The signal recognition particle (SRP) controls the transport of secretory proteins into and across lipid bilayers. SRP-like ribonucleoprotein complexes exist in all organisms, including plants. We characterized the rice SRP RNA and its primary RNA binding protein, SRP19. The secondary structure of the rice SRP RNA was similar to that found in other eukaryotes; however, as in other plant SRP RNAs, a GUUUCA hexamer sequence replaced the highly conserved GNRA-tetranucleotide loop motif at the apex of helix 8. The small domain of the rice SRP RNA was reduced considerably. Structurally, rice SRP19 lacked two small region that can be present in other SRP19 homologues. Conservative structure prediction and site-directed mutagenesis of rice and human SRP19 polypeptides indicated that binding to the SRP RNAs occurred via a loop that is present in the N-domain of both proteins. Rice SRP19 protein was able to form a stable complex with the rice SRP RNA in vitro. Furthermore, heterologous ribonucleoprotein complexes with components of the human SRP were assembled, thus confirming a high degree of structural and functional conservation between plant and mammalian SRP components.

译文

信号识别颗粒(SRP)控制分泌性蛋白质进入和穿过脂质双层的转运。 SRP样核糖核蛋白复合物存在于所有生物体中,包括植物。我们表征了水稻SRP RNA及其主要RNA结合蛋白SRP19。水稻SRP RNA的二级结构与其他真核生物相似。但是,与其他植物SRP RNA一样,GUUUCA六聚体序列取代了螺旋8顶点的高度保守的GNRA-四核苷酸环基序。水稻SRP RNA的小结构域大大减少了。在结构上,水稻SRP19缺少两个可以在其他SRP19同源物中存在的小区域。水稻和人SRP19多肽的保守结构预测和定点诱变表明与SRP RNA的结合是通过两个蛋白质N结构域中存在的环发生的。水稻SRP19蛋白能够在体外与水稻SRP RNA形成稳定的复合物。此外,组装了具有人类SRP成分的异源核糖核蛋白复合物,从而确认了植物和哺乳动物SRP成分之间的高度结构和功能保守性。

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