Department of Chemistry and Center for Informatics, School of Natural Sciences, Shiv Nadar University, Gautam Buddha Nagar, Uttar Pradesh-201314, India.
Department of Applied Sciences, Northumbria University, Newcastle upon Tyne, NE1 8ST, UK.
Org Biomol Chem. 2021 Dec 15;19(48):10652-10661. doi: 10.1039/d1ob02029c.
The HisA enzyme catalyzes the first step of histidine biosynthesis the Amadori rearrangement of the substrate ProFAR. Since it possesses the most conserved and ancient TIM-barrel fold, it provides an ideal framework for bioengineering of a new function from ancestral enzymes. In the present study, first, the catalytic mechanism of HisA biosynthesis was elucidated using hybrid Quantum Mechanical/Molecular Mechanical calculations, and thereafter, key residues contributing towards the promiscuity for TrpF activity were revealed using several MD simulations of a wild type enzyme and its variant with the native (ProFAR) and promiscuous (PRA) substrates. Our study reveals that the two loops (βα) and (βα) on the catalytic site of the HisA enzyme have incredible adaptability for the native and promiscuous substrates. The conformational interplay between these two loops is substrate driven and precise bioengineering targeting these loops is key to the emergence of new functions. Furthermore, the study reveals a key role of the Arg 15 residue which is close to the catalytic center of the enzyme in the bifunctionality of the HisA enzyme by increasing the loop flexibility. Therefore, our study provides crucial information for future bioengineering work to use the HisA enzyme as a scaffold for new enzymatic activity.
HisA 酶催化组氨酸生物合成的第一步——底物 ProFAR 的 Amadori 重排。由于它具有最保守和古老的 TIM 桶折叠结构,因此为从祖先酶中工程新功能提供了理想的框架。在本研究中,首先使用混合量子力学/分子力学计算阐明了 HisA 生物合成的催化机制,然后使用野生型酶及其变体与天然(ProFAR)和杂合(PRA)底物的几个 MD 模拟揭示了对 TrpF 活性具有混杂性的关键残基。我们的研究表明,HisA 酶催化位点上的两个环(βα)和(βα)对天然和杂合底物具有令人难以置信的适应性。这两个环之间的构象相互作用是由底物驱动的,针对这些环的精确生物工程是出现新功能的关键。此外,该研究揭示了 Arg15 残基在 HisA 酶的双功能中的关键作用,通过增加环的灵活性来提高酶的催化中心附近的环灵活性。因此,我们的研究为未来的生物工程工作提供了重要信息,可将 HisA 酶作为新酶活性的支架。