Key Laboratory of Biomedical Information Engineering of the Ministry of Education, School of Life Science and Technology, Xi'an Jiaotong University, Xi'an 710049, P. R. China.
J Mater Chem B. 2021 Apr 21;9(15):3389-3400. doi: 10.1039/d1tb00102g. Epub 2021 Apr 6.
To explore the thermal-responsive characteristics of acetylated amylose-guest V-type helical complexes (AAGHCs) and their potential use as thermal-responsive drug carriers, different types of AAGHCs were built, in which acetylated amylose was used as a host, and iodine, propofol, or hexane was utilized as the guest molecule. Their thermal-responsive characteristics were investigated through molecular dynamic (MD) simulation and corresponding experiments. MD simulation showed that the thermal-responsive helix-unfolding and guest-release behavior in AAGHCs, and the complete unfolding of AAGHC could be divided into brewing, triggering and collapsing periods. Energy analysis revealed that the Lana-Jones potential is an important binding energy that bridges host and guest molecules and enhances the stability of the helix. The various types or number of guests showed different binding energies. The stronger the binding energy, higher is the temperature required to trigger the unfolding of the helix and the releasing of guests. FT-IR and X-ray diffraction analyses confirmed the structures of AAGHCs. The change in hydrated size, and UV-VIS absorption of AAGHCs at high temperatures both confirmed the thermal-responsiveness of AAGHCs. The fluorescence fluctuation of loaded 7-hydroxycoumarin reflected the same thermal-responsive process and mechanism as MD simulation. This study provides meaningful theoretical guidance for the design of thermal-responsive drug carriers based on acetylated amylose-guest V-type helical complexes.
为了探索乙酰化淀粉-客体 V 型螺旋配合物(AAGHCs)的热响应特性及其作为热响应型药物载体的潜在应用,构建了不同类型的 AAGHCs,其中乙酰化淀粉作为主体,碘、丙泊酚或己烷作为客体分子。通过分子动力学(MD)模拟和相应的实验研究了它们的热响应特性。MD 模拟表明,AAGHCs 中的热响应螺旋展开和客体释放行为,以及 AAGHC 的完全展开可以分为酿造、触发和崩溃三个阶段。能量分析表明,Lana-Jones 势能是连接主体和客体分子的重要结合能,增强了螺旋的稳定性。不同类型或数量的客体表现出不同的结合能。结合能越强,触发螺旋展开和释放客体所需的温度就越高。FT-IR 和 X 射线衍射分析证实了 AAGHCs 的结构。AAGHCs 在高温下的水合尺寸变化和紫外可见吸收都证实了 AAGHCs 的热响应性。负载 7-羟基香豆素的荧光波动反映了与 MD 模拟相同的热响应过程和机制。这项研究为基于乙酰化淀粉-客体 V 型螺旋配合物的热响应型药物载体的设计提供了有意义的理论指导。