4.8 Article

Multifunctional Cellular Targeting, Molecular Delivery, and Imaging by Integrated Mesoporous-Silica with Optical Nanocrescent Antenna: MONA

期刊

ACS NANO
卷 16, 期 2, 页码 2013-2023

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.1c07015

关键词

multifunctional nanoprobe; nanocrescent; mesoporous silica nanosphere; breast cancer; plasmonic resonance energy transfer; apoptosis; optical switch

资金

  1. academic research fund at the University of Michigan
  2. National Science Foundation NSF-ECCS program [1454188]
  3. Air Force Office of Scientific Research [AFOSR FA9550-16-1-0272, FA9550-19-1-0186, FA9550-22-1-0285]
  4. Directorate For Engineering [1454188] Funding Source: National Science Foundation
  5. Div Of Electrical, Commun & Cyber Sys [1454188] Funding Source: National Science Foundation

向作者/读者索取更多资源

This study presents an integrated nanostructure of mesoporous-silica nanospheres and optical nanocrescent antennas for multifunctional cellular targeting, drug delivery, and molecular imaging with high spatial and temporal resolution.
Multifunctional nanoprobes have attracted significant attention in a wide range of disciplines such as nanomedicine, precision medicine, and cancer diagnosis and treatment. However, integrating multifunctional ability in a nanoscale structure to precisely target, image, and deliver with cellular spatial/temporal resolution is still challenging in cellulo applications. This is because the development of such high-precision resolution needs to be carried out without labeling, photobleaching, and structurally segregating live cells. In this study, we present an integrated nanostructure of a mesoporous-silica nanosphere with an optical nanocrescent antenna (MONA) for multifunctional cellular targeting, drug delivery, and molecular imaging with spatiotemporal resolution. MONA comprises a systematically constructed Au nanocrescent (AuNC) antenna as a nanosensor and optical switch on a mesoporous-silica nanosphere as a cargo to molecular delivery. MONA made of antiepithelial cell adhesion molecules (anti-EpCAM)-conjugated AuNC facilitates the specific targeting of breast cancer cells, resulting in a highly focused photothermal gradient that functions as a molecular emitter. This light-driven molecular, doxorubicin (DOX) delivery function allows rapid apoptosis of breast cancer cells. Since MONA permits the tracking of quantum biological electron-transfer processes, in addition to its role as an on-demand optical switch, it enables the monitoring of the dynamic behavior of cellular cytochrome c pivoting cell apoptosis in response to the DOX delivery. Owing to the integrated functions of molecular actuation and direct sensing at the precisely targeted spot afforded by MONA, we anticipate that this multifunctional optical nanoantenna structure will have an impact in the fields of nanomedicine, cancer theranostics, and basic life sciences.

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