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Structure-activity relationships in Kluyveromyces lactis gamma-toxin, a eukaryal tRNA anticodon nuclease.

机译:乳酸克鲁维酵母γ-毒素,一种真核tRNA抗密码子核酸酶中的构效关系。

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tRNA anticodon damage inflicted by secreted ribotoxins such as Kluyveromyces lactis gamma-toxin and bacterial colicins underlies a rudimentary innate immune system that distinguishes self from nonself species. The intracellular expression of gamma-toxin (a 232-amino acid polypeptide) arrests the growth of Saccharomyces cerevisiae by incising a single RNA phosphodiester 3' of the modified wobble base of tRNA(Glu). Fungal gamma-toxin bears no primary structure similarity to any known nuclease and has no plausible homologs in the protein database. To gain insight to gamma-toxin's mechanism, we tested the effects of alanine mutations at 62 basic, acidic, and polar amino acids on ribotoxin activity in vivo. We thereby identified 22 essential residues, including 10 lysines, seven arginines, three glutamates, one cysteine, and one histidine (His209, the only histidine present in gamma-toxin). Structure-activity relations were gleaned from the effects of 44 conservative substitutions. Recombinant tag-free gamma-toxin, a monomeric protein, incised an oligonucleotide corresponding to the anticodon stem-loop of tRNA(Glu) at a single phosphodiester 3' of the wobble uridine. The anticodon nuclease was metal independent. RNA cleavage was abolished by ribose 2'-H and 2'-F modifications of the wobble uridine. Mutating His209 to alanine, glutamine, or asparagine abolished nuclease activity. We propose that gamma-toxin catalyzes an RNase A-like transesterification reaction that relies on His209 and a second nonhistidine side chain as general acid-base catalysts.
机译:分泌的核毒素(如乳酸克鲁维酵母(Kluyveromyces lactis)γ毒素和细菌大肠菌素)造成的tRNA反密码子破坏是区分先天免疫系统的基础,该先天免疫系统将自身与非自身物种区分开来。 γ毒素(一种232个氨基酸的多肽)在细胞内的表达通过切下tRNA(Glu)修饰的摆动碱基的单个RNA磷酸二酯3'来抑制酿酒酵母的生长。真菌γ-毒素与任何已知的核酸酶没有一级结构相似性,并且在蛋白质数据库中没有任何合理的同源物。为了深入了解伽玛毒素的机制,我们测试了62个碱性,酸性和极性氨基酸的丙氨酸突变对体内核毒素活性的影响。因此,我们鉴定出22个基本残基,包括10个赖氨酸,7个精氨酸,3个谷氨酸,1个半胱氨酸和1个组氨酸(His209,γ-毒素中唯一的组氨酸)。从44个保守取代的影响中收集了构效关系。重组的无标签γ毒素(一种单体蛋白)在摆动尿苷的单个磷酸二酯3'处切出了一个对应于tRNA(Glu)反密码子茎环的寡核苷酸。反密码子核酸酶不依赖金属。摆动尿苷的核糖2'-H和2'-F修饰消除了RNA切割。将His209突变为丙氨酸,谷氨酰胺或天冬酰胺可消除核酸酶活性。我们建议伽玛毒素催化依赖于His209和第二个非组氨酸侧链作为一般酸碱催化剂的RNase A样酯交换反应。

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