Systems biology-based approaches toward understanding drought tolerance in food crops

被引:123
作者
Jogaiah, Sudisha [1 ,2 ]
Govind, Sharathchandra Ramsandra [3 ]
Lam-Son Phan Tran [4 ]
机构
[1] Univ Mysore, Dept Studies Biotechnol, Downy Mildew Res Lab, Mysore, Karnataka, India
[2] Yamaguchi Univ, Fac Agr, Dept Biol & Environm Sci, Lab Mol Plant Pathol, Yamaguchi 753, Japan
[3] Tumkur Univ, Dept Microbiol, Tumkur, Karnataka, India
[4] RIKEN Plant Sci Ctr, Signaling Pathway Res Unit, Yokohama, Kanagawa 2300045, Japan
关键词
Food crops; drought stress; drought tolerance; metabolic adjustment; omic technologies; regulatory networks; resequencing; resurrection plants; systems biology; PLANT CRATEROSTIGMA-PLANTAGINEUM; ABIOTIC STRESS RESPONSES; TRANSCRIPTIONAL REGULATORY NETWORKS; ACTIVATED PROTEIN-KINASE; CELL-WALL EXTENSIBILITY; ZINC-FINGER PROTEIN; ORYZA-SATIVA L; RESURRECTION PLANT; DESICCATION-TOLERANCE; ABSCISIC-ACID;
D O I
10.3109/07388551.2012.659174
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Economically important crops, such as maize, wheat, rice, barley, and other food crops are affected by even small changes in water potential at important growth stages. Developing a comprehensive understanding of host response to drought requires a global view of the complex mechanisms involved. Research on drought tolerance has generally been conducted using discipline-specific approaches. However, plant stress response is complex and interlinked to a point where discipline-specific approaches do not give a complete global analysis of all the interlinked mechanisms. Systems biology perspective is needed to understand genome-scale networks required for building long-lasting drought resistance. Network maps have been constructed by integrating multiple functional genomics data with both model plants, such as Arabidopsis thaliana, Lotus japonicus, and Medicago truncatula, and various food crops, such as rice and soybean. Useful functional genomics data have been obtained from genome-wide comparative transcriptome and proteome analyses of drought responses from different crops. This integrative approach used by many groups has led to identification of commonly regulated signaling pathways and genes following exposure to drought. Combination of functional genomics and systems biology is very useful for comparative analysis of other food crops and has the ability to develop stable food systems worldwide. In addition, studying desiccation tolerance in resurrection plants will unravel how combination of molecular genetic and metabolic processes interacts to produce a resurrection phenotype. Systems biology-based approaches have helped in understanding how these individual factors and mechanisms (biochemical, molecular, and metabolic) "interact" spatially and temporally. Signaling network maps of such interactions are needed that can be used to design better engineering strategies for improving drought tolerance of important crop species.
引用
收藏
页码:23 / 39
页数:17
相关论文
共 197 条
[1]   Rice proteomics: A move toward expanded proteome coverage to comparative and functional proteomics uncovers the mysteries of rice and plant biology [J].
Agrawal, Ganesh Kumar ;
Rakwal, Randeep .
PROTEOMICS, 2011, 11 (09) :1630-1649
[2]   Roles of enzymatic and nonenzymatic antioxidants in plants during abiotic stress [J].
Ahmad, Parvaiz ;
Jaleel, Cheruth Abdul ;
Salem, Mohamed A. ;
Nabi, Gowher ;
Sharma, Satyawati .
CRITICAL REVIEWS IN BIOTECHNOLOGY, 2010, 30 (03) :161-175
[3]   Proteome analysis of soybean roots subjected to short-term drought stress [J].
Alam, Iftekhar ;
Sharmin, Shamima Akhtar ;
Kim, Kyung-Hee ;
Yang, Jae Kyung ;
Choi, Myung Suk ;
Lee, Byung-Hyun .
PLANT AND SOIL, 2010, 333 (1-2) :491-505
[4]   Biomarker metabolites capturing the metabolite variance present in a rice plant developmental period [J].
Allwood, J. William ;
Ellis, David I. ;
Goodacre, Royston .
PHYSIOLOGIA PLANTARUM, 2008, 132 (02) :117-135
[5]   Trehalose and its applications in plant biotechnology [J].
Almeida, Andre M. ;
Cardoso, Luis A. ;
Santos, Dulce M. ;
Torne, Jose M. ;
Fevereiro, Pedro S. .
IN VITRO CELLULAR & DEVELOPMENTAL BIOLOGY-PLANT, 2007, 43 (03) :167-177
[6]  
Amudha J., 2011, Biotechnology and Molecular Biology Reviews, V6, P31
[7]   Plant physiology and proteomics reveals the leaf response to drought in alfalfa (Medicago sativa L.) [J].
Aranjuelo, Iker ;
Molero, Gemma ;
Erice, Gorka ;
Christophe Avice, Jean ;
Nogues, Salvador .
JOURNAL OF EXPERIMENTAL BOTANY, 2011, 62 (01) :111-123
[8]   Inducing drought tolerance in plants: Recent advances [J].
Ashraf, M. .
BIOTECHNOLOGY ADVANCES, 2010, 28 (01) :169-183
[9]   Molecular targets of oxidative stress [J].
Avery, Simon V. .
BIOCHEMICAL JOURNAL, 2011, 434 :201-210
[10]   NCBI GEO: archive for high-throughput functional genomic data [J].
Barrett, Tanya ;
Troup, Dennis B. ;
Wilhite, Stephen E. ;
Ledoux, Pierre ;
Rudnev, Dmitry ;
Evangelista, Carlos ;
Kim, Irene F. ;
Soboleva, Alexandra ;
Tomashevsky, Maxim ;
Marshall, Kimberly A. ;
Phillippy, Katherine H. ;
Sherman, Patti M. ;
Muertter, Rolf N. ;
Edgar, Ron .
NUCLEIC ACIDS RESEARCH, 2009, 37 :D885-D890