Zhong Ruoyu, Xu Xianchen, Tutoni Gianna, Liu Mingyuan, Yang Kaichun, Li Ke, Jin Ke, Chen Ying, Mai John D H, Becker Matthew L, Huang Tony Jun
Thomas Lord Department of Mechanical Engineering and Material Science, Duke University, Durham, NC, USA.
Department of Chemistry, Duke University, Durham, NC, USA.
Nat Commun. 2025 May 3;16(1):4144. doi: 10.1038/s41467-025-59146-x.
Droplet manipulation technologies play a critical role in many aspects of biochemical research, including in complex reaction assays useful for drug delivery, for building artificial cells, and in synthetic biology. While advancements have been made in manipulating liquid droplets, the capability to freely and dynamically manipulate solid objects across aqueous and oil phases remains unexplored. Here, we develop an acoustofluidic frequency-associated microsphere embedding platform, which enables microscale rapid injection of microparticles from a fluorinated oil into aqueous droplets. By observing different embedding mechanisms at low and high acoustic frequencies, we establish a theoretical model and practical principles for cross-phase manipulations. The proposed system not only enables multi-phase manipulation but also provides contactless control of specific microparticles within various distinctive phases. We demonstrate the acoustic-driven embedding and subsequent on-demand disassembly of hydrogel microspheres. This system indicates potential for reagent delivery and molecule capture applications. It enhances existing droplet manipulation technologies by enabling both multi-phase and cross-phase operations, paving the way for solid-liquid interaction studies in artificial cell research. The capability for intricate multi-phase loading, transport, and reactions offers promising implications for various fields, including in-droplet biochemical assays, drug delivery, and synthetic biology.
液滴操控技术在生化研究的许多方面都发挥着关键作用,包括在用于药物递送、构建人工细胞以及合成生物学的复杂反应分析中。虽然在操控液滴方面已经取得了进展,但在水相和油相中自由动态地操控固体物体的能力仍未得到探索。在此,我们开发了一种声流频率相关的微球嵌入平台,该平台能够将微粒从氟化油中微尺度快速注入水滴中。通过观察低频和高频下不同的嵌入机制,我们建立了跨相操控的理论模型和实用原理。所提出的系统不仅能够实现多相操控,还能对不同独特相中特定的微粒进行非接触式控制。我们展示了声驱动水凝胶微球的嵌入及随后的按需拆解。该系统显示出在试剂递送和分子捕获应用方面的潜力。它通过实现多相和跨相操作增强了现有的液滴操控技术,为人工细胞研究中的固液相互作用研究铺平了道路。复杂的多相加载、运输和反应能力为包括液滴内生化分析、药物递送和合成生物学在内的各个领域带来了有前景的影响。