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Anticodon nuclease encoding virus-like elements in yeast

机译:酵母中编码病毒样元件的反密码子核酸酶

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A variety of yeast species are known to host systems of cytoplasmic linear dsDNA molecules that establish replication and transcription independent of the nucleus via self-encoded enzymes that are phylogenetically related to those encoded by true infective viruses. Such yeast virus-like elements (VLE) fall into two categories: autonomous VLEs encode all the essential functions for their inheritance, and additional, dependent VLEs, which may encode a toxin–antitoxin system, generally referred to as killer toxin and immunity. In the two cases studied in depth, killer toxin action relies on chitin binding and hydrophobic domains, together allowing a separate toxic subunit to sneak into the target cell. Mechanistically, the latter sabotages codon–anticodon interaction by endonucleolytic cleavage of specific tRNAs 3′ of the wobble nucleotide. This primary action provokes a number of downstream effects, including DNA damage accumulation, which contribute to the cell-killing efficiency and highlight the importance of proper transcript decoding capacity for other cellular processes than translation itself. Since wobble uridine modifications are crucial for efficient anticodon nuclease (ACNase) action of yeast killer toxins, the latter are valuable tools for the characterization of a surprisingly complex network regulating the addition of wobble base modifications in tRNA.
机译:已知多种酵母可以容纳细胞质线性dsDNA分子系统,这些系统通过自身编码的酶来建立独立于细胞核的复制和转录,这些酶在系统发育上与真正的感染性病毒所编码的酶相关。此类酵母病毒样元件(VLE)分为两类:自主VLE编码其继承的所有基本功能,以及其他依赖的VLE,它们可能编码毒素-抗毒素系统,通常称为杀手毒素和免疫力。在深入研究的两个案例中,杀伤毒素的作用依赖于几丁质结合和疏水域,一起使单独的毒性亚基潜入靶细胞。从机理上讲,后一种通过摆动核苷酸特异性tRNA 3'的内切核酸酶破坏密码子-反密码子相互作用。该主要作用引起了许多下游效应,包括DNA损伤积累,这些效应有助于细胞杀灭效率,并突出了适当的转录本解码能力对翻译本身以外的其他细胞过程的重要性。由于摆动的尿苷修饰对于酵母杀手毒素的有效反密码子核酸酶(ACNase)作用至关重要,因此后者是表征调控tRNA中摆动碱基修饰的惊人复杂网络的有价值的工具。

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