The archaeal Lsm protein from Pyrococcus furiosus binds co-transcriptionally to poly(U)-rich target RNAs.

IF 2.9 4区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY Biological Chemistry Pub Date : 2023-09-15 Print Date: 2023-10-26 DOI:10.1515/hsz-2023-0215
Robert Reichelt, Tamara Rothmeier, Felix Grünberger, Sarah Willkomm, Astrid Bruckmann, Winfried Hausner, Dina Grohmann
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Abstract

Posttranscriptional processes in Bacteria include the association of small regulatory RNAs (sRNA) with a target mRNA. The sRNA/mRNA annealing process is often mediated by an RNA chaperone called Hfq. The functional role of bacterial and eukaryotic Lsm proteins is partially understood, whereas knowledge about archaeal Lsm proteins is scarce. Here, we used the genetically tractable archaeal hyperthermophile Pyrococcus furiosus to identify the protein interaction partners of the archaeal Sm-like proteins (PfuSmAP1) using mass spectrometry and performed a transcriptome-wide binding site analysis of PfuSmAP1. Most of the protein interaction partners we found are part of the RNA homoeostasis network in Archaea including ribosomal proteins, the exosome, RNA-modifying enzymes, but also RNA polymerase subunits, and transcription factors. We show that PfuSmAP1 preferentially binds messenger RNAs and antisense RNAs recognizing a gapped poly(U) sequence with high affinity. Furthermore, we found that SmAP1 co-transcriptionally associates with target RNAs. Our study reveals that in contrast to bacterial Hfq, PfuSmAP1 does not affect the transcriptional activity or the pausing behaviour of archaeal RNA polymerases. We propose that PfuSmAP1 recruits antisense RNAs to target mRNAs and thereby executes its putative regulatory function on the posttranscriptional level.

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来自发热热球菌的古生菌Lsm蛋白通过共转录与多U富靶rna结合。
细菌的转录后过程包括小的调节RNA(sRNA)与靶mRNA的结合。sRNA/mRNA退火过程通常由一种名为Hfq的RNA伴侣介导。细菌和真核Lsm蛋白的功能作用已被部分了解,而对古菌Lsm蛋白知之甚少。在这里,我们使用基因可处理的古菌超嗜热Pyrocococcus furiosus,使用质谱法鉴定古菌Sm样蛋白(PfuSmAP1)的蛋白质相互作用伙伴,并对PfuSmAP1进行转录组全结合位点分析。我们发现的大多数蛋白质相互作用伙伴是古菌RNA同源性网络的一部分,包括核糖体蛋白质、外泌体、RNA修饰酶,还有RNA聚合酶亚基和转录因子。我们发现PfuSmAP1优先结合信使RNA和反义RNA,以高亲和力识别带间隙的聚(U)序列。此外,我们发现SmAP1与靶RNA共转录相关。我们的研究表明,与细菌Hfq相比,PfuSmAP1不影响古菌RNA聚合酶的转录活性或暂停行为。我们提出PfuSmAP1招募反义RNA靶向mRNA,从而在转录后水平上执行其假定的调节功能。
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来源期刊
Biological Chemistry
Biological Chemistry 生物-生化与分子生物学
CiteScore
7.20
自引率
0.00%
发文量
63
审稿时长
4-8 weeks
期刊介绍: Biological Chemistry keeps you up-to-date with all new developments in the molecular life sciences. In addition to original research reports, authoritative reviews written by leading researchers in the field keep you informed about the latest advances in the molecular life sciences. Rapid, yet rigorous reviewing ensures fast access to recent research results of exceptional significance in the biological sciences. Papers are published in a "Just Accepted" format within approx.72 hours of acceptance.
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