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基于片上自组装控制的聚合物纳米粒子增强癌症治疗效果。

Polymeric Nanoparticles Controlled by On-Chip Self-Assembly Enhance Cancer Treatment Effectiveness.

机构信息

George W. Woodruff School of Mechanical Engineering, Georgia Institute of Technology, Atlanta, GA, 30332, USA.

School of Interdisciplinary Bioscience and Bioengineering, Pohang University of Science and Technology (POSTECH), Pohang, 37673, Republic of Korea.

出版信息

Adv Healthc Mater. 2020 Nov;9(22):e2001633. doi: 10.1002/adhm.202001633. Epub 2020 Oct 18.

Abstract

Nanoparticle (NP)-based drug delivery systems or nanomedicines have broadened the horizon of translational research for decades. Conventional bulk mixing synthesis methods have impeded successful clinical translations of nanomedicines due to the limited ability of the controlled, scalable production with high uniformity. Herein, an on-chip preparation of self-assembled, drug-encapsulated polymeric NPs is presented for their improved uniformity and homogeneity that results in enhanced anti-cancer effect in vitro and in vivo. The NPs are formulated through rapid convective mixing of two aqueous solutions of a hydrophilic polymer and an anti-cancer drug, doxorubicin (DOX), in the swirling microvortex reactor (SMR). Compared to conventional bulk-mixed NPs (BMPs), the microvortex-synthesized NPs (MVPs) exhibit narrower size distributions and better size tunability. It is found that the improved uniformity and homogeneity of the MVPs not only enhance cellular uptake and anti-cancer effect with pH-responsive drug release in vitro, but also result in an improved tumor regression and decreased side effects at off-targeted organs in vivo. The findings demonstrate that uniformly designed NPs with more homogeneous properties can induce a significant enhancement of an anti-cancer effect in vivo. The results show the potential of a high-speed on-chip synthesis as a scalable manufacturing platform for reliable clinical translations of nanomedicines.

摘要

基于纳米粒子(NP)的药物输送系统或纳米药物在几十年中拓宽了转化研究的视野。由于控制、可扩展生产的能力有限,具有高均匀性,常规的 bulk 混合合成方法阻碍了纳米药物的成功临床转化。在此,提出了一种在芯片上制备自组装、药物包封的聚合物 NP 的方法,以提高其均匀性和均一性,从而在体外和体内增强抗癌效果。NP 通过亲水性聚合物和抗癌药物阿霉素(DOX)的两种水溶液在旋流微涡反应器(SMR)中的快速对流混合来配制。与常规的 bulk-mixed NPs(BMPs)相比,微涡旋合成的 NPs(MVPs)表现出更窄的粒径分布和更好的粒径可调性。研究发现,MVPs 的均匀性和均一性的提高不仅增强了细胞摄取和体外 pH 响应性药物释放的抗癌效果,而且还导致体内肿瘤消退和靶向器官副作用降低。这些发现表明,具有更均匀性质的均匀设计的 NPs 可以在体内显著增强抗癌效果。研究结果表明,高速片上合成具有作为可靠临床转化纳米药物的可扩展制造平台的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0a6c/7677199/1597b385b3ed/nihms-1640816-f0002.jpg

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