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水稻不定根的形成需要OsGNOM1,并由OsPINs家族介导。

Adventitious root formation in rice requires OsGNOM1 and is mediated by the OsPINs family.

作者信息

Liu Shiping, Wang Jirong, Wang Lu, Wang Xiaofei, Xue Yanhong, Wu Ping, Shou Huixia

机构信息

State Key Laboratory of Plant Physiology and Biochemistry, College of Life Science, Zhejiang University, Hangzhou 310058, China.

出版信息

Cell Res. 2009 Sep;19(9):1110-9. doi: 10.1038/cr.2009.70. Epub 2009 Jun 23.

Abstract

The fibrous root system in cereals comprises primarily adventitious roots (ARs), which play important roles in nutrient and water uptake. Current knowledge regarding the molecular mechanism underlying AR development is still limited. We report here the isolation of four rice (Oryza sativa L.) mutants, from different genetic backgrounds, all of which were defective in AR formation. These mutants exhibited reduced numbers of lateral roots (LRs) and partial loss of gravitropism. The mutants also displayed enhanced sensitivity to N-1-naphthylphthalamic acid, an inhibitor of polar auxin transport (PAT), indicating that the mutations affected auxin transport. Positional cloning using one of the four mutants revealed that it was caused by loss-of-function of a guanine nucleotide exchange factor for ADP-ribosylation factor (OsGNOM1). RT-PCR and analysis of promoter::GUS transgenic plants showed that OsGNOM1 is expressed in AR primordia, vascular tissues, LRs, root tips, leaves, anthers and lemma veins, with a distribution pattern similar to that of auxin. In addition, the expressions of OsPIN2, OsPIN5b and OsPIN9 were altered in the mutants. Taken together, these findings indicate that OsGNOM1 affects the formation of ARs through regulating PAT.

摘要

谷类作物的须根系主要由不定根组成,不定根在养分和水分吸收中发挥着重要作用。目前关于不定根发育分子机制的认识仍然有限。我们在此报告从不同遗传背景中分离出的四个水稻(Oryza sativa L.)突变体,它们在不定根形成方面均存在缺陷。这些突变体的侧根数量减少,并且部分丧失了向地性。突变体对极性生长素运输(PAT)抑制剂N-1-萘基邻苯二甲酸也表现出增强的敏感性,这表明这些突变影响了生长素运输。利用这四个突变体之一进行的定位克隆表明,它是由ADP-核糖基化因子的鸟嘌呤核苷酸交换因子(OsGNOM1)功能丧失引起的。RT-PCR和启动子::GUS转基因植物分析表明,OsGNOM1在不定根原基、维管组织、侧根、根尖、叶片、花药和稃叶脉中表达,其分布模式与生长素相似。此外,突变体中OsPIN2、OsPIN5b和OsPIN9的表达发生了改变。综上所述,这些发现表明OsGNOM1通过调节PAT影响不定根的形成。

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