Borhani Seddigheh, Arab Seyed Shahriar
Biophysics Department, Faculty of Biological Sciences, Tarbiat Modares University, Tehran, Iran.
Center of Molecular Medicine, University of Georgia, GA, USA.
J Biomol Struct Dyn. 2025 Jul 25:1-14. doi: 10.1080/07391102.2025.2524436.
Taq DNA polymerase (Taq pol), a useful enzyme in biotechnology, has been the subject of an extensive investigation to create enzymes with altered characteristics, notably the enhancement of Taq pol's thermostability, But the demand for such enzymes remains unmet. In this study, we aimed to introduce several mutations to the Taq pol structure to improve its structural stability. We combined the sequence-based and structure-based rational design mutagenesis techniques to incorporate five mutations into the Taq pol structure. The impact of the mutations on the enzyme was examined by the utilization of molecular dynamics simulations. All mutant enzymes exhibited a more compact structure and a greater abundance of internal hydrogen bonds and secondary structure contents. While the mutants TaqG389E and TaqS290K|A353K|L365E|N384E|G389E demonstrated the least structural dynamics, the other mutant enzymes displayed higher or comparable flexibility compared to the wild-type. Furthermore, a reduction in the distance between mutation positions and neighboring charged amino acids was observed in most of the mutant structures. The enhancement of non-bonded interactions resulted in the evaluation of structure stability. Based on this fact, all of the suggested mutations had positive effects on the stability of the Taq pol structure. Additionally, a decrease in structural flexibility led to a more stable structure; hence, TaqG389E and TaqS290K|A353K|L365E|N384E|G389E mutants were considered more stable compared to wild-type Taq pol. The mutants TaqG389E and TaqS290K|A353K|L365E|N384E|G389E exhibited excellent performance in terms of reduced structural flexibility, evaluated internal hydrogen bonds, and the capacity to establish multiple stabilizable interactions when compared to the wild-type.
Taq DNA聚合酶(Taq pol)是生物技术中一种有用的酶,人们对其进行了广泛研究,以创造具有改变特性的酶,特别是提高Taq pol的热稳定性,但对这类酶的需求仍未得到满足。在本研究中,我们旨在对Taq pol结构引入几个突变以提高其结构稳定性。我们结合基于序列和基于结构的合理设计诱变技术,将五个突变引入Taq pol结构。通过分子动力学模拟来研究这些突变对该酶的影响。所有突变酶均呈现出更紧凑的结构以及更丰富的内部氢键和二级结构含量。虽然突变体TaqG389E和TaqS290K|A353K|L365E|N384E|G389E表现出最小的结构动力学,但与野生型相比,其他突变酶表现出更高或相当的灵活性。此外,在大多数突变结构中观察到突变位置与相邻带电氨基酸之间的距离减小。非键相互作用的增强导致了结构稳定性的评估。基于这一事实,所有提出的突变对Taq pol结构的稳定性都有积极影响。此外,结构灵活性的降低导致结构更稳定;因此,与野生型Taq pol相比,TaqG389E和TaqS290K|A353K|L365E|N384E|G389E突变体被认为更稳定。与野生型相比,突变体TaqG389E和TaqS290K|A353K|L365E|N384E|G389E在降低结构灵活性、评估内部氢键以及建立多个可稳定相互作用的能力方面表现出优异性能。