利用微流体技术精确操纵微/纳米粒子给药系统的研究策略:综述

Jie Liu, Qinghui Fu, Qin Li, Yani Yang, Yue Zhang, Kaili Yang, Guohao Sun, Jiayu Luo, Weigen Lu, Jun He
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引用次数: 0

摘要

微流体技术有助于精确控制流体混合和各成分之间的相互作用,包括自组装和沉淀。它为精确制造颗粒提供了新的选择,在推进微/纳米颗粒给药系统(DDS)方面具有巨大潜力。人们探索了各种微通道/微流控芯片,以构建微/纳米粒子药物递送系统。通过微流控技术对颗粒大小、形态、结构、硬度、表面特征和弹性进行精确控制,有赖于特定的微通道几何设计和外源能量的应用,并遵循流体运动原理。因此,微/纳米颗粒 DDSs 的关键质量属性(CQAs),如粒度和分布、封装效率、药物负载、体外和体内给药曲线、Zeta 电位和靶向能力等,都能得到可重复的控制。在本综述中,我们对微流体技术进行了分类,并探讨了过去 5 年(2018-2023 年)新型微通道结构的最新研究进展及其在微/纳米粒子 DDS 中的应用。此外,我们还阐明了微流体技术的最新操作策略,这些策略影响了与微/纳米粒子 DDS 的 CQAs 相关的基础结构。此外,我们还深入探讨了微流控技术在新型微/纳米粒子 DDS 方面的工业应用和面临的挑战。
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Research Strategies for Precise Manipulation of Micro/Nanoparticle Drug Delivery Systems Using Microfluidic Technology: A Review
Microfluidic technology facilitates precise control over fluid mixing and interactions between the components, including self-assembly and precipitation. It offers new options for accurately manufacturing particles and holds significant potential in advancing micro/nanoparticle drug delivery systems (DDSs). Various microchannel/microfluidic chips have been explored to construct micro/nanoparticle DDSs. The precise manipulation of particle size, morphology, structure, stiffness, surface characteristics, and elasticity through microfluidic technology relies on specific microchannel geometrical designs and the application of exogenous energy, adhering to the principles of fluid motion. Consequently, this enables reproducible control over critical quality attributes (CQAs), such as particle size and distribution, encapsulation efficiency, drug loading, in vitro and in vivo drug delivery profiles, Zeta potential, and targeting capabilities, for micro/nanoparticle DDSs. In this review, we categorize microfluidic techniques and explore recent research developments in novel microchannel structures spanning the past 5 years (2018–2023) and their applications in micro/nanoparticle DDSs. Additionally, we elucidate the latest manipulation strategies of microfluidic techniques that impact foundational structures related to the CQAs of micro/nanoparticle DDSs. Furthermore, we offer insights into the industrial applications and challenges microfluidic techniques face in the context of novel micro/nanoparticle DDSs.
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