Boyce Thompson Institute for Plant Research, Ithaca, New York 14850, USA and Hawkesbury Institute for the Environment, University of Western Sydney, Richmond 2753, Australia.
Nucleic Acids Res. 2013 Oct;41(19):9141-51. doi: 10.1093/nar/gkt640. Epub 2013 Aug 6.
Nucleus-encoded ribonucleases and RNA-binding proteins influence chloroplast gene expression through their roles in RNA maturation and stability. One mechanism for mRNA 5' end maturation posits that sequence-specific pentatricopeptide repeat (PPR) proteins define termini by blocking the 5'→3' exonucleolytic activity of ribonuclease J (RNase J). To test this hypothesis in vivo, virus-induced gene silencing was used to reduce the expression of three PPR proteins and RNase J, both individually and jointly, in Nicotiana benthamiana. In accordance with the stability-conferring function of the PPR proteins PPR10, HCF152 and MRL1, accumulation of the cognate RNA species atpH, petB and rbcL was reduced when the PPR-encoding genes were silenced. In contrast, RNase J reduction alone or combined with PPR deficiency resulted in reduced abundance of polycistronic precursor transcripts and mature counterparts, which were replaced by intermediately sized species with heterogeneous 5' ends. We conclude that RNase J deficiency can partially mask the absence of PPR proteins, and that RNase J is capable of processing chloroplast mRNAs up to PPR protein-binding sites. These findings support the hypothesis that RNase J is the major ribonuclease responsible for maturing chloroplast mRNA 5' termini, with RNA-binding proteins acting as barriers to its activity.
核编码核糖核酸酶和 RNA 结合蛋白通过其在 RNA 成熟和稳定性中的作用影响叶绿体基因表达。一种 mRNA 5'端成熟的机制假设,序列特异性五肽重复(PPR)蛋白通过阻止核糖核酸酶 J(RNase J)的 5'→3'外切核酸酶活性来定义末端。为了在体内验证这一假设,利用病毒诱导的基因沉默分别和联合降低了拟南芥中三个 PPR 蛋白和 RNase J 的表达。与 PPR 蛋白 PPR10、HCF152 和 MRL1 的稳定性赋予功能一致,当沉默 PPR 编码基因时,atpH、petB 和 rbcL 的同源 RNA 物种的积累减少。相比之下,单独降低 RNase J 或与 PPR 缺乏相结合会导致多顺反子前体转录物和成熟对应物的丰度降低,这些转录物被具有异质 5'末端的中等大小的物种所取代。我们得出结论,RNase J 缺乏可以部分掩盖 PPR 蛋白的缺失,并且 RNase J 能够加工叶绿体 mRNA 直至 PPR 蛋白结合位点。这些发现支持了这样一种假设,即 RNase J 是负责成熟叶绿体 mRNA 5'末端的主要核糖核酸酶,RNA 结合蛋白作为其活性的障碍。