Chizzolini Fabio, Kent Alexandra D, Passalacqua Luiz F M, Lupták Andrej
Department of Pharmaceutical Sciences, University of California at Irvine, Irvine, CA, 92617, USA.
Department of Chemistry, University of California at Irvine, Irvine, CA, 92617, USA.
Chembiochem. 2021 Jun 15;22(12):2098-2101. doi: 10.1002/cbic.202100085. Epub 2021 Apr 22.
A mechanism of nucleoside triphosphorylation would have been critical in an evolving "RNA world" to provide high-energy substrates for reactions such as RNA polymerization. However, synthetic approaches to produce ribonucleoside triphosphates (rNTPs) have suffered from conditions such as high temperatures or high pH that lead to increased RNA degradation, as well as substrate production that cannot sustain replication. Previous reports have demonstrated that cyclic trimetaphosphate (cTmp) can react with nucleosides to form rNTPs under prebiotically-relevant conditions, but their reaction rates were unknown and the influence of reaction conditions not well-characterized. Here we established a sensitive assay that allowed for the determination of second-order rate constants for all four rNTPs, ranging from 1.7×10 to 6.5×10 M s . The ATP reaction shows a linear dependence on pH and Mg , and an enthalpy of activation of 88±4 kJ/mol. At millimolar nucleoside and cTmp concentrations, the rNTP production rate is sufficient to facilitate RNA synthesis by both T7 RNA polymerase and a polymerase ribozyme. We suggest that the optimized reaction of cTmp with nucleosides may provide a viable connection between prebiotic nucleotide synthesis and RNA replication.
在不断演化的“RNA世界”中,核苷三磷酸化机制对于为诸如RNA聚合等反应提供高能底物至关重要。然而,合成核糖核苷三磷酸(rNTPs)的方法一直受到高温或高pH等条件的影响,这些条件会导致RNA降解增加,以及底物产量无法维持复制。先前的报道表明,环状三偏磷酸(cTmp)可以在与生命起源相关的条件下与核苷反应形成rNTPs,但它们的反应速率未知,且反应条件的影响尚未得到充分表征。在这里,我们建立了一种灵敏的测定方法,可用于测定所有四种rNTPs的二级速率常数,范围为1.7×10至6.5×10 M⁻¹ s⁻¹。ATP反应对pH和Mg²⁺呈线性依赖,活化焓为88±4 kJ/mol。在毫摩尔浓度的核苷和cTmp浓度下,rNTP的产生速率足以促进T7 RNA聚合酶和聚合酶核酶的RNA合成。我们认为,cTmp与核苷的优化反应可能为生命起源前的核苷酸合成与RNA复制之间提供一个可行的联系。