Department of Chemistry, Indiana University , Bloomington, Indiana 47405, United States.
J Am Chem Soc. 2013 Dec 26;135(51):19091-4. doi: 10.1021/ja410687z. Epub 2013 Dec 11.
Janus particles possess functional asymmetry and directionality within a single entity and thus are predicted to enable many promising biomedical applications that are not offered by homogeneous particles. However, it remains elusive what role the Janus principle plays in Janus particle-cell interactions, particularly in cellular uptake. We studied how asymmetric distribution of ligands on half-coated Janus microparticles dictates the membrane dynamics during receptor-mediated particle uptake, and found key differences from those characteristic of homogeneous particles. Live-cell fluorescence imaging combined with single-particle level quantification of particle-cell membrane interactions shows that the asymmetric distribution of ligands leads to a three-step endocytic process: membrane cup formation on the ligand-coated hemisphere, stalling at the Janus interface, and rapid membrane protrusion on the ligand-absent hemisphere to complete the particle engulfment. The direct correlation between the spatial presentation of ligands on Janus particles and the temporal changes of membrane dynamics revealed in this work elucidates the potential of using the Janus principle to fine-tune particle-cell interactions.
Janus 粒子在单个实体中具有功能不对称性和方向性,因此预计将能够实现许多均质粒子无法提供的有前途的生物医学应用。然而,Janus 原理在 Janus 粒子-细胞相互作用中,特别是在细胞摄取中扮演什么角色,仍然难以捉摸。我们研究了配体在半涂覆的 Janus 微粒子上的不对称分布如何支配受体介导的粒子摄取过程中的膜动力学,并发现与均质粒子的特征有明显的差异。活细胞荧光成像与粒子-细胞膜相互作用的单粒子水平定量相结合,表明配体的不对称分布导致了三步胞吞过程:配体涂覆半球上的膜杯形成,在 Janus 界面处停滞,以及在配体缺失半球上的快速膜突进而完成粒子吞噬。这项工作中揭示的 Janus 粒子上配体的空间呈现与膜动力学的时间变化之间的直接相关性阐明了利用 Janus 原理来微调粒子-细胞相互作用的潜力。