4.6 Article

Sensitive Sulfide Monitoring in Live Cells by Dark-Field Microscopy Based on the Formation of Ag2S on Au@Agl Core-Shell Nanoparticles

期刊

ACS SUSTAINABLE CHEMISTRY & ENGINEERING
卷 7, 期 24, 页码 19338-19343

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acssuschemeng.9b06238

关键词

Sulfide; Au@AgI PNPs; Sensitive probe; Local surface plasmon resonance; Live cells; Cerebral ischemia

资金

  1. National Natural Science Foundation [21575090]
  2. High-level Teachers in Beijing Municipal Universities in the Period of 13th Fiveyear Plan [CITTCD20190330]
  3. Scientific Research Project of Beijing Educational Committee [KM201810028008]
  4. Youth Innovative Research Team of Capital Normal University
  5. Capacity Building for Sci-Tech Innovation-Fundamental Scientific Research Funds [19530050179, 025185305000/195]

向作者/读者索取更多资源

Hydrogen sulfide (H2S) is the third endogenous gas in mammals that plays an important role in understanding human physiological and pathological processes. However, it remains difficult to measure H2S in living biological specimens due to interference of other biothiols (GSH, Cys, Hcy, and thiol-containing proteins) as well as low concentrations of H2S (as low as sub-nM). Here, we present Au@AgI core-shell plasmonic nanoparticles (PNPs) as highly sensitive probes to acquire sulfide rapid monitoring in biological environments. When the Au@AgI PNPs are exposed to sulfide, the AgI transforms into Ag2S, leading a change of local surface plasmon resonance (LSPR), thereby resulting in a color and light intensity change at the single nanoparticle level which can be monitored by dark-field microscopy (DFM). This strategy has an ultralow limit of detection (LOD) of 33 pM and great anti interference ability for sulfide detection in biological environments. This method was successfully used for highly sensitive sulfide mapping in live cells and to record the changes of H2S levels in different brain regions of rats during acute cerebral ischemia, validating that this method suitable for trace sulfide sensing in biological environments. We anticipate that this sulfide sensor has potential applications for studying complex neurochemical changes.

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