聚(酯酰胺)结构对前列腺癌症治疗的性质和药物递送的影响。

IF 7.7 Q1 ENGINEERING, BIOMEDICAL BME frontiers Pub Date : 2023-08-10 eCollection Date: 2023-01-01 DOI:10.34133/bmef.0025
Junfu Zhang, Liying Wang, Mengting Ding, Xinru You, Jun Wu, Jun Pang
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摘要

目的:我们旨在开发一个由苯丙氨酸基聚(酯酰胺)(Phe-PEAs)组成的用于癌症治疗的聚合物库,并研究这些聚合物的构效关系,以了解它们对相应纳米颗粒(NP)给药效率的影响。影响声明:我们的研究深入了解了聚合物在基于NP的药物递送应用中的结构-性质关系,并为增强癌症治疗提供了潜在的聚合物库和NP平台。简介:基于聚合物NP的药物递送系统通过提高药物疗效和最大限度地减少全身毒性,在癌症治疗中显示出巨大的潜力。然而,这些系统的成功设计和优化需要全面了解聚合物结构和物理化学性质之间的关系,而物理化学性质直接影响相应NP的药物递送效率。方法:通过改变聚合物二醇部分亚甲基的长度,合成了一系列结构可调的Phe-PEAs。随后,Phe-PEAs被配制成NP,用于在前列腺癌症治疗中输送阿霉素(DOX)。结果:聚合物结构的微小调整导致PEA的疏水性和热性能发生变化,从而改变NP的大小、载药能力、细胞摄取效率和细胞毒性。此外,DOX负载的Phe-PEA NPs在携带前列腺肿瘤的小鼠中表现出增强的肿瘤抑制和减少的副作用。结论:Phe-PEAs具有精细可调的结构,有望成为癌症治疗的有效和可定制的纳米载体。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Impact of Poly(Ester Amide) Structure on Properties and Drug Delivery for Prostate Cancer Therapy.

Objective: We aim to develop a polymer library consisting of phenylalanine-based poly(ester amide)s (Phe-PEAs) for cancer therapy and investigate the structure-property relationship of these polymers to understand their impact on the drug delivery efficiency of corresponding nanoparticles (NPs). Impact Statement: Our study provides insights into the structure-property relationship of polymers in NP-based drug delivery applications and offers a potential polymer library and NP platform for enhancing cancer therapy. Introduction: Polymer NP-based drug delivery systems have demonstrated substantial potential in cancer therapy by improving drug efficacy and minimizing systemic toxicity. However, successful design and optimization of these systems require a comprehensive understanding of the relationship between polymer structure and physicochemical properties, which directly influence the drug delivery efficiency of the corresponding NPs. Methods: A series of Phe-PEAs with tunable structures was synthesized by varying the length of the methylene group in the diol part of the polymers. Subsequently, Phe-PEAs were formulated into NPs for doxorubicin (DOX) delivery in prostate cancer therapy. Results: Small adjustments in polymer structure induced the changes in the hydrophobicity and thermal properties of the PEAs, consequently NP size, drug loading capacity, cellular uptake efficacy, and cytotoxicity. Additionally, DOX-loaded Phe-PEA NPs demonstrated enhanced tumor suppression and reduced side effects in prostate tumor-bearing mice. Conclusion: Phe-PEAs, with their finely tunable structures, show great promise as effective and customizable nanocarriers for cancer therapy.

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