返回
Multiblock Copolymers toward Segmentation-Driven Morphological Transition
DOI:10.1021/acs.macromol.0c00374.png)
摘要
En 中文
Conventional methods for controlling self-assembly are generally based on the change in hydrophilic/hydrophobic volume fraction of diblock or triblock copolymers, which suffer from low structural diversity and limited chemical tunability. Inspired by nature, segmented multiblock copolymers (MBCs) offer unparalleled opportunities for engineering of biomimetic nanomaterials with tailored properties. However, the self-assembly of MBCs remains largely unexplored and poorly understood. In this study, we report a segmentation-mediated self-assembly strategy to manipulate the morphology of protein-mimic responsive MBCs by facilely altering the block numbers while holding the amphiphilicity constant. In particular, we found that an increased number of nearly alternating biodegradable poly(epsilon-caprolactone) and hydrophilic polyethylene glycol segments drives micelle-to-worm-to-vesicle transition. Moreover, the L-cystine residue-enriched interlayer of assemblies enables a depolymerization-induced morphology reversion, resulting in a redox-hyper-responsive property and ultrafast intracellular drug release. Both experimental and computational results provide a new insight into the self-assembly of macromolecules and propose a convenient approach to the construction of smart nanoassemblies with controlled architectures.
Keyword:
DIBLOCK COPOLYMER
CELLULAR INTERNALIZATION
CYLINDRICAL MICELLES
POLYMER VESICLES
NANOPARTICLES
GLYCOL)
AMPHIPHILES
ASSEMBLIES
DELIVERY
RELEASE
AI总结
对已上传原文的论文进行重点信息的提取,主要内容包括:简要概述、研究摘要、背景介绍、关键亮点、图文解析、展望与总结。
期刊
IF:
5.2
论文数:
3.7W
被引数:
9.4W
机构
引用论文
Endogenous Reactive Oxygen Species-Triggered Morphology Transformation for Enhanced Cooperative Interaction with Mitochondria内源性活性氧触发的形态转化,以增强与线粒体的协同作用
Organometallic nanostructures: Self-assembly of poly(ferrocene) block copolymers
ADVANCED MATERIALS
IF26.8
cRGD-functionalized, DOX-conjugated, and 64Cu-labeled superparamagnetic iron oxide nanoparticles for targeted anticancer drug delivery and PET/MR imaging
BIOMATERIALS
IF12.9

