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酵母剪接体催化激活步骤的进化保守核心设计。

The evolutionarily conserved core design of the catalytic activation step of the yeast spliceosome.

作者信息

Fabrizio Patrizia, Dannenberg Julia, Dube Prakash, Kastner Berthold, Stark Holger, Urlaub Henning, Lührmann Reinhard

机构信息

Department of Cellular Biochemistry, Max Planck Institute for Biophysical Chemistry, Göttingen, Germany.

出版信息

Mol Cell. 2009 Nov 25;36(4):593-608. doi: 10.1016/j.molcel.2009.09.040.

Abstract

Metazoan spliceosomes exhibit an elaborate protein composition required for canonical and alternative splicing. Thus, the minimal set of proteins essential for activation and catalysis remains elusive. We therefore purified in vitro assembled, precatalytic spliceosomal complex B, activated B(act), and step 1 complex C from the simple eukaryote Saccharomyces cerevisiae. Mass spectrometry revealed that yeast spliceosomes contain fewer proteins than metazoans and that each functional stage is very homogeneous. Dramatic compositional changes convert B to B(act), which is composed of approximately 40 evolutionarily conserved proteins that organize the catalytic core. Additional remodeling occurs concomitant with step 1, during which nine proteins are recruited to form complex C. The moderate number of proteins recruited to complex C will allow investigations of the chemical reactions in a fully defined system. Electron microscopy reveals high-quality images of yeast spliceosomes at defined functional stages, indicating that they are well-suited for three-dimensional structure analyses.

摘要

后生动物剪接体展现出规范剪接和可变剪接所需的复杂蛋白质组成。因此,激活和催化所必需的最小蛋白质组仍然难以捉摸。我们从简单真核生物酿酒酵母中纯化了体外组装的预催化剪接体复合物B、激活的B(act)和第一步复合物C。质谱分析表明,酵母剪接体所含蛋白质比后生动物少,且每个功能阶段都非常均一。显著的组成变化将B转化为B(act),B(act)由约40种进化保守的蛋白质组成,这些蛋白质构成了催化核心。第一步反应伴随有额外的重塑过程,在此期间会招募9种蛋白质形成复合物C。招募到复合物C的蛋白质数量适中,这将有助于在一个完全明确的系统中研究化学反应。电子显微镜揭示了处于特定功能阶段的酵母剪接体的高质量图像,表明它们非常适合进行三维结构分析。

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