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Programmed magnetic manipulation of vesicles into spatially coded prototissue architectures arrays

机译:将囊泡的编程磁控磁阻入空间编码的原型架构阵列

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In nature, cells self-assemble into spatially coded tissular configurations to execute higher-order biological functions as a collective. This mechanism has stimulated the recent trend in synthetic biology to construct tissue-like assemblies from protocell entities, with the aim to understand the evolution mechanism of multicellular mechanisms, create smart materials or devices, and engineer tissue-like biomedical implant. However, the formation of spatially coded and communicating micro-architectures from large quantity of protocell entities, especially for lipid vesicle-based systems that mostly resemble cells, is still challenging. Herein, we magnetically assemble giant unilamellar vesicles (GUVs) or cells into various microstructures with spatially coded configurations and spatialized cascade biochemical reactions using a stainless steel mesh. GUVs in these tissue-like aggregates exhibit uncustomary osmotic stability that cannot be achieved by individual GUVs suspensions. This work provides a versatile and cost-effective strategy to form robust tissue-mimics and indicates a possible superiority of protocell colonies to individual protocells.
机译:本质上,细胞自组装成空间编码的组织配置,以执行更高阶的生物功能作为集体。该机制刺激了近期合成生物学的趋势,以构建来自Protocell实体的组织状组件,目的是了解多细胞机制的演化机制,创造智能材料或设备,以及工程师组织类似的生物医学植入物。然而,从大量的Protocell实体形成空间编码和沟通微架构,特别是对于大多数类似于细胞的基于脂质囊泡的系统,仍然具有挑战性。在此,我们将巨大的Unilamellar囊泡(GUV)或细胞造成巨大的Unilamellar囊泡(GUV)或细胞以空间编码的构造和使用不锈钢网的空间化级联生物化学反应。在这些组织类似的聚集体中的GUV表现出不合格的渗透稳定性,其不能通过个体GUVS悬浮液实现。这项工作提供了一种多功能和经济效益的策略来形成强大的组织模仿,并表明Protocell菌落的可能优势与个体的原子电容器。

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