Lang Kathrin, Erlacher Matthias, Wilson Daniel N, Micura Ronald, Polacek Norbert
Institute of Organic Chemistry, Center for Molecular Biosciences (CMBI), University of Innsbruck, Innsbruck, Austria.
Chem Biol. 2008 May;15(5):485-92. doi: 10.1016/j.chembiol.2008.03.014. Epub 2008 Apr 24.
Peptide bond formation is a fundamental reaction in biology, catalyzed by the ribosomal peptidyl-transferase ribozyme. Although all active-site 23S ribosomal RNA nucleotides are universally conserved, atomic mutagenesis suggests that these nucleobases do not carry functional groups directly involved in peptide bond formation. Instead, a single ribose 2'-hydroxyl group at A2451 was identified to be of pivotal importance. Here, we altered the chemical characteristics by replacing its 2'-hydroxyl with selected functional groups and demonstrate that hydrogen donor capability is essential for transpeptidation. We propose that the A2451-2'-hydroxyl directly hydrogen bonds to the P-site tRNA-A76 ribose. This promotes an effective A76 ribose C2'-endo conformation to support amide synthesis via a proton shuttle mechanism. Simultaneously, the direct interaction of A2451 with A76 renders the intramolecular transesterification of the peptide from the 3'- to 2'-oxygen unfeasible, thus promoting effective peptide bond synthesis.
肽键形成是生物学中的一个基本反应,由核糖体肽基转移酶核酶催化。尽管所有活性位点的23S核糖体RNA核苷酸都是普遍保守的,但原子诱变表明这些核碱基并不携带直接参与肽键形成的官能团。相反,已确定A2451处的单个核糖2'-羟基至关重要。在这里,我们通过用选定的官能团取代其2'-羟基来改变化学特性,并证明氢供体能力对于转肽作用至关重要。我们提出,A2451-2'-羟基直接与P位点tRNA-A76核糖形成氢键。这促进了有效的A76核糖C2'-内向构象,以通过质子穿梭机制支持酰胺合成。同时,A2451与A76的直接相互作用使得肽从3'-氧到2'-氧的分子内酯交换不可行,从而促进了有效的肽键合成。