纳米载体
朗之万动力
动力学(音乐)
生物物理学
结合
化学
药物输送
纳米颗粒
纳米技术
靶向给药
分子动力学
胶体金
生物系统
药品
布朗动力学
多尺度建模
药物发现
拉曼光谱
毒品携带者
荧光相关光谱
材料科学
作者
C. P. Krishnananda,P. S. Burada,Manisha Khamrai,Swagata Dasgupta,Anushree Roy
摘要
Harnessing the responsiveness of metal nanoparticle-drug conjugates to external stimuli enables tunable therapeutic release with spatial and temporal accuracy. However, elucidating and modeling the underlying release mechanisms over experimentally relevant timescales remains a challenge. In this work, we present a minimal statistical model based on Langevin dynamics to study the long-timescale dynamics of drug release from citrate-capped gold nanoparticles (CIT-AuNPs) under ultrasound (US) exposure. In addition to interaction between participants due to Lennard-Jones and Coulomb potentials, the model incorporates various US-induced effects, revealing that acoustic streaming and cavitation are the driving forces for drug release. Complementary UV-visible and surface-enhanced Raman spectroscopy measurements confirm the release dynamics in the CIT-AuNP-drug conjugate during US exposure, while fluorescence spectroscopy quantifies the release efficiency. Together, these results highlight the efficacy of a minimal multiscale modeling approach in unraveling the physical mechanisms underlying US-mediated drug release and guiding the design of responsive nanocarrier systems.
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