4.8 Article

Controllable Gold Nanocluster-Emulsion Interface for Direct Cell Penetration and Photothermal Killing

期刊

ADVANCED MATERIALS
卷 -, 期 -, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adma.202208349

关键词

biointerfaces; fluorescence imaging; functional emulsion; gold nanoclusters; photothermal therapy

资金

  1. National Natural Science Foundation of China
  2. Fundamental Research Funds for the Central Universities
  3. [22177012]
  4. [51973016]
  5. [FRF-IDRY-20-026]
  6. [00007485]

向作者/读者索取更多资源

Based on hydrophobic dye-modified gold nanoclusters, a novel emulsion containing these nanoclusters has been developed. The emulsion is able to penetrate cell membranes through a physical mechanism, and exhibits multifluorescence tracing and efficient photothermal killing capabilities.
In the view of their ability to be uptaken by cells, colloidal particles can exert diverse physiological effects and are promising vehicles for the intracellular delivery of biologically active substances. Given that the modulation of biomaterial interfaces greatly facilitates the prediction and control of the corresponding cellular responses, the interfacial behavior of hydrophobic dye-modified gold (Au) nanoclusters (Au NCs) is rationally designed to develop Au NC-containing emulsions and control their biointerfacial interactions with cell membranes. The observed biological performance is indicative of a physical penetration mechanism. The amphiphilic Au NCs decrease the interfacial energy of two immiscible liquids and hinder droplet coalescence to facilitate the formation of emulsions thermodynamically stabilized by dipole-dipole and hydrophobic interactions. Moreover, the amphiphilic Au NCs are localized on the emulsion droplet surface and form segregated interfacial microdomains that adapt to the membrane structure and facilitate the traverse of the emulsions across the cell membrane via direct penetration. Fast penetration coupled with excellent photophysical performance endows the emulsions with multifluorescence tracing and efficient photothermal killing capabilities. The successful change of the interaction mode between NCs and biological objects and the provision of a universal formulation to modulate biointerfacial interactions are expected to inspire new bioapplications.

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