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首页> 外文期刊>The Plant Cell >Required to maintain repression2 is a novel protein that facilitates locus-specific paramutation in maize.
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Required to maintain repression2 is a novel protein that facilitates locus-specific paramutation in maize.

机译:维持阻抑2所需要的是一种新型蛋白,可促进玉米中的基因座特异性变异。

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摘要

Meiotically heritable epigenetic changes in gene regulation known as paramutations are facilitated by poorly understood trans-homolog interactions. Mutations affecting paramutations in maize (Zea mays) identify components required for the accumulation of 24-nucleotide RNAs. Some of these components have Arabidopsis thaliana orthologs that are part of an RNA-directed DNA methylation (RdDM) pathway. It remains unclear if small RNAs actually mediate paramutations and whether the maize-specific molecules identified to date define a mechanism distinct from RdDM. Here, we identify a novel protein required for paramutation at the maize purple plant1 locus. This required to maintain repression2 (RMR2) protein represents the founding member of a plant-specific clade of predicted proteins. We show that RMR2 is required for transcriptional repression at the Pl1-Rhoades haplotype, for accumulation of 24-nucleotide RNA species, and for maintenance of a 5-methylcytosine pattern distinct from that maintained by RNA polymerase IV. Genetic tests indicate that RMR2 is not required for paramutation occurring at the red1 locus. These results distinguish the paramutation-type mechanisms operating at specific haplotypes. The RMR2 clade of proteins provides a new entry point for understanding the diversity of epigenomic control operating in higher plants.
机译:理解不足的反式-同源相互作用促进了基因调控中的减数遗传性表观遗传学变化,称为突变。影响玉米(Zea mays )玉米突变的突变鉴定出积累24个核苷酸的RNA所需的成分。其中一些成分具有拟南芥直系同源基因,它们是RNA定向DNA甲基化(RdDM)途径的一部分。尚不清楚小RNA是否真的介导突变,以及迄今确定的玉米特异性分子是否定义了不同于RdDM的机制。在这里,我们确定了玉米紫色植物1 基因座突变所需的一种新型蛋白质。维持Repression2(RMR2)蛋白质所需的这个代表了预测蛋白质的植物特异性进化枝的创始成员。我们显示RMR2是转录抑制所需的 Pl1-Rhoades 单倍型,用于积累24个核苷酸的RNA种类,以及用于维持不同于由RNA聚合酶IV维持的5-甲基胞嘧啶模式。遗传学测试表明,在 red1 位点发生突变的过程不需要RMR2。这些结果区分了以特定单倍型运行的变异型机制。 RMR2蛋白质进化枝为理解高等植物中表观基因组控制的多样性提供了新的切入点。

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