Abstract:Phytase (EC 3.1.3.8) is an enzyme that specifically hydrolyzes phytic acid, yielding products such as orthophosphate, inositol phosphate isomers, and free inositol. It is a promising enzyme for food applications. This study aims to enhance the thermostability of the phytase derived from Aspergillus tubingensis. The FireProt platform was employed to predict the impacts of mutation sites on protein stability, which was complemented by FoldX and Rosetta-based calculations of mutation free energy changes for mutant screening. Four distinct mutants were subsequently constructed. The elite mutant T273K was screened out for enzymatic characterization. The half-life of T273K was increased by 67.56% at 60 ℃ compared with that of the wild type (WT), and by 92.86% at 80 ℃. The catalytic efficiency (kcat/Km) of T273K was 196.11 L/(μmol·min), representing a 50.56% increase relative to that of WT. These results collectively demonstrated improved thermostability and activity of T273K. Kinetic simulation analysis revealed a significant increase in the number of salt bridges in the distal fragments (205-210 and 380-400) of T273K, which led to improved overall protein rigidity, thereby enhancing the thermostability. This study successfully identified a mutant T273K, which effectively enhanced the phytase thermostability. Furthermore, kinetic simulations revealed that a local mutation remodeled salt bridges in distal fragments to increase overall protein rigidity and improve the protein thermostability. This provides an effective strategy for future modifications aimed at enhancing enzyme thermostability.