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荧光团的选择和掺入有助于超支化聚合物在多细胞肿瘤球体和异种移植肿瘤模型中的渗透和分布行为。

Fluorophore Selection and Incorporation Contribute to Permeation and Distribution Behaviors of Hyperbranched Polymers in Multi-Cellular Tumor Spheroids and Xenograft Tumor Models.

机构信息

Centre for Advanced Imaging (CAI), ARC Centre of Excellence in Convergent Bio-Nano Science & Technology (CBNS), ARC Centre for Innovation in Biomedical Imaging Technology (CIBIT), The University of Queensland, Brisbane, Queensland 4072, Australia.

Australian Institute for Bioengineering & Nanotechnology (AIBN), The University of Queensland, Brisbane, Queensland 4072, Australia.

出版信息

ACS Appl Bio Mater. 2021 Mar 15;4(3):2675-2685. doi: 10.1021/acsabm.0c01616. Epub 2021 Feb 25.

Abstract

Improving our understanding of how design choices in materials synthesis impact biological outcomes is of critical importance in the development of nanomedicines. Here, we show that fluorophore labeling of polymer nanomedicine candidates significantly alters their transport and cell association in multi-cellular tumor spheroids and their penetration in breast cancer xenografts, dependent on the type of the fluorophore and their positioning within the macromolecular structure. These data show the critical importance of the biomaterials structure and architecture in their tissue distribution and intracellular trafficking, which in turn govern their potential therapeutic efficacy. The broader implication of these findings suggests that when developing materials for medical applications, great care should be taken early on in the design process as relatively simple choices may have downstream impacts that could potentially skew preclinical biology data.

摘要

提高我们对材料合成设计选择如何影响生物结果的理解,对于纳米医学的发展至关重要。在这里,我们表明,荧光标记的聚合物纳米药物候选物显著改变了它们在多细胞肿瘤球体中的运输和细胞结合,以及在乳腺癌异种移植物中的渗透,这取决于荧光团的类型及其在大分子结构中的位置。这些数据表明,生物材料的结构和架构对于它们在组织中的分布和细胞内运输至关重要,而这又决定了它们的潜在治疗效果。这些发现的更广泛意义表明,在为医疗应用开发材料时,在设计过程的早期就应该非常小心,因为相对简单的选择可能会产生下游影响,从而可能扭曲临床前生物学数据。

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