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首页> 外文期刊>Advanced Functional Materials >Multicompartment Polymer Vesicles with Artificial Organelles for Signal-Triggered Cascade Reactions Including Cytoskeleton Formation
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Multicompartment Polymer Vesicles with Artificial Organelles for Signal-Triggered Cascade Reactions Including Cytoskeleton Formation

机译:具有人造细胞器的多组分聚合物囊泡,用于信号触发的级联反应,包括细胞骨架形成

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摘要

Organelles, i.e., internal subcompartments of cells, are fundamental to spatially separate cellular processes, while controlled intercompartment communication is essential for signal transduction. Furthermore, dynamic remodeling of the cytoskeleton provides the mechanical basis for cell shape transformations and mobility. In a quest to develop cell-like smart synthetic materials, exhibiting functional flexibility, a self-assembled vesicular multicompartment system, comprised of a polymeric membrane (giant unilamellar vesicle, GUV) enveloping polymeric artificial organelles (vesicles, nanoparticles), is herein presented. Such multicompartment assemblies respond to an external stimulus that is transduced through a precise sequence. Stimuli-triggered communication between two types of internal artificial organelles induces and localizes an enzymatic reaction and allows ion-channel mediated release from storage vacuoles. Moreover, cytoskeleton formation in the GUVs' lumen can be triggered by addition of ionophores and ions. An additional level of control is achieved by signal-triggered ionophore translocation from organelles to the outer membrane, triggering cytoskeleton formation. This system is further used to study the diffusion of various cytoskeletal drugs across the synthetic outer membrane, demonstrating potential applicability, e.g., anticancer drug screening. Such multicompartment assemblies represent a robust system harboring many different functionalities and are a considerable leap in the application of cell logics to reactive and smart synthetic materials.
机译:细胞器,即细胞内部子组件,是空间单独的蜂窝过程的基础,而受控的相互作用通信对于信号转导至关重要。此外,细胞骨架的动态重塑为细胞形状变换和移动性提供了机械基础。在寻求发展细胞样智能合成材料的任务中,本文提出了具有由聚合物膜(巨型Unilamellar囊泡,GUV)构成的自组装浆料多组分系统,包封聚合物人造细胞器(囊泡,纳米颗粒)。这种多组分组件响应通过精确序列转导的外部刺激。两种类型的内部人造细胞器之间的刺激触发通信诱导和定位酶反应,并允许离子沟道介导的储存真空释放。此外,可以通过添加离子团和离子触发GUVS腔中的细胞骨架形成。通过从细胞器到外膜的信号触发的离子体易位来实现额外的控制水平,触发细胞骨架形成。该系统进一步用于研究各种细胞骨骼药物在合成外膜上的扩散,证明潜在的适用性,例如抗癌药物筛选。这种多组分组件代表了一种稳健的系统,涉及许多不同功能,并且在将细胞逻辑应用于反应性和智能合成材料中是相当大的飞跃。

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