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首页> 外文期刊>Biomacromolecules >Modular Design and Facile Synthesis of Enzyme-Responsive Peptide-Linked Block Copolymers for Efficient Delivery of Doxorubicin
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Modular Design and Facile Synthesis of Enzyme-Responsive Peptide-Linked Block Copolymers for Efficient Delivery of Doxorubicin

机译:酶促肽连接的嵌段共聚物的模块设计和简便合成,可高效递送阿霉素

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Construction of efficient doxorubicin (DOX) delivery systems addressing a cascade of physiological barriers remains a great challenge for better therapeutic efficacy of tumors. Herein, we design well-defined enzyme-responsive peptide-linked block copolymer, PEG-GPLG-VRGDG-P(BLA-co-Asp) [PEG and P(BLA-co-Asp) are poly(ethylene glycol) and partially hydrolyzed poly(beta-benzyl L-aspartate) (PBLA), respectively] (P3), with modular functionality for efficient delivery of DOX. The block copolymers were successfully obtained via click reaction to introduce peptide (alkynyl-GPLGVRGDG) into the end of PEG for initiating ring-opening polymerization of, beta-benzyl L-aspartate N-carboxyanhydride (BLA-NCA) by terminal amino groups followed by partial hydrolysis of PBLA segments. P3 micelle was demonstrated to encapsulate DOX efficiently through synergistic effect of benzyl group-based hydrophobic and carboxyl moiety-based electrostatic interactions. Effective matrix metalloproteinase-2 (MMP-2)-triggered cleavage of peptide for dePEGylation of P3 micelles was confirmed and residual RGD ligands were retained on the surfaces. Against HT1080 cells overexpressing MMP-2, DOX-loaded P3 micelles showed approximately 4-fold increase of the cellular internalization amount as compared with free DOX and half maximal inhibitory concentration (IC50) value of DOX-loaded P3 micelles was determined to be 0.38 mu g/mL compared with 0.66 mu g/mL of free DOX due to MMP-triggered dePEGylation, RGD-mediated cellular uptake, and rapid drug release inside cells. Binding and penetration evaluation toward HT1080 multicellular tumor spheroids (MCTs) confirmed high affinity and deep penetration of P3 micelles in tumor tissues. This modular design of enzyme-responsive block copolymers represents an effective strategy to construct intelligent drug delivery vehicles for addressing a cascade of delivery barriers.
机译:解决一系列生理障碍的有效阿霉素(DOX)递送系统的构建仍然是更好的肿瘤治疗功效的巨大挑战。在这里,我们设计明确的酶反应性肽连接的嵌段共聚物,PEG-GPLG-VRGDG-P(BLA-co-Asp)[PEG和P(BLA-co-Asp)是聚乙二醇,并部分水解聚(β-苄基L-天冬氨酸)(PBLA)](P3),具有模块化功能,可有效递送DOX。通过点击反应成功地获得了嵌段共聚物,其通过点击反应将肽(炔基-GPLGVRGDG)引入PEG末端,以引发β-苄基L-天冬氨酸N-羧基酐(BLA-NCA)通过端氨基继而开环聚合。 PBLA片段的部分水解。 P3胶束被证明可以通过基于苄基的疏水和基于羧基部分的静电相互作用的协同作用有效地封装DOX。证实了有效的基质金属蛋白酶2(MMP-2)触发的肽的裂解,以使P3胶束脱PEG化,并且残留的RGD配体保留在表面上。针对过表达MMP-2的HT1080细胞,DOX负载的P3胶束与游离DOX相比,细胞内在化程度提高了约4倍,而DOX负载的P3胶束的最大抑制浓度(IC50)值的一半确定为0.38亩g / mL与0.66μg/ mL的游离DOX相比,这是由于MMP触发了去聚乙二醇化,RGD介导的细胞摄取以及细胞内药物的快速释放。对HT1080多细胞肿瘤球体(MCT)的结合和渗透评估证实了P3胶束在肿瘤组织中的高亲和力和深层渗透。酶促反应性嵌段共聚物的这种模块化设计代表了构建用于解决级联递送障碍的智能药物递送载体的有效策略。

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