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设计介孔硅纳米粒子,通过整合靶向和内涵体逃逸来克服生物屏障。

Designing Mesoporous Silica Nanoparticles to Overcome Biological Barriers by Incorporating Targeting and Endosomal Escape.

机构信息

Chemistry in Pharmaceutical Sciences, School of Pharmacy, Universidad Complutense de Madrid, Instituto de Investigación Sanitaria Hospital 12 de Octubre (i+12), Pz/Ramón y Cajal s/n, Madrid 28040, Spain.

Networking Research Center on Bioengineering, Biomaterials and Nanomedicine (CIBER-BBN), Madrid 28029, Spain.

出版信息

ACS Appl Mater Interfaces. 2021 Mar 3;13(8):9656-9666. doi: 10.1021/acsami.0c21507. Epub 2021 Feb 17.

Abstract

The several biological barriers that nanoparticles might encounter when administered to a patient constitute the major bottleneck of nanoparticle-mediated tumor drug delivery, preventing their successful translation into the clinic and reducing their therapeutic profile. In this work, mesoporous silica nanoparticles have been employed as a platform to engineer a versatile nanomedicine able to address such barriers, achieving (a) excessive premature drug release control, (b) accumulation in tumor tissues, (c) selective internalization in tumoral cells, and (d) endosomal escape. The nanoparticles have been decorated with a self-immolative redox-responsive linker to prevent excessive premature release, to which a versatile and polyvalent peptide that is able to recognize tumoral cells and induce the delivery of the nanoparticles to the cytoplasm via endosomal escape has been grafted. The excellent biological performance of the carrier has been demonstrated using 2D and 3D cell cultures and a tumor-bearing chicken embryo model, demonstrating in all cases high biocompatibility and cytotoxic effect, efficient endosomal escape and tumor penetration, and accumulation in tumors grown on the chorioallantoic membrane of chicken embryos.

摘要

当纳米粒子被施用于患者时,它们可能遇到的几个生物屏障构成了纳米粒子介导的肿瘤药物输送的主要瓶颈,阻止了它们成功转化为临床应用,并降低了它们的治疗效果。在这项工作中,介孔硅纳米粒子被用作一个平台,用于设计一种多功能的纳米医学,能够解决这些障碍,实现(a)过度的药物早期释放控制,(b)在肿瘤组织中的积累,(c)在肿瘤细胞中的选择性内化,以及(d)内涵体逃逸。纳米粒子用自毁性氧化还原响应性连接子进行修饰,以防止药物过早释放,然后将一种多功能的、多价的肽连接到纳米粒子上,这种肽能够识别肿瘤细胞,并通过内涵体逃逸诱导纳米粒子递送到细胞质中。该载体的优异的生物学性能已经通过 2D 和 3D 细胞培养和荷瘤鸡胚模型得到了证明,在所有情况下都表现出了高生物相容性和细胞毒性作用、有效的内涵体逃逸和肿瘤穿透能力,以及在鸡胚的尿囊膜上生长的肿瘤中的积累。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b8c0/7944478/4c7cd7bef4d5/am0c21507_0005.jpg

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