Comprehensive Expression Profiling of Rice Grain Filling-Related Genes under High Temperature Using DNA Microarray
Top Cited Papers
Open Access
- 23 March 2007
- journal article
- Published by Oxford University Press (OUP) in Plant Physiology
- Vol. 144 (1) , 258-277
- https://doi.org/10.1104/pp.107.098665
Abstract
To elucidate the effect of high temperature on grain-filling metabolism, developing rice (Oryza sativa) ‘Nipponbare’ caryopses were exposed to high temperature (33°C/28°C) or control temperature (25°C/20°C) during the milky stage. Comprehensive gene screening by a 22-K DNA microarray and differential hybridization, followed by expression analysis by semiquantitative reverse transcription-PCR, revealed that several starch synthesis-related genes, such as granule-bound starch synthase I (GBSSI) and branching enzymes, especially BEIIb, and a cytosolic pyruvate orthophosphate dikinase gene were down-regulated by high temperature, whereas those for starch-consuming α-amylases and heat shock proteins were up-regulated. Biochemical analyses of starch showed that the high temperature-ripened grains contained decreased levels of amylose and long chain-enriched amylopectin, which might be attributed to the repressed expression of GBSSI and BEIIb, respectively. SDS-PAGE and immunoblot analysis of storage proteins revealed decreased accumulation of 13-kD prolamin, which is consistent with the diminished expression of prolamin genes under elevated temperature. Ripening under high temperature resulted in the occurrence of grains with various degrees of chalky appearance and decreased weight. Among them, severely chalky grains contained amylopectin enriched particularly with long chains compared to slightly chalky grains, suggesting that such alterations of amylopectin structure might be involved in grain chalkiness. However, among high temperature-tolerant and sensitive cultivars, alterations of neither amylopectin chain-length distribution nor amylose content were correlated to the degree of grain chalkiness, but rather seemed to be correlated to grain weight decrease, implying different underlying mechanisms for the varietal difference in grain chalkiness. The possible metabolic pathways affected by high temperature and their relevance to grain chalkiness are discussed.Keywords
This publication has 41 references indexed in Scilit:
- Gene Expression of ADP-glucose Pyrophosphorylase and Starch Contents in Rice Cultured Cells are Cooperatively Regulated by Sucrose and ABAPlant and Cell Physiology, 2005
- Roles of isoamylase and ADP‐glucose pyrophosphorylase in starch granule synthesis in rice endospermThe Plant Journal, 2005
- Recent developments in understanding the regulation of starch metabolism in higher plantsJournal of Experimental Botany, 2004
- Signal Peptide-Dependent Targeting of a Riceα-Amylase and Cargo Proteins to Plastids and Extracellular Compartments of Plant CellsPlant Physiology, 2004
- Role of plant heat-shock proteins and molecular chaperones in the abiotic stress responsePublished by Elsevier ,2004
- Two different heat shock transcription factors regulate immediate early expression of stress genes in ArabidopsisMolecular Genetics and Genomics, 2003
- The Rice Mutant esp2 Greatly Accumulates the Glutelin Precursor and Deletes the Protein Disulfide IsomerasePlant Physiology, 2002
- Comparison of Waxy gene regulation in the endosperm and pollen in Oryza sativa L.Genes & Genetic Systems, 2000
- A simple and efficient method for isolating RNA from pine treesPlant Molecular Biology Reporter, 1993
- Effect of Environmental Temperature During Development of Rice Plants on Some Properties of Endosperm StarchStarch ‐ Stärke, 1984