Howard Hughes Medical Institute and Dept. of Molecular Biology, Center for Computational and Integrative Biology, Massachusetts General Hospital, Boston, MA, 02114, USA.
Dept. of Chemistry and Chemical Biology, Harvard University, Cambridge, MA, 02138, USA.
Angew Chem Int Ed Engl. 2019 Aug 5;58(32):10812-10819. doi: 10.1002/anie.201902050. Epub 2019 Jul 4.
The emergence of the replication of RNA oligonucleotides was a critical step in the origin of life. An important model for the study of nonenzymatic template copying, which would be a key part of any such pathway, involves the reaction of ribonucleoside-5'-phosphorimidazolides with an RNA primer/template complex. The mechanism by which the primer becomes extended by one nucleotide was assumed to be a classical in-line nucleophilic-substitution reaction in which the 3'-hydroxyl of the primer attacks the phosphate of the incoming activated monomer with displacement of the imidazole leaving group. Surprisingly, this simple model has turned out to be incorrect, and the dominant pathway has now been shown to involve the reaction of two activated nucleotides with each other to form a 5'-5'-imidazolium bridged dinucleotide intermediate. Here we review the discovery of this unexpected intermediate, and the chemical, kinetic, and structural evidence for its role in template copying chemistry.
RNA 寡核苷酸的复制的出现是生命起源的关键步骤。非酶模板复制的一个重要模型,它将是任何此类途径的关键部分,涉及核糖核苷-5'-磷酸亚氨基咪唑盐与 RNA 引物/模板复合物的反应。假设引物通过一个核苷酸延伸的机制是经典的在线亲核取代反应,其中引物的 3'-羟基攻击进入的活化单体的磷酸,取代离去的咪唑基团。令人惊讶的是,这个简单的模型被证明是不正确的,现在已经表明主要途径涉及两个活化核苷酸之间的相互反应,形成 5'-5'-亚氨基咪唑鎓桥接二核苷酸中间体。在这里,我们回顾了这个意外中间体的发现,以及其在模板复制化学中的作用的化学、动力学和结构证据。