Smietana Michael, Arseniyadis Stellios
Institut des Biomolécules Max Mousseron (IBMM), CNRS Université de Montpellier, ENSCM Place E. Bataillon, CC 1704 34000 Montpellier, France;, Email:
Queen Mary University of London School of Biological and Chemical Sciences Mile End Road E1 4NS, London, UK;, Email:
Chimia (Aarau). 2018 Sep 1;72(9):630-634. doi: 10.2533/chimia.2018.630.
The biological importance of nucleic acids for the storage, expression and regulation of genetic information is now well understood. By taming the chemical synthesis of these biomolecules, chemists have been able to engineer new architectures based on the ability of DNA and RNA to fold into secondary or even more complex tertiary structures with applications in medicinal chemistry, diagnostics or even material sciences. Exploiting the fascinating helical structure of DNA and RNA to develop new chiral bio-hybrid catalysts capable of promoting highly stereoselective transformations under mild and eco-compatible conditions is also an emerging area of research. In this short review, we report our recent results in the field of DNA-based asymmetric catalysis as well as the challenges and promising perspectives that lie in front of us.
核酸对于遗传信息的存储、表达和调控的生物学重要性现已得到充分理解。通过驾驭这些生物分子的化学合成,化学家们得以基于DNA和RNA折叠成二级甚至更复杂三级结构的能力来设计新的结构,其应用涵盖药物化学、诊断学乃至材料科学。利用DNA和RNA迷人的螺旋结构来开发新型手性生物杂交催化剂,使其能够在温和且生态兼容的条件下促进高度立体选择性转化,这也是一个新兴的研究领域。在这篇简短的综述中,我们报告了我们在基于DNA的不对称催化领域的最新成果,以及摆在我们面前的挑战和充满希望的前景。