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首页> 外文期刊>Molecular biology of the cell >Gemin3 Is an Essential Gene Required for Larval Motor Function and Pupation in Drosophila
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Gemin3 Is an Essential Gene Required for Larval Motor Function and Pupation in Drosophila

机译:Gemin3是果蝇幼虫运动功能和化脓所需的必需基因。

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The assembly of metazoan Sm-class small nuclear ribonucleoproteins (snRNPs) is an elaborate, step-wise process that takes place in multiple subcellular compartments. The initial steps, including formation of the core RNP, are mediated by the survival motor neuron (SMN) protein complex. Loss-of-function mutations in human SMN1 result in a neuromuscular disease called spinal muscular atrophy. The SMN complex is comprised of SMN and a number of tightly associated proteins, collectively called Gemins. In this report, we identify and characterize the fruitfly ortholog of the DEAD box protein, Gemin3. Drosophila Gemin3 (dGem3) colocalizes and interacts with dSMN in vitro and in vivo. RNA interference for dGem3 codepletes dSMN and inhibits efficient Sm core assembly in vitro. Transposon insertion mutations in Gemin3 are larval lethals and also codeplete dSMN. Transgenic overexpression of dGem3 rescues lethality, but overexpression of dSMN does not, indicating that loss of dSMN is not the primary cause of death. Gemin3 mutant larvae exhibit motor defects similar to previously characterized Smn alleles. Remarkably, appreciable numbers of Gemin3 mutants (along with one previously undescribed Smn allele) survive as larvae for several weeks without pupating. Our results demonstrate the conservation of Gemin3 protein function in metazoan snRNP assembly and reveal that loss of either Smn or Gemin3 can contribute to neuromuscular dysfunction.
机译:后生动物Sm类小核糖核糖核蛋白(snRNPs)的组装是一个复杂的分步过程,发生在多个亚细胞区室中。最初的步骤,包括核心RNP的形成,是由存活运动神经元(SMN)蛋白复合物介导的。人SMN1的功能丧失突变导致一种称为脊髓性肌萎缩症的神经肌肉疾病。 SMN复合物由SMN和许多紧密相关的蛋白质(统称为Gemins)组成。在本报告中,我们鉴定并鉴定了DEAD框蛋白Gemin3的果蝇直系同源物。果蝇Gemin3(dGem3)在体内外与dSMN共定位并相互作用。 dGem3的RNA干扰使dSMN完整化,并在体外抑制了有效的Sm核心组装。 Gemin3中的转座子插入突变是幼虫致死,也是dSMN的致死。 dGem3的转基因过表达可以挽救致死性,但dSMN的过表达不能挽救致命性,这表明dSMN的丧失不是死亡的主要原因。 Gemin3突变幼虫表现出类似于先前鉴定的Smn等位基因的运动缺陷。值得注意的是,相当数量的Gemin3突变体(连同一个以前未描述的Smn等位基因)作为幼虫存活了数周而没有化up。我们的研究结果证明了后生动物snRNP大会中Gemin3蛋白功能的保守性,并揭示了Smn或Gemin3的缺失都可能导致神经肌肉功能障碍。

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