Schmidt Nina G, Eger Elisabeth, Kroutil Wolfgang
ACIB GmbH c/o, Department of Chemistry, University of Graz , Heinrichstrasse 28, 8010 Graz, Austria.
Department of Chemistry, Organic and Bioorganic Chemistry, University of Graz , NAWI Graz, Heinrichstrasse 28, 8010 Graz, Austria.
ACS Catal. 2016 Jul 1;6(7):4286-4311. doi: 10.1021/acscatal.6b00758. Epub 2016 Jun 8.
Carbon-carbon bond formation is the key reaction for organic synthesis to construct the carbon framework of organic molecules. The review gives a selection of biocatalytic C-C-bond-forming reactions which have been investigated during the last 5 years and which have already been proven to be applicable for organic synthesis. In most cases, the reactions lead to products functionalized at the site of C-C-bond formation (e.g., α-hydroxy ketones, aminoalcohols, diols, 1,4-diketones, etc.) or allow to decorate aromatic and heteroaromatic molecules. Furthermore, examples for cyclization of (non)natural precursors leading to saturated carbocycles are given as well as the stereoselective cyclopropanation of olefins affording cyclopropanes. Although many tools are already available, recent research also makes it clear that nature provides an even broader set of enzymes to perform specific C-C coupling reactions. The possibilities are without limit; however, a big library of variants for different types of reactions is required to have the specific enzyme for a desired specific (stereoselective) reaction at hand.
碳-碳键的形成是有机合成构建有机分子碳骨架的关键反应。本文综述了过去5年中研究的一系列生物催化碳-碳键形成反应,这些反应已被证明可应用于有机合成。在大多数情况下,这些反应会生成在碳-碳键形成位点官能化的产物(例如,α-羟基酮、氨基醇、二醇、1,4-二酮等),或者可用于修饰芳香族和杂芳香族分子。此外,还给出了(非)天然前体环化生成饱和碳环的实例,以及烯烃立体选择性环丙烷化生成环丙烷的实例。尽管目前已经有了许多工具,但近期的研究也表明,自然界提供了一套更为广泛的酶来进行特定的碳-碳偶联反应。可能性是无限的;然而,需要一个包含不同类型反应变体的大型文库,以便随时获得用于所需特定(立体选择性)反应的特定酶。