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超支化自毁聚合物(hSIPs)用于编程式药物递送和超高灵敏度检测。

Hyperbranched Self-Immolative Polymers (hSIPs) for Programmed Payload Delivery and Ultrasensitive Detection.

机构信息

CAS Key Laboratory of Soft Matter Chemistry, Hefei National Laboratory for Physical Sciences at the Microscale, iChem (Collaborative Innovation Center of Chemistry for Energy Materials), Department of Polymer Science and Engineering, University of Science and Technology of China , Hefei, Anhui 230026, China.

Wuhan National Laboratory for Optoelectronics, College of Chemistry and Chemical Engineering, Huazhong University of Science and Technology , Wuhan, Hubei 430074, China.

出版信息

J Am Chem Soc. 2015 Sep 16;137(36):11645-55. doi: 10.1021/jacs.5b05060. Epub 2015 Sep 8.

Abstract

Upon stimuli-triggered single cleavage of capping moieties at the focal point and chain terminal, self-immolative dendrimers (SIDs) and linear self-immolative polymers (l-SIPs) undergo spontaneous domino-like radial fragmentation and cascade head-to-tail depolymerization, respectively. The nature of response selectivity and signal amplification has rendered them a unique type of stimuli-responsive materials. Moreover, novel design principles are required for further advancement in the field of self-immolative polymers (SIPs). Herein, we report the facile fabrication of water-dispersible SIPs with a new chain topology, hyperbranched self-immolative polymers (hSIPs), by utilizing one-pot AB2 polycondensation methodology and sequential postfunctionalization. The modular engineering of three categories of branching scaffolds, three types of stimuli-cleavable capping moieties at the focal point, and seven different types of peripheral functional groups and polymeric building blocks affords both structurally and functionally diverse hSIPs with chemically tunable amplified-release features. On the basis of the hSIP platform, we explored myriad functions including visible light-triggered intracellular release of peripheral conjugated drugs in a targeted and spatiotemporally controlled fashion, intracellular delivery and cytoplasmic reductive milieu-triggered plasmid DNA release via on/off multivalency switching, mitochondria-targeted fluorescent sensing of H2O2 with a detection limit down to ∼20 nM, and colorimetric H2O2 assay via triggered dispersion of gold nanoparticle aggregates. To further demonstrate the potency and generality of the hSIP platform, we further configure it into biosensor design for the ultrasensitive detection of pathologically relevant antigens (e.g., human carcinoembryonic antigen) by integrating with enzyme-mediated cycle amplification with positive feedback and enzyme-linked immunosorbent assay (ELISA).

摘要

在焦点和链末端的封端基团受刺激触发的单一断裂后,自焚树枝状聚合物(SIDs)和线性自焚聚合物(l-SIPs)分别经历自发的类似多米诺骨牌的径向碎裂和级联的头到尾解聚。响应选择性和信号放大的性质使它们成为一种独特类型的刺激响应材料。此外,还需要新的设计原则来推进自焚聚合物(SIPs)领域的进一步发展。在此,我们通过一锅 AB2 缩聚方法和顺序后功能化,报告了具有新链拓扑结构的可水分散 SIP 的简便制备方法,即超支化自焚聚合物(hSIPs)。三类支化支架、三类焦点处可刺激裂解的封端基团和七种不同类型的外围功能基团和聚合结构单元的模块化设计,为 hSIPs 提供了结构和功能多样化的具有化学可调放大释放特性的聚合物。基于 hSIP 平台,我们探索了多种功能,包括可见光触发的靶向和时空控制的外围共轭药物的细胞内释放、通过开/关多价切换的细胞内递药和细胞质还原环境触发的质粒 DNA 释放、线粒体靶向的 H2O2 荧光传感,检测限低至约 20 nM,以及通过金纳米颗粒聚集体的触发分散进行比色 H2O2 测定。为了进一步证明 hSIP 平台的效力和通用性,我们将其进一步配置为生物传感器设计,通过整合酶介导的循环扩增和正反馈以及酶联免疫吸附测定(ELISA),用于超灵敏检测病理相关抗原(例如,人癌胚抗原)。

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