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Chemical Signaling and Functional Activation in Colloidosome-Based Protocells

机译:化学信号和基于胶体的原细胞的功能激活。

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An aqueous-based microcompartmentalized model involving the integration of partially hydrophobic Fe(III)-rich montmorillonite (FeM) clay particles as structural and catalytic building blocks for colloidosome membrane assembly, self-directed membrane remodeling, and signal-induced protocell communication is described. The clay colloidosomes exhibit size- and charge-selective permeability, and show dual catalytic functions involving spatially confined enzyme-mediated dephosphorylation and peroxidase-like membrane activity. The latter is used for the colloidosome-mediated synthesis and assembly of a temperature-responsive poly(N-isopropylacrylamide)(PNIPAM)/clay-integrated hybrid membrane. In situ PNIPAM elaboration of the membrane is coupled to a glucose oxidase (GOx)-mediated signaling pathway to establish a primitive model of chemical communication and functional activation within a synthetic protocell community comprising a mixed population of GOx-containing silica colloidosomes and alkaline phosphatase (ALP)-containing FeM-clay colloidosomes. Triggering the enzyme reaction in the silica colloidosomes gives a hydrogen peroxide signal that induces polymer wall formation in a coexistent population of the FeM-clay colloidosomes, which in turn generates self-regulated membrane-gated ALP-activity within the clay microcompartments. The emergence of new functionalities in inorganic colloidosomes via chemical communication between different protocell populations provides a first step toward the realization of interacting communities of synthetic functional microcompartments.
机译:描述了一种基于水的微隔室模型,该模型涉及部分疏水性富Fe(III)的蒙脱石(FeM)粘土颗粒的整合,作为胶体体膜组装,自导向膜重塑和信号诱导的原细胞通讯的结构和催化构造单元。粘土胶体具有大小和电荷选择性的渗透性,并显示出双重催化功能,包括空间受限的酶介导的脱磷酸作用和过氧化物酶样膜活性。后者用于胶体介导的温度响应性聚(N-异丙基丙烯酰胺)(PNIPAM)/粘土整合杂化膜的合成和组装。膜的原位PNIPAM修饰与葡萄糖氧化酶(GOx)介导的信号传导途径偶联,以建立合成原生细胞社区内化学通讯和功能激活的原始模型,该原生细胞社区包含GOx含二氧化硅胶体和碱性磷酸酶的混合群体(含FeM粘土的胶体。触发二氧化硅胶体中的酶反应会产生一个过氧化氢信号,该信号会在共存的FeM-粘土胶体体中诱导聚合物壁的形成,进而在粘土微室中产生自我调节的膜控ALP活性。通过不同原细胞群体之间的化学通讯,无机胶体中新功能的出现为实现合成功能性微室的相互作用社区迈出了第一步。

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