Mapping Local pH in Live Cells Using Encapsulated Fluorescent SERS Nanotags
Mapping Local pH in Live Cells Using Encapsulated Fluorescent SERS Nanotags
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DOI:
10.1002/smll.200901893
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发表时间:
2010-03-08
期刊:
影响因子:
13.3
通讯作者:
Moskovits, Martin
中科院分区:
文献类型:
--
作者:
Pallaoro, Alessia;Braun, Gary B.;Moskovits, Martin
Understanding uptake and processing of nanomaterials by cells has implications for therapeutics and diagnostics. Although nanoparticle agents have been developed as proven imaging agents and promising drug-delivery vehicles, much remains to be learned regarding their internalization as local environmental sensors, even for the relatively simple case of pH determination at the nanoscale. Strategies for in vitro cell culture have been reported that use cargo-containing or dyelabeled nanoparticles with a cationic agent, which promotes binding to the cell membrane through an electrostatic interaction, inducing the cell membrane to wrap around the particle, which is then internalized through endocytosis.[1–3] Nutrients and molecules that are not able to cross the membrane through active transport or diffusion and inorganic particles bigger than a few nanometers use this route. This complex process is also exploited in the uptake of nucleic acids, drugs and peptides, and of polymers for drug delivery, sensing and biocompatibility applications. Although promising efforts to monitor the interior pH in a cell after endocytosis of pH-sensitive dual-color ffuorescent polymers have been reported,[4, 5] issues of photostability and wavelength optimization remain. An ideal nanoprobe would be photostable, sensitive, and excitable with near-infrared (NIR) wavelengths at which cells and tissues are somewhat transparent and autoffuorescence is minimized. A wide range of ffuorescence-based materials have been developed as imaging agents and as local probes of the presence of specific biomarkers or of local environmental conditions. For example pH-sensitive ffuorescence probes have been used to determine the time-dependent acidity of endosomes [6–8] through a comparison of the intensity ratio between two ffuorescence bands.[4, 5, 9] Such applications highlight the need for improved methods to measure intensity ratios; similarly, the simultaneous measurement of multiple biomarkers in situ is likely to be an important component of future medical analysis and diagnostics. Fluorescence is normally not a good signal to use in such multiplex applications on account of the breadth and featurelessness of most ffuorescence bands. Moreover, many ffuorophores bleach under repeated or intense illumination. Surface-enhance Raman spectroscopy (SERS)-based pH sensing has been explored [10–12] as an alternative to ffuorescence for application in which one encounters the above challenges. In addition to the greater potential for multiplexing on account of the narrowness of SERS bands, SERS can be routinely excited by NIR wavelengths leading to increased photostability, potentially prolonging the time window for nanoparticle tracking from minutes to hours. These characteristics make SERS an appealing technique both for imaging and as a probe for biological function.[13, 14] It is well known that the brightest SERS signals originate from metal nanoparticle dimers and small clusters rather than single nanoparticles, or from nanoengineered nanostructures such as nanoshells. A major hurdle for reliable SERS is the development of stable, reproducible, and bright SERS-active nanoparticles. In this Communication, we use 4-mercaptobenzioc acid (MBA) contained within pre-linked and subsequently coated Ag nanoparticles as a pH-sensitive probe. The nanoparticle cluster is encapsulated and bound with protein cargo and functionalized for cellular uptake.[15] We demonstrate that these optimized SERS nanoprobes are compatible with ffuorescent imaging by tracking the ffuorescence from the coating, while measuring the local pH of the endosomes using …