Centre for Protolife Research and Centre for Organized Matter Chemistry, School of Chemistry, University of Bristol, Bristol BS8 1TS, UK.
Faculty of Engineering, Queens Building, University of Bristol, Bristol BS8 1TR, UK.
Nat Commun. 2016 Oct 6;7:13068. doi: 10.1038/ncomms13068.
The spontaneous assembly of chemically encoded, molecularly crowded, water-rich micro-droplets into periodic defect-free two-dimensional arrays is achieved in aqueous media by a combination of an acoustic standing wave pressure field and in situ complex coacervation. Acoustically mediated coalescence of primary droplets generates single-droplet per node micro-arrays that exhibit variable surface-attachment properties, spontaneously uptake dyes, enzymes and particles, and display spatial and time-dependent fluorescence outputs when exposed to a reactant diffusion gradient. In addition, coacervate droplet arrays exhibiting dynamical behaviour and exchange of matter are prepared by inhibiting coalescence to produce acoustically trapped lattices of droplet clusters that display fast and reversible changes in shape and spatial configuration in direct response to modulations in the acoustic frequencies and fields. Our results offer a novel route to the design and construction of 'water-in-water' micro-droplet arrays with controllable spatial organization, programmable signalling pathways and higher order collective behaviour.
通过声驻波压力场和原位复合凝聚的组合,在水介质中实现了化学编码的、分子拥挤的、富含水的微液滴自发组装成周期性无缺陷的二维阵列。声介导的初级液滴聚结生成具有可变表面附着特性的单液滴/节点微阵列,这些微阵列自发吸收染料、酶和颗粒,并在暴露于反应物扩散梯度时显示空间和时间依赖性荧光输出。此外,通过抑制聚结来制备表现出动力学行为和物质交换的凝聚物液滴阵列,以产生声捕获的液滴团簇晶格,这些晶格在直接响应声频率和场的调制时,快速且可逆地改变形状和空间配置。我们的结果为设计和构建具有可控空间组织、可编程信号通路和更高阶集体行为的“水包水”微液滴阵列提供了一种新途径。