Transcript profiling of Zea mays roots reveals gene responses to phosphate deficiency at the plant- and species-specific levels

被引:117
作者
Calderon-Vazquez, Carlos [1 ]
Ibarra-Laclette, Enrique [1 ]
Caballero-Perez, Juan [1 ]
Herrera-Estrella, Luis [1 ]
机构
[1] Centro Invest Estudios Avanzados, Lab Nacl Genom Biodiversidad, Dept Ingn Genet Plantas, Irapuato Guanajuato 36821, Mexico
关键词
abiotic stress; maize; microarrays; phosphate; root;
D O I
10.1093/jxb/ern115
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Maize (Zea mays) is the most widely cultivated crop around the world; however, it is commonly affected by phosphate (Pi) deficiency in many regions, particularly in acid and alkaline soils of developing countries. To cope with Pi deficiency, plants have evolved a large number of developmental and biochemical adaptations; however, for maize, the underlying molecular basis of these responses is still unknown. In this work, the transcriptional response of maize roots to Pi starvation at 1, 3, 6, and 10 d after the onset of Pi deprivation was assessed. The investigation revealed a total of 1179 Pi-responsive genes, of which 820 and 363 genes were found to be either up- or down-regulated, respectively, by 2-fold or more. Pi-responsive genes were found to be involved in various metabolic, signal transduction, and developmental gene networks. A large set of transcription factors, which may be potential targets for crop breeding, was identified. In addition, gene expression profiles and changes in specific metabolites were also correlated. The results show that several dicotyledonous plant responses to Pi starvation are conserved in maize, but that some genetic responses appear to be more specific and that Pi deficiency leads to a shift in the recycling of internal Pi in maize roots. Ultimately, this work provides a more comprehensive view of Pi-responses in a model for economically important cereals and also sets a framework to produce Pi-specific maize microarrays to study the changes in global gene expression between Pi-efficient and Pi-inefficient maize genotypes.
引用
收藏
页码:2479 / 2497
页数:19
相关论文
共 77 条
[1]  
[Anonymous], GENETIC ANAL COMPLEX
[2]   Roles of glycine betaine and proline in improving plant abiotic stress resistance [J].
Ashraf, M. ;
Foolad, M. R. .
ENVIRONMENTAL AND EXPERIMENTAL BOTANY, 2007, 59 (02) :206-216
[3]   Chewing the fat:: β-oxidation in signalling and development [J].
Baker, A ;
Graham, IA ;
Holdsworth, M ;
Smith, SM ;
Theodoulou, FL .
TRENDS IN PLANT SCIENCE, 2006, 11 (03) :124-132
[4]   PHO2, microRNA399, and PHR1 define a phosphate-signaling pathway in plants [J].
Bari, Rajendra ;
Pant, Bikram Datt ;
Stitt, Mark ;
Scheible, Wolf-Ruediger .
PLANT PHYSIOLOGY, 2006, 141 (03) :988-999
[5]   PHOSPHORUS NUTRITIONAL-REQUIREMENT OF MAIZE SEEDLINGS FOR MAXIMUM YIELD [J].
BARRY, DAJ ;
MILLER, MH .
AGRONOMY JOURNAL, 1989, 81 (01) :95-99
[6]   CONTROLLING THE FALSE DISCOVERY RATE - A PRACTICAL AND POWERFUL APPROACH TO MULTIPLE TESTING [J].
BENJAMINI, Y ;
HOCHBERG, Y .
JOURNAL OF THE ROYAL STATISTICAL SOCIETY SERIES B-STATISTICAL METHODOLOGY, 1995, 57 (01) :289-300
[7]   Functional biology of plant phosphate uptake at root and mycorrhiza interfaces [J].
Bucher, Marcel .
NEW PHYTOLOGIST, 2007, 173 (01) :11-26
[8]   The TIGR plant transcript assemblies database [J].
Childs, Kevin L. ;
Hamilton, John P. ;
Zhu, Wei ;
Ly, Eugene ;
Cheung, Foo ;
Wu, Hank ;
Rabinowicz, Pablo D. ;
Town, Chris D. ;
Buell, C. Robin ;
Chan, Agnes P. .
NUCLEIC ACIDS RESEARCH, 2007, 35 :D846-D851
[9]   Lipid utilization, gluconeogenesis, and seedling growth in Arabidopsis mutants lacking the glyoxylate cycle enzyme malate synthase [J].
Cornah, JE ;
Germain, V ;
Ward, JL ;
Beale, MH ;
Smith, SM .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2004, 279 (41) :42916-42923
[10]   Phosphorus efficiency and root exudates in two contrasting tropical maize varieties [J].
Corrales, Isabel ;
Amenos, Montserrat ;
Poschenrieder, Charlotte ;
Barcelo, Juan .
JOURNAL OF PLANT NUTRITION, 2007, 30 (4-6) :887-900