strategies. Wheat is an important cereal crop and a staple food source globally. Enhanced drought tolerance in wheat is critical for sustainable food production and global food security. Recent advances in drought tolerance research have uncovered many key genes and transcription regulators governing morpho-physiological traits. Genes controlling root architecture and stomatal development play an important role in soil moisture extraction and its retention, and therefore have been targets of molecular breeding strategies for improving drought tolerance. In this systematic review, we have summarized evidence of beneficial contributions of root and stomatal traits to plant adaptation to drought stress. Specifically, we discuss a few key genes such as, DRO1 in rice and ERECTA in Arabidopsis and rice that were identified to be the enhancers of drought tolerance via regulation of root traits and transpiration efficiency. Additionally, we highlight several transcription factor families, such as, ERF (ethylene response factors), DREB (dehydration responsive element binding), ZFP (zinc finger proteins), WRKY, and MYB that were identified to be both positive and negative regulators of drought responses in wheat, rice, maize, and/or Arabidopsis. The overall aim of this review is to provide an overview of candidate genes that have been identified as regulators of drought response in plants. The lack of a reference genome sequence for wheat and non-transgenic approaches for manipulation of gene functions in wheat in the past had impeded high-resolution interrogation of functional elements, including genes and QTLs, and their application in cultivar improvement. The recent developments in wheat genomics and reverse genetics, including the availability of a gold standard reference genome sequence and advent of genome editing technologies, are expected to aid in deciphering of the functional roles of genes and regulatory networks underlying adaptive phenological traits, and utilizing the outcomes of such studies in developing drought tolerant cultivars.
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页数:13
相关论文
共 129 条
[1]  
Ahmad I., 2017, WHEAT IMPROVEMENT MA
[2]   Altered gene expression by sedaxane increases PSII efficiency, photosynthesis and growth and improves tolerance to drought in wheat seedlings [J].
Ajigboye, Olubukola O. ;
Lu, Chungui ;
Murchie, Erik H. ;
Schlatter, Christian ;
Swart, Gina ;
Ray, Rumiana V. .
PESTICIDE BIOCHEMISTRY AND PHYSIOLOGY, 2017, 137 :49-61
[3]   Change of function of the wheat stress-responsive transcriptional repressor TaRAP2.1L by repressor motif modification [J].
Amalraj, Amritha ;
Luang, Sukanya ;
Kumar, Manoj Yadav ;
Sornaraj, Pradeep ;
Eini, Omid ;
Kovalchuk, Nataliya ;
Bazanova, Natalia ;
Li, Yuan ;
Yang, Nannan ;
Eliby, Serik ;
Langridge, Peter ;
Hrmova, Maria ;
Lopato, Sergiy .
PLANT BIOTECHNOLOGY JOURNAL, 2016, 14 (02) :820-832
[4]   Deep rooting conferred by DEEPER ROOTING 1 enhances rice yield in paddy fields [J].
Arai-Sanoh, Yumiko ;
Takai, Toshiyuki ;
Yoshinaga, Satoshi ;
Nakano, Hiroshi ;
Kojima, Mikiko ;
Sakakibara, Hitoshi ;
Kondo, Motohiko ;
Uga, Yusaku .
SCIENTIFIC REPORTS, 2014, 4
[5]   Relationships between ash content, carbon isotope discrimination and yield in durum wheat [J].
Araus, JL ;
Amaro, T ;
Casadesús, J ;
Asbati, A ;
Nachit, MM .
AUSTRALIAN JOURNAL OF PLANT PHYSIOLOGY, 1998, 25 (07) :835-842
[6]   Identification and validation of root length QTLs for water stress resistance in hexaploid wheat (Titicum aestivum L.) [J].
Ayalew, Habtamu ;
Liu, Hui ;
Yan, Guijun .
EUPHYTICA, 2017, 213 (06)
[7]  
Baloch MJ, 2013, INT J AGRIC BIOL, V15, P945
[8]  
BHAGWAT SG, 1993, PLANT BREEDING, V110, P129, DOI 10.1111/j.1439-0523.1993.tb01224.x
[9]   Is photosynthesis limited by decreased Rubisco activity and RuBP content under progressive water stress? [J].
Bota, J ;
Medrano, H ;
Flexas, J .
NEW PHYTOLOGIST, 2004, 162 (03) :671-681
[10]   Abiotic stress upregulated TaZFP34 represses the expression of type-B response regulator and SHY2 genes and enhances root to shoot ratio in wheat [J].
Chang, Hongping ;
Chen, Dandan ;
Kam, Jason ;
Richardson, Terese ;
Drenth, Janneke ;
Guo, Xinhong ;
McIntyre, C. Lynne ;
Chai, Shoucheng ;
Rae, Anne L. ;
Xue, Gang-Ping .
PLANT SCIENCE, 2016, 252 :88-102