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Guide RNA biogenesis involves a novel RNase III family endoribonuclease in Trypanosoma brucei

机译:指导RNA生物发生涉及布鲁氏锥虫中的新型RNase III家族核糖核酸内切酶

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摘要

The mitochondrial genome of kinetoplastids, including species of Trypanosoma and Leishmania, is an unprecedented DNA structure of catenated maxicircles and minicircles. Maxicircles represent the typical mitochondrial genome encoding components of the respiratory complexes and ribosomes. However, most mRNA sequences are cryptic, and their maturation requires a unique U insertion/deletion RNA editing. Minicircles encode hundreds of small guide RNAs (gRNAs) that partially anneal with unedited mRNAs and direct the extensive editing. Trypanosoma brucei gRNAs and mRNAs are transcribed as polycistronic precursors, which undergo processing preceding editing; however, the relevant nucleases are unknown. We report the identification and functional characterization of a close homolog of editing endonucleases, mRPN1 (mitochondrial RNA precursor-processing endonuclease 1), which is involved in gRNA biogenesis. Recombinant mRPN1 is a dimeric dsRNA-dependent endonuclease that requires Mg2+, a critical catalytic carboxylate, and generates 2-nucleotide 3′ overhangs. The cleavage specificity of mRPN1 is reminiscent of bacterial RNase III and thus is fundamentally distinct from editing endonucleases, which target a single scissile bond just 5′ of short duplexes. An inducible knockdown of mRPN1 in T. brucei results in loss of gRNA and accumulation of precursor transcripts (pre-gRNAs), consistent with a role of mRPN1 in processing. mRPN1 stably associates with three proteins previously identified in relatively large complexes that do not contain mRPN1, and have been linked with multiple aspects of mitochondrial RNA metabolism. One protein, TbRGG2, directly binds mRPN1 and is thought to modulate gRNA utilization by editing complexes. The proposed participation of mRPN1 in processing of polycistronic RNA and its specific protein interactions in gRNA expression are discussed.
机译:运动蛋白的线粒体基因组,包括锥虫和利什曼原虫,是连接的上环和小环的前所未有的DNA结构。上半圆形代表典型的线粒体基因组,编码呼吸复合体和核糖体的成分。但是,大多数mRNA序列是隐秘的,其成熟需要独特的U插入/缺失RNA编辑。小圆圈编码数百个小向导RNA(gRNA),它们与未编辑的mRNA部分退火并指导广泛的编辑。布氏锥虫gRNA和mRNAs被转录为多顺反子前体,在编辑前需要进行加工;但是,相关的核酸酶是未知的。我们报告鉴定和编辑内切核酸酶,mRPN1(线粒体RNA前体加工内切核酸酶1),这涉及gRNA生物发生的密切同源的功能特征。重组mRPN1是依赖于dsRNA的二聚体核酸内切酶,它需要Mg 2 + (一种关键的催化羧酸盐),并产生2个核苷酸的3'突出端。 mRPN1的切割特异性使人联想到细菌RNase III,因此与编辑内切核酸酶根本不同,后者仅靶向短双链体5'处的单个易裂键。布鲁氏杆菌中mRPN1的诱导性敲低导致gRNA的丢失和前体转录本(pre-gRNA)的积累,与mRPN1在加工中的作用一致。 mRPN1与先前在相对较大的复合物中鉴定出的三种蛋白质稳定结合,这些复合物中不含mRPN1,并且已与线粒体RNA代谢的多个方面联系在一起。一种蛋白质,TbRGG2,直接结合mRPN1,被认为可以通过编辑复合物来调节gRNA的利用。讨论了拟定的参与多顺反子RNA加工的mRPN1及其在gRNA表达中的特定蛋白质相互作用。

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