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酵母 aI5beta 组 I 内含子的剪接需要 SUV3 通过线粒体降解体促进切除内含子核糖核蛋白(RNP)的降解来回收 MRS1。

Splicing of yeast aI5beta group I intron requires SUV3 to recycle MRS1 via mitochondrial degradosome-promoted decay of excised intron ribonucleoprotein (RNP).

机构信息

Center for RNA Molecular Biology, School of Medicine, Case Western Reserve University, Cleveland, Ohio 44106, USA.

出版信息

J Biol Chem. 2010 Mar 19;285(12):8585-94. doi: 10.1074/jbc.M109.090761. Epub 2010 Jan 11.

Abstract

Yeast Suv3p is a member of the DEXH/D box family of RNA helicases and is a critical component of the mitochondrial degradosome, which also includes a 3' --> 5' exonuclease, Dss1p. Defects in the degradosome result in accumulation of aberrant transcripts, unprocessed transcripts, and excised group I introns. In addition, defects in SUV3 result in decreased splicing of the aI5beta and bI3 group I introns. Whereas a role for Suv3p in RNA degradation is well established, the function of Suv3p in splicing of group I introns has remained elusive. It has been particularly challenging to determine if Suv3p effects group I intron splicing through RNA degradation as part of the degradosome, or has a direct role in splicing as a chaperone, because nearly all perturbations of SUV3 or DSS1 result in loss of the mitochondrial genome. Here we utilized the suv3-1 allele, which is defective in RNA metabolism and yet maintains a stable mitochondrial genome, to investigate the role of Suv3p in splicing of the aI5beta group I intron. We provide genetic evidence that Mrs1p is a limiting cofactor for aI5beta splicing, and this evidence also suggests that Suv3p activity is required to recycle the excised aI5beta ribonucleoprotein. We also show that Suv3p acts indirectly as a component of the degradosome to promote aI5beta splicing. We present a model whereby defects in Suv3p result in accumulation of stable, excised group I intron ribonucleoproteins, which result in sequestration of Mrs1p, and a concomitant reduction in splicing of aI5beta.

摘要

酵母 Suv3p 是 DEXH/D 盒 RNA 解旋酶家族的成员,是线粒体降解体的关键组成部分,该降解体还包括 3' --> 5' 外切核酸酶 Dss1p。降解体缺陷会导致异常转录本、未加工转录本和切除的 I 组内含子的积累。此外,SUV3 的缺陷会导致 aI5beta 和 bI3 I 组内含子的剪接减少。虽然 Suv3p 在 RNA 降解中的作用已得到充分证实,但 Suv3p 在 I 组内含子剪接中的作用仍然难以捉摸。确定 Suv3p 是否通过降解体中的 RNA 降解来影响 I 组内含子剪接,或者作为伴侣蛋白直接参与剪接,一直具有挑战性,因为几乎所有 SUV3 或 DSS1 的扰动都会导致线粒体基因组的丢失。在这里,我们利用了在 RNA 代谢中存在缺陷但仍保持稳定线粒体基因组的 suv3-1 等位基因,来研究 Suv3p 在 aI5beta I 组内含子剪接中的作用。我们提供了遗传证据,表明 Mrs1p 是 aI5beta 剪接的限制辅助因子,并且该证据还表明,Suv3p 活性是回收切除的 aI5beta 核糖核蛋白所必需的。我们还表明,Suv3p 作为降解体的组成部分间接起作用,以促进 aI5beta 剪接。我们提出了一个模型,其中 Suv3p 的缺陷导致稳定的、切除的 I 组内含子核糖核蛋白的积累,这导致 Mrs1p 的隔离,以及 aI5beta 剪接的相应减少。

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