Department of Biotechnology & Enzyme Catalysis, Institute of Biochemistry, University of Greifswald, 17487, Greifswald, Germany.
Institute of Bioinformatics, University Medicine Greifswald, 17487, Greifswald, Germany.
Angew Chem Int Ed Engl. 2020 Jul 6;59(28):11607-11612. doi: 10.1002/anie.202003635. Epub 2020 May 11.
Certain hydrolases preferentially catalyze acyl transfer over hydrolysis in an aqueous environment. However, the molecular and structural reasons for this phenomenon are still unclear. Herein, we provide evidence that acyltransferase activity in esterases highly correlates with the hydrophobicity of the substrate-binding pocket. A hydrophobicity scoring system developed in this work allows accurate prediction of promiscuous acyltransferase activity solely from the amino acid sequence of the cap domain. This concept was experimentally verified by systematic investigation of several homologous esterases, leading to the discovery of five novel promiscuous acyltransferases. We also developed a simple yet versatile colorimetric assay for rapid characterization of novel acyltransferases. This study demonstrates that promiscuous acyltransferase activity is not as rare as previously thought and provides access to a vast number of novel acyltransferases with diverse substrate specificity and potential applications.
某些水解酶在水相环境中优先催化酰基转移而不是水解。然而,这种现象的分子和结构原因尚不清楚。在此,我们提供的证据表明,酯酶中的酰基转移酶活性与底物结合口袋的疏水性高度相关。本工作中开发的疏水性评分系统允许仅根据帽结构域的氨基酸序列准确预测混杂的酰基转移酶活性。通过对几个同源酯酶的系统研究,实验验证了这一概念,从而发现了五个新的混杂酰基转移酶。我们还开发了一种简单而通用的比色测定法,用于快速表征新的酰基转移酶。这项研究表明,混杂的酰基转移酶活性并不像以前认为的那样罕见,并且为具有不同底物特异性和潜在应用的大量新型酰基转移酶提供了途径。