Muth G W, Chen L, Kosek A B, Strobel S A
Department of Molecular Biophysics and Biochemistry, Yale University, New Haven, Connecticut 06520-8114, USA.
RNA. 2001 Oct;7(10):1403-15.
A universally conserved adenosine, A2451, within the ribosomal peptidyl transferase center has been proposed to act as a general acid-base catalyst during peptide bond formation. Evidence in support of this proposal came from pH-dependent dimethylsulfate (DMS) modification within Escherichia coli ribosomes. A2451 displayed reactivity consistent with an apparent acidity constant (pKa) near neutrality, though pH-dependent structural flexibility could not be rigorously excluded as an explanation for the enhanced reactivity at high pH. Here we present three independent lines of evidence in support of the alternative interpretation. First, A2451 in ribosomes from the archaebacteria Haloarcula marismortui displays an inverted pH profile that is inconsistent with proton-mediated base protection. Second, in ribosomes from the yeast Saccharomyces cerevisiae, C2452 rather than A2451 is modified in a pH-dependent manner. Third, within E. coli ribosomes, the position of A2451 modification (N1 or N3 imino group) was analyzed by testing for a Dimroth rearrangement of the N1-methylated base. The data are more consistent with DMS modification of the A2451 N1, a functional group that, according to the 50S ribosomal crystal structure, is solvent inaccessible without structural rearrangement. It therefore appears that pH-dependent DMS modification of A2451 does not provide evidence either for or against a general acid-base mechanism of protein synthesis. Instead the data suggest that there is pH-dependent conformational flexibility within the peptidyl transferase center, the exact nature and physiological relevance of which is not known.
核糖体肽基转移酶中心内一个普遍保守的腺苷A2451,被认为在肽键形成过程中充当一般酸碱催化剂。支持这一观点的证据来自大肠杆菌核糖体中pH依赖的硫酸二甲酯(DMS)修饰。A2451的反应性与接近中性的表观酸度常数(pKa)一致,不过pH依赖的结构灵活性作为高pH下反应性增强的一种解释不能被严格排除。在此我们提供三条独立的证据支持另一种解释。第一,嗜盐嗜碱菌盐沼盐杆菌核糖体中的A2451呈现出与质子介导的碱基保护不一致的反向pH谱。第二,在酿酒酵母核糖体中,以pH依赖的方式被修饰的是C2452而非A2451。第三,在大肠杆菌核糖体中,通过检测N1-甲基化碱基的迪姆罗思重排来分析A2451修饰的位置(N1或N3亚氨基)。数据与A2451的N1的DMS修饰更一致,根据50S核糖体晶体结构,该官能团在没有结构重排的情况下是溶剂不可及的。因此,A2451的pH依赖的DMS修饰似乎既不支持也不反对蛋白质合成的一般酸碱机制。相反,数据表明肽基转移酶中心内存在pH依赖的构象灵活性,其确切性质和生理相关性尚不清楚。