Kawamura Kunio, Lambert Jean-François, Ter-Ovanessian Louis M P, Vergne Jacques, Hervé Guy, Maurel Marie-Christine
Department of Human Environmental Studies, Hiroshima Shudo University, 1-1-1 Ozuka-higashi, Asaminami-ku, Hiroshima 731-3195, Japan.
Laboratoire de Réactivité de Surface-CNRS UMR 7197, Campus Pierre et Marie Curie, Sorbonne Université, 7 Quai Saint-Bernard, 75005 Paris, France.
Life (Basel). 2022 Oct 24;12(11):1689. doi: 10.3390/life12111689.
The role of minerals in the chemical evolution of RNA molecules is an important issue when considering the early stage of the Hadean Earth. In particular, the interaction between functional ribozymes and ancient minerals under simulated primitive conditions is a recent research focus. We are currently attempting to design a primitive RNA metabolic network which would function with minerals, and believe that the simulated chemical network of RNA molecules would be useful for evaluation of the chemical evolution from a simple RNA mixture to an RNA-based life-like system. First, we measured the binding interactions of oligonucleotides with four types of minerals; Aerosil silica, zirconium silicate, sepiolite, and montmorillonite. Oligonucleotides bound zirconium silicate and montmorillonite in the presence of MgCl, and bound sepiolite both in the presence and absence of MgCl, but they did not bind Aerosil. Based on the binding behavior, we attempted the self-cleavage reaction of the hammerhead ribozyme from an avocado viroid. This reaction was strongly inhibited by zirconium silicate, a compound regarded as mineral evidence for the existence of water. The present study suggests that the chemical evolution of functional RNA molecules requires specific conformational binding, resulting in efficient ribozyme function as well as zirconium silicate for the chemical evolution of biomolecules.
在考虑冥古宙地球早期阶段时,矿物质在RNA分子化学演化中的作用是一个重要问题。特别是,在模拟原始条件下功能性核酶与古老矿物质之间的相互作用是近期的研究重点。我们目前正在尝试设计一个能与矿物质协同作用的原始RNA代谢网络,并认为RNA分子的模拟化学网络将有助于评估从简单RNA混合物到基于RNA的类生命系统的化学演化。首先,我们测量了寡核苷酸与四种矿物质的结合相互作用,分别是:气相二氧化硅、硅酸锆、海泡石和蒙脱石。在MgCl存在的情况下,寡核苷酸能与硅酸锆和蒙脱石结合,在有和没有MgCl的情况下都能与海泡石结合,但它们不与气相二氧化硅结合。基于这种结合行为,我们尝试了鳄梨类病毒锤头状核酶的自我切割反应。该反应受到硅酸锆的强烈抑制,硅酸锆是一种被视为水存在的矿物证据的化合物。本研究表明,功能性RNA分子的化学演化需要特定的构象结合,从而实现有效的核酶功能,以及硅酸锆对生物分子化学演化的作用。