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Dynamic microfluidic control of supramolecular peptide self-assembly

机译:超分子肽自组装的动态微流控

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摘要

The dynamic nature of supramolecular polymers has a key role in their organization. Yet, the manipulation of their dimensions and polarity remains a challenge. Here, the minimalistic diphenylalanine building block was applied to demonstrate control of nano-assemblies growth and shrinkage using microfluidics. To fine-tune differential local environments, peptide nanotubes were confined by micron-scale pillars and subjected to monomer flows of various saturation levels to control assembly and disassembly. The small-volume device allows the rapid adjustment of conditions within the system. A simplified kinetic model was applied to calculate parameters of the growth mechanism. Direct real-time microscopy analysis revealed that different peptide derivatives show unidirectional or bidirectional axial dimension variation. Atomistic simulations show that unidirectional growth is dictated by the differences in the axial ends, as observed in the crystalline order of symmetry. This work lays foundations for the rational control of nano-materials dimensions for applications in biomedicine and material science.
机译:超分子聚合物的动力学性质在其组织中起关键作用。然而,对其尺寸和极性的操纵仍然是一个挑战。在这里,使用简约的二苯丙氨酸构建模块来演示使用微流控技术控制纳米组件的生长和收缩。为了微调不同的局部环境,肽纳米管被微米级的柱子限制,并经受各种饱和度水平的单体流动以控制组装和拆卸。小体积的设备可以快速调整系统中的条件。应用简化的动力学模型来计算生长机理的参数。直接实时显微镜分析显示,不同的肽衍生物显示出单向或双向轴向尺寸变化。原子模拟表明,单向生长是由轴向端部的差异所决定的,如在对称结晶顺序中所观察到的。这项工作为合理控制纳米材料在生物医学和材料科学中的应用奠定了基础。

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