Ye Xue-song, Wang Peng, Zhou Tao, Liu Jun, Liu Feng
Department of Biomedical Engineering, Zhejiang University, HangZhou, Zhejiang 310027, P.R.China.
Annu Int Conf IEEE Eng Med Biol Soc. 2009;2009:2739-43. doi: 10.1109/IEMBS.2009.5333338.
A critical issue in bioelectrochemical applications, that use electrodes modified by nanomaterials, like enzyme sensor modified by Single Wall Carbon Nanotubes (SWCNTs), is to ensure high activity of the active center of an immobilized enzyme protein. Since Flavin Adenine Dinucleotide (FAD) along with other amino residues, including His559, Glu412 and His516, constitute the active center of the catalytic site conformation of which could determine the activity of enzyme, it is important to understand the molecular mechanism of their mobility and the potential impact on the catalytic activity while GOx is immobilized on SWCNTs. However, this dynamic mechanism still remains blurry at the atomic level due to the active center being embedded in the apo-GOx and the limitations of appropriate experimental methods. The molecular dynamics (MD) simulation, as a successful approach for exploring some interaction details between protein and nanomaterials, was performed to investigate the mobility mechanism of the active center and the consequence for the possible change of catalytic activity in this study. The trajectory and bond distance clearly indicate that the adsorption of GOx onto SWCNTs with different orientations bring observable different interaction properties in the conformational mobility in active center. These results would help us understand some substantial factors for the activity of biomacromolecule while immobilized on nanomaterials.
在生物电化学应用中,一个关键问题是确保固定化酶蛋白活性中心的高活性,这类应用使用由纳米材料修饰的电极,如用单壁碳纳米管(SWCNTs)修饰的酶传感器。由于黄素腺嘌呤二核苷酸(FAD)以及包括His559、Glu412和His516在内的其他氨基酸残基构成了催化位点构象的活性中心,其构象可决定酶的活性,因此了解它们在葡萄糖氧化酶(GOx)固定在SWCNTs上时的迁移分子机制以及对催化活性的潜在影响非常重要。然而,由于活性中心嵌入脱辅基葡萄糖氧化酶中以及合适实验方法的局限性,这种动态机制在原子水平上仍然模糊不清。分子动力学(MD)模拟作为探索蛋白质与纳米材料之间一些相互作用细节的成功方法,在本研究中用于研究活性中心的迁移机制以及催化活性可能变化的结果。轨迹和键距清楚地表明,GOx以不同方向吸附到SWCNTs上会在活性中心的构象迁移中带来明显不同的相互作用特性。这些结果将有助于我们理解生物大分子固定在纳米材料上时其活性的一些重要因素。