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细胞周期蛋白依赖性激酶CRK9是锥虫前体mRNA剪接前导序列反式剪接所必需的,它与一种新的L型细胞周期蛋白和一种动质体特异性蛋白形成复合物发挥作用。

Cyclin-Dependent Kinase CRK9, Required for Spliced Leader trans Splicing of Pre-mRNA in Trypanosomes, Functions in a Complex with a New L-Type Cyclin and a Kinetoplastid-Specific Protein.

作者信息

Badjatia Nitika, Park Sung Hee, Ambrósio Daniela L, Kirkham Justin K, Günzl Arthur

机构信息

Department of Genetics and Genome Sciences, University of Connecticut Health Center, Farmington, Connecticut, United States of America.

出版信息

PLoS Pathog. 2016 Mar 8;12(3):e1005498. doi: 10.1371/journal.ppat.1005498. eCollection 2016 Mar.

Abstract

In eukaryotes, cyclin-dependent kinases (CDKs) control the cell cycle and critical steps in gene expression. The lethal parasite Trypanosoma brucei, member of the phylogenetic order Kinetoplastida, possesses eleven CDKs which, due to high sequence divergence, were generically termed CDC2-related kinases (CRKs). While several CRKs have been implied in the cell cycle, CRK9 was the first trypanosome CDK shown to control the unusual mode of gene expression found in kinetoplastids. In these organisms, protein-coding genes are arranged in tandem arrays which are transcribed polycistronically. Individual mRNAs are processed from precursor RNA by spliced leader (SL) trans splicing and polyadenylation. CRK9 ablation was lethal in cultured trypanosomes, causing a block of trans splicing before the first transesterification step. Additionally, CRK9 silencing led to dephosphorylation of RNA polymerase II and to hypomethylation of the SL cap structure. Here, we tandem affinity-purified CRK9 and, among potential CRK9 substrates and modifying enzymes, discovered an unusual tripartite complex comprising CRK9, a new L-type cyclin (CYC12) and a protein, termed CRK9-associated protein (CRK9AP), that is only conserved among kinetoplastids. Silencing of either CYC12 or CRK9AP reproduced the effects of depleting CRK9, identifying these proteins as functional partners of CRK9 in vivo. While mammalian cyclin L binds to CDK11, the CRK9 complex deviates substantially from that of CDK11, requiring CRK9AP for efficient CRK9 complex formation and autophosphorylation in vitro. Interference with this unusual CDK rescued mice from lethal trypanosome infections, validating CRK9 as a potential chemotherapeutic target.

摘要

在真核生物中,细胞周期蛋白依赖性激酶(CDK)控制细胞周期和基因表达的关键步骤。致死性寄生虫布氏锥虫是动基体目系统发育中的成员,拥有11种CDK,由于其高度的序列差异,被统称为CDC2相关激酶(CRK)。虽然几种CRK已被认为参与细胞周期,但CRK9是首个被证明可控制动基体中发现的异常基因表达模式的锥虫CDK。在这些生物体中,蛋白质编码基因排列成串联阵列,进行多顺反子转录。单个mRNA通过剪接前导序列(SL)反式剪接和聚腺苷酸化从前体RNA加工而来。在培养的锥虫中,CRK9缺失是致死性的,导致在第一次转酯反应步骤之前反式剪接受阻。此外,CRK9沉默导致RNA聚合酶II去磷酸化以及SL帽结构低甲基化。在此,我们通过串联亲和纯化法纯化了CRK9,并在潜在的CRK9底物和修饰酶中发现了一种不寻常的三方复合物,该复合物由CRK9、一种新的L型细胞周期蛋白(CYC12)和一种仅在动基体中保守的蛋白质CRK9相关蛋白(CRK9AP)组成。CYC12或CRK9AP的沉默重现了CRK9缺失的效应,确定这些蛋白质在体内是CRK9的功能伙伴。虽然哺乳动物细胞周期蛋白L与CDK11结合,但CRK9复合物与CDK11复合物有很大差异,在体外需要CRK9AP才能有效形成CRK9复合物和进行自磷酸化。干扰这种异常的CDK可使小鼠免受致死性锥虫感染,证实CRK9是一个潜在的化疗靶点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/972a/4783070/38659ecc3d55/ppat.1005498.g001.jpg

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