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矮秆88,一个影响水稻植株株型的新型假定酯酶基因。

Dwarf 88, a novel putative esterase gene affecting architecture of rice plant.

作者信息

Gao Zhenyu, Qian Qian, Liu Xiaohui, Yan Meixian, Feng Qi, Dong Guojun, Liu Jian, Han Bin

机构信息

National Center for Gene Research/Institute of Plant Physiology and Ecology, Shanghai Institutes for Biological Sciences, Chinese Academy of Sciences, 200233 Shanghai, China.

出版信息

Plant Mol Biol. 2009 Oct;71(3):265-76. doi: 10.1007/s11103-009-9522-x. Epub 2009 Jul 15.

Abstract

Rice architecture is an important agronomic trait that affects grain yield. We characterized a tillering dwarf mutant d88 derived from Oryza sativa ssp. japonica cultivar Lansheng treated with EMS. The mutant had excessive shorter tillers and smaller panicles and seeds compared to the wild-type. A reduction in number and size of parenchyma cells around stem marrow cavity as well as a delay in the elongation of parenchyma cells caused slender tillers and dwarfism in the d88 mutant. The D88 gene was isolated via map-based cloning and identified to encode a putative esterase. The gene was expressed in most rice organs, with especially high levels in the vascular tissues. The mutant carried a nucleotide substitution in the first exon of the gene that led to the substitution of arginine for glycine, which presumably disrupted the functionally conserved N-myristoylation domain of the protein. The function of the gene was confirmed by complementation test and antisense analysis. D88, thus, represents a new category of genes that regulates cell growth and organ development and consequently plant architecture. The potential relationship between the tiller formation associated genes and D88 is discussed and future identification of the substrate for D88 may lead to the characterization of new pathways regulating plant development.

摘要

水稻株型是影响粮食产量的重要农艺性状。我们对一个分蘖矮化突变体d88进行了表征,该突变体源自用甲基磺酸乙酯(EMS)处理的粳稻品种兰胜。与野生型相比,该突变体具有过多的短分蘖以及更小的稻穗和种子。茎髓腔周围薄壁细胞数量和大小的减少以及薄壁细胞伸长的延迟导致了d88突变体的分蘖细长和矮化。通过图位克隆分离出D88基因,并鉴定其编码一种假定的酯酶。该基因在大多数水稻器官中表达,在维管组织中表达水平尤其高。该突变体在该基因的第一个外显子中发生了核苷酸替换,导致精氨酸取代了甘氨酸,这可能破坏了该蛋白质功能保守的N-肉豆蔻酰化结构域。通过互补试验和反义分析证实了该基因的功能。因此,D88代表了一类新的基因,这类基因调节细胞生长和器官发育,进而调节植物株型。讨论了与分蘖形成相关的基因与D88之间的潜在关系,未来对D88底物的鉴定可能会导致对调节植物发育的新途径的表征。

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