Department of Pharmacy, ITS College of Pharmacy, Muradnagar, Ghaziabad, India.
Department of Pharmacy, Banasthali Vidyapith, Banasthali, 304022, Rajasthan, India.
Curr Pharm Biotechnol. 2024;25(4):448-467. doi: 10.2174/0113892010238984231019085154.
Biocatalytic and chemoenzymatic biosynthesis are powerful methods of organic chemistry that use enzymes to execute selective reactions and allow the efficient production of organic compounds. The advantages of these approaches include high selectivity, mild reaction conditions, and the ability to work with complex substrates. The utilization of chemoenzymatic techniques for the synthesis of complicated compounds has lately increased dramatically in the area of organic chemistry. Biocatalytic technologies and modern synthetic methods are utilized synergistically in a multi-step approach to a target molecule under this paradigm. Chemoenzymatic techniques are promising for simplifying access to essential bioactive compounds because of the remarkable regio- and stereoselectivity of enzymatic transformations and the reaction diversity of modern organic chemistry. Enzyme kits may include ready-to-use, reproducible biocatalysts. Its use opens up new avenues for the synthesis of active therapeutic compounds and aids in drug development by synthesizing active components to construct scaffolds in a targeted and preparative manner. This study summarizes current breakthroughs as well as notable instances of biocatalytic and chemoenzymatic synthesis. To assist organic chemists in the use of enzymes for synthetic applications, it also provides some basic guidelines for selecting the most appropriate enzyme for a targeted reaction while keeping aspects like cofactor requirement, solvent tolerance, use of whole cell or isolated enzymes, and commercial availability in mind.
生物催化和化学酶催化生物合成是有机化学中强有力的方法,利用酶执行选择性反应,允许高效生产有机化合物。这些方法的优点包括高选择性、温和的反应条件和处理复杂底物的能力。在有机化学领域,化学酶技术在合成复杂化合物方面的应用最近有了显著的增长。在这种模式下,多步方法中协同使用生物催化技术和现代合成方法来实现目标分子。由于酶转化的显著区域和立体选择性以及现代有机化学的反应多样性,化学酶技术在简化获得必需生物活性化合物方面具有广阔的前景。酶试剂盒可能包含即用型、可重复使用的生物催化剂。它的使用为合成活性治疗化合物开辟了新的途径,并通过合成活性成分以靶向和制备性的方式构建支架来辅助药物开发。本研究总结了生物催化和化学酶催化合成的最新突破和显著实例。为了帮助有机化学家将酶用于合成应用,本研究还提供了一些基本准则,用于在考虑辅助因子需求、溶剂耐受性、使用全细胞或分离酶以及商业可用性等因素的情况下,为目标反应选择最合适的酶。