首页> 美国卫生研究院文献>G3: GenesGenomesGenetics >A Mitochondrial Transcription Termination Factor ZmSmk3 Is Required for nad1 Intron4 and nad4 Intron1 Splicing and Kernel Development in Maize
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A Mitochondrial Transcription Termination Factor ZmSmk3 Is Required for nad1 Intron4 and nad4 Intron1 Splicing and Kernel Development in Maize

机译:玉米中nad1 Intron4和nad4 Intron1剪接和内核发育需要线粒体转录终止因子ZmSmk3。

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摘要

The expression systems of the mitochondrial genes are derived from their bacterial ancestors, but have evolved many new features in their eukaryotic hosts. Mitochondrial RNA splicing is a complex process regulated by families of nucleus-encoded RNA-binding proteins, few of which have been characterized in maize (Zea mays L.). Here, we identified the Zea mays small kernel 3 (Zmsmk3) candidate gene, which encodes a mitochondrial transcription termination factor (mTERF) containing two mTERF motifs, which is conserved in monocotyledon; and the target introns were also quite conserved during evolution between monocotyledons and dicotyledons. The mutations of Zmsmk3 led to arrested embryo and endosperm development, resulting in small kernels. A transcriptome of 12 days after pollination endosperm analysis revealed that the starch biosynthetic pathway and the zein gene family were down-regulated in the Zmsmk3 mutant kernels. ZmSMK3 is localized in mitochondria. The reduced expression of ZmSmk3 in the mutant resulted in the splicing deficiency of mitochondrial nad4 intron1 and nad1 intron4, causing a reduction in complex I assembly and activity, impairing mitochondria structure and activating the alternative respiratory pathway. So, the results suggest that ZmSMK3 is required for the splicing of nad4 intron 1 and nad1 intron 4, complex I assembly and kernel development in maize.
机译:线粒体基因的表达系统源自其细菌祖先,但在其真核宿主中已进化出许多新特征。线粒体RNA剪接是一个复杂的过程,受核编码的RNA结合蛋白家族调控,玉米中很少有这种特征(Zea mays L.)。在这里,我们确定了玉米小核仁3(Zmsmk3)候选基因,该基因编码包含两个mTERF模体的线粒体转录终止因子(mTERF),单子叶植物中保守该基因。在单子叶植物和双子叶植物之间的进化过程中,目标内含子也非常保守。 Zmsmk3的突变导致胚胎和胚乳发育停滞,导致小粒。授粉胚乳分析后12天的转录组显示,Zmsmk3突变体仁中淀粉的生物合成途径和玉米醇溶蛋白基因家族被下调。 ZmSMK3位于线粒体中。 ZmSmk3在突变体中表达的减少导致线粒体nad4 intron1和nad1 intron4的剪接缺失,从而导致复杂的I装配和活性降低,线粒体结构受损并激活了其他呼吸途径。因此,结果表明,玉米中nad4内含子1和nad1内含子4的剪接需要ZmSMK3。

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