Gao Lijian, Xu Zhiyong, Zhou Jian
School of Chemistry and Chemical Engineering, Guangdong Provincial Key Lab for Green Chemical Product Technology, South China University of Technology, Guangzhou 510640, P. R. China.
Langmuir. 2024 Apr 2;40(13):7225-7233. doi: 10.1021/acs.langmuir.4c00364. Epub 2024 Mar 19.
Polyethylene terephthalate (PET) hydrolase, discovered in (IsPETase), is a promising agent for the biodegradation of PET under mild reaction conditions, yet the thermal stability is poor. The efficient immobilization and orientation of IsPETase on different solid substrates are essential for its application. In this work, the combined parallel tempering Monte Carlo simulation with the all-atom molecular dynamics simulation approach was adopted to reveal the adsorption mechanism, orientation, and conformational changes of IsPETase adsorbed on charged self-assembled monolayers (SAMs), including COOH-SAM and NH-SAM with different surface charge densities (SCDs). The results show that the protein adsorption orientation was determined not only by attraction interactions but also by repulsion interactions. IsPETase is adsorbed on the COOH-SAM surface with an "end-on" orientation, which favors the exposure of the catalyzed triplet to the solution. In addition, the entrance to the catalytic active center is larger on the COOH-SAM surface with a low SCD. This work reveals the controlled orientation and conformational information on IsPETase on charged surfaces at the atomistic level. This study would certainly promote our understanding of the mechanism of IsPETase adsorption and provide theoretical support for the design of substrates for IsPETase immobilization.
聚对苯二甲酸乙二酯(PET)水解酶(IsPETase)于[具体年份]被发现,是一种有望在温和反应条件下实现PET生物降解的试剂,但其热稳定性较差。IsPETase在不同固体底物上的有效固定和定向对其应用至关重要。在这项工作中,采用并行回火蒙特卡罗模拟与全原子分子动力学模拟相结合的方法,以揭示IsPETase吸附在带电自组装单分子层(SAMs)上的吸附机制、定向和构象变化,这些SAMs包括具有不同表面电荷密度(SCDs)的COOH-SAM和NH-SAM。结果表明,蛋白质的吸附定向不仅由吸引相互作用决定,还由排斥相互作用决定。IsPETase以“末端吸附”的方向吸附在COOH-SAM表面,这有利于催化三联体暴露于溶液中。此外,在具有低SCD的COOH-SAM表面上,催化活性中心的入口更大。这项工作在原子水平上揭示了IsPETase在带电表面上的可控定向和构象信息。该研究必将增进我们对IsPETase吸附机制的理解,并为设计IsPETase固定化的底物提供理论支持。