By Gurdev S. Khush, K.K. Jena (auth.), Guo-Liang Wang, Barbara Valent (eds.)
Rice blast, attributable to the fungal pathogen Magnaporthe grisea, is likely one of the so much damaging rice illnesses around the globe and destroys sufficient rice to feed greater than 60 million humans each year. as a result of excessive variability of the fungal inhabitants within the box, common lack of resistance of newly-released rice cultivars is a massive restraint in sustainable rice construction. within the previous couple of years, major development has been made in figuring out the protection mechanism of rice and pathogenicity of the fungus. The rice blast approach has develop into a version pathosystem for figuring out the molecular foundation of plant-fungal interactions as a result of the availability of either genomes of rice and M. grisea and a wide choice of genetic assets. This ebook offers a whole overview of the hot development and achievements on genetic, genomic and disorder regulate of the disorder. many of the chapters have been provided on the 4th overseas Rice Blast convention hung on October 9-14, 2007 in Changsha, China. This ebook is a useful reference not just for plant pathologists and breeders engaged on rice blast but in addition for these engaged on different pathysystems in crop plants.
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Additional resources for Advances in genetics, genomics and control of rice blast disease
Cv Yunxi 2; 49–55. In Proc General Meeting Rice Blast in China, Kunming Yu, Z. , Mackill, D. , Bonman, J. , & Tanksley, S. D. (1991). Tagging genes for blast resistance in rice via linkage to RFLP markers. Theor Appl Genet 81, 471–476 Yu, Z. , Mackill, D. , Bonman, J. , McCouch, S. , Notteghem, J. , & Tanksley, S. D. (1996). Molecular mapping of genes for resistance to rice blast (Pyricularia grisea). , & Wang, G. L. (2006). The eight amino-acid difference within three leucine-rich repeats between Pi2 and Pizt resistance proteins determine the resistance specificity to Magnaporthe grisea.
Valent, B. (2007) Roles for rice membrane dynamics and plasmodesmata during biotrophic invasion by the blast fungus. Plant Cell, 19(2) 706–724. A. (2005) Novel G-protein-coupled receptorlike proteins in the plant pathogenic fungus Magnaporthe oryzae. Genome Biol, 6(3) R24. R. (2004) Two PAK kinase genes, CHM1 and MST20, have distinct functions in Magnaporthe oryzae. Mol Plant-Microbe Interact, 17(5) 547–556. I. (2007) Rgs1 regulates multiple G alpha subunits in Magnaporthe pathogenesis, asexual growth and thigmotropism.
In M. oryzae, MST20 (the STE20 homolog) is dispensable for PMK1 activation or appressorium formation. , 2004). CHM1, a homolog of yeast CLA4, is the only other PAK kinase gene in M. oryzae. It is also dispensable for appressorium formation. The chm1 mutant has pleiotropic defects in growth, conidiation, and plant infection. Although it still forms appressoria, the chm1 mutant is defective in plant penetration. It is likely that neither MST20 nor CHM1 is essential for the activation of the Mst11-Mst7-Pmk1 cascade and appressorium formation, although the latter may be involved in various developmental and plant infection processes in M.
Advances in genetics, genomics and control of rice blast disease by Gurdev S. Khush, K.K. Jena (auth.), Guo-Liang Wang, Barbara Valent (eds.)