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由具有氧化响应荧光的四嵌段和二嵌段共聚物模块化组装而成的免疫诊疗聚合物囊泡

Immunotheranostic Polymersomes Modularly Assembled from Tetrablock and Diblock Copolymers with Oxidation-Responsive Fluorescence.

作者信息

Du Fanfan, Liu Yu-Gang, Scott Evan Alexander

机构信息

Department of Biomedical Engineering, Northwestern University, Evanston, Illinois, USA.

Simpson Querrey Institute, Northwestern University Feinberg School of Medicine, Chicago, Illinois, USA.

出版信息

Cell Mol Bioeng. 2017 Oct;10(5):357-370. doi: 10.1007/s12195-017-0486-7. Epub 2017 Apr 10.

Abstract

INTRODUCTION

Intracellular delivery is a key step for many applications in medicine and for investigations into cellular function. This is particularly true for immunotherapy, which often requires controlled delivery of antigen and adjuvants to the cytoplasm of immune cells. Due to the complex responses generated by the stimulation of diverse immune cell populations, it is critical to monitor which cells are targeted during treatment. To address this issue, we have engineered an immunotheranostic polymersome delivery system that fluorescently marks immune cells following intracellular delivery.

METHODS

-(3-bromopropyl)phthalimide end-capped poly(ethylene glycol)-bl-poly(propylene sulfide) (PEG-PPS-PI) was synthesized by anionic ring opening polymerization and linked with PEG-PPS-NH via a perylene bisimide (PBI) bridge to form a tetrablock copolymer (PEG-PPS-PBI-PPS-PEG). Block copolymers were assembled into polymersomes by thin film hydration in phosphate buffered saline and characterized by dynamic light scattering, cryogenic electron microscopy and fluorescence spectroscopy. Polymersomes were injected subcutaneously into the backs of mice, and draining lymph nodes were extracted for flow cytometric analysis of cellular uptake and disassembly.

RESULTS

Modular self-assembly of tetrablock / diblock copolymers in aqueous solutions induced π-π stacking of the PBI linker that both red-shifted and quenched the PBI fluorescence. Reactive oxygen species within the endosomes of phagocytic immune cell populations oxidized the PPS blocks, which disassembled the polymersomes for dequenching and shifting of the PBI fluorescence from 640 nm to 550 nm emission. Lymph node resident macrophages and dendritic cells were found to increase in 550 nm emission over the course of 3 days by flow cytometry.

CONCLUSIONS

Immunotheranostic polymersomes present a versatile platform to probe the contributions of specific cell populations during the elicitation of controlled immune responses. Flanking PBI with two oxidation-sensitive hydrophobic PPS blocks enhanced π stacking and introduced a mechanism for disrupting π-π interactions to shift PBI fluorescence in response to oxidative conditions. Shifts from red (640 nm) to green (550 nm) fluorescence occurred in the presence of physiologically relevant concentrations of reactive oxygen species and could be observed within phagocytic cells both and .

摘要

引言

细胞内递送是医学中许多应用以及细胞功能研究的关键步骤。对于免疫疗法而言尤其如此,免疫疗法通常需要将抗原和佐剂可控地递送至免疫细胞的细胞质中。由于不同免疫细胞群体受到刺激会产生复杂的反应,因此在治疗过程中监测哪些细胞是靶向细胞至关重要。为了解决这个问题,我们设计了一种免疫诊疗聚合物囊泡递送系统,该系统在细胞内递送后能对免疫细胞进行荧光标记。

方法

通过阴离子开环聚合反应合成了以 -(3-溴丙基)邻苯二甲酰亚胺封端的聚(乙二醇)-b-聚(硫化丙烯)(PEG-PPS-PI),并通过苝二酰亚胺(PBI)桥将其与 PEG-PPS-NH 连接,形成四嵌段共聚物(PEG-PPS-PBI-PPS-PEG)。通过在磷酸盐缓冲盐水中进行薄膜水合作用,将嵌段共聚物组装成聚合物囊泡,并通过动态光散射、低温电子显微镜和荧光光谱对其进行表征。将聚合物囊泡皮下注射到小鼠背部,提取引流淋巴结用于细胞摄取和分解的流式细胞术分析。

结果

四嵌段/二嵌段共聚物在水溶液中的模块化自组装诱导了 PBI 连接体的 π-π 堆积,这使 PBI 荧光发生红移并猝灭。吞噬性免疫细胞群体内体中的活性氧氧化了 PPS 嵌段,从而使聚合物囊泡解体,导致 PBI 荧光去猝灭并从 64****nm 发射波长移至 550 nm 发射波长。通过流式细胞术发现,在 3 天的时间里,淋巴结驻留巨噬细胞和树突状细胞的 550 nm 发射增强。

结论

免疫诊疗聚合物囊泡提供了一个通用平台,可用于探究特定细胞群体在可控免疫反应激发过程中的作用。用两个对氧化敏感的疏水 PPS 嵌段包围 PBI 增强了 π 堆积,并引入了一种机制来破坏 π-π 相互作用,从而使 PBI 荧光在氧化条件下发生位移。在存在生理相关浓度活性氧的情况下,荧光会从红色(640 nm)变为绿色(550 nm),并且在吞噬细胞内均可观察到。

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