Department of Life Science Engineering, Faculty of New Sciences & Technologies, University of Tehran, Tehran, Iran.
Department of Biochemistry, Faculty of Biological sciences, Tarbiat Modares University, Tehran, Iran.
PLoS One. 2018 Jun 1;13(6):e0198519. doi: 10.1371/journal.pone.0198519. eCollection 2018.
In this study, we report a detailed experimental, binding free energy calculation and molecular dynamics (MD) simulation investigation of the interactions of carboxylic-functionalized multi-walled carbon nanotubes (COOH-f-MWCNTs) with porcine trypsin (pTry). The enzyme exhibits decreased thermostability at 330K in the presence of COOH-f-MWCNTs. Furthermore, the activity of pTry also decreases in the presence of COOH-f-MWCNTs. The restricted diffusion of the substrate to the active site of the enzyme was observed in the experiment. The MD simulation analysis suggested that this could be because of the blocking of the S1 pocket of pTry, which plays a vital role in the substrate selectivity. The intrinsic fluorescence of pTry is quenched with increase in the COOH-f-MWCNTs concentration. Circular dichroism (CD) and UV-visible absorption spectroscopies indicate the ability of COOH-f-MWCNTs to experience conformational change in the native structure of the enzyme. The binding free energy calculations also show that electrostatics, π-cation, and π-π stacking interactions play important roles in the binding of the carboxylated CNTs with pTry. The MD simulation results demonstrated that the carboxylated CNTs adsorb to the enzyme stronger than the CNT without the-COOH groups. Our observations can provide an example of the nanoscale toxicity of COOH-f-MWCNTs for proteins, which is a critical issue for in vivo application of COOH-f-MWCNTs.
在这项研究中,我们报告了羧基功能化多壁碳纳米管(COOH-f-MWCNTs)与猪胰蛋白酶(pTry)相互作用的详细实验、结合自由能计算和分子动力学(MD)模拟研究。在 COOH-f-MWCNTs 的存在下,酶在 330K 时表现出降低的热稳定性。此外,在 COOH-f-MWCNTs 的存在下,pTry 的活性也降低。实验中观察到底物向酶的活性部位的扩散受到限制。MD 模拟分析表明,这可能是因为 pTry 的 S1 口袋被阻塞,而 S1 口袋在底物选择性中起着至关重要的作用。pTry 的固有荧光随着 COOH-f-MWCNTs 浓度的增加而猝灭。圆二色性(CD)和紫外可见吸收光谱表明 COOH-f-MWCNTs 具有使酶的天然结构发生构象变化的能力。结合自由能计算还表明,静电、π-阳离子和π-π 堆积相互作用在羧化 CNTs 与 pTry 的结合中起着重要作用。MD 模拟结果表明,羧化 CNTs 比没有-COOH 基团的 CNT 更能吸附到酶上。我们的观察结果可以为 COOH-f-MWCNTs 对蛋白质的纳米级毒性提供一个实例,这是 COOH-f-MWCNTs 体内应用的一个关键问题。