4.8 Article

A Hemicyanine-Assembled Upconversion Nanosystem for NIR-Excited Visualization of Carbon Monoxide Bio-Signaling In Vivo

期刊

SMALL
卷 18, 期 28, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/smll.202202263

关键词

carbon monoxide; in vivo imaging; nanosystems; ratiometric upconversion luminescence; upconversion nanoparticles

资金

  1. Natural Science Foundation of Jiangsu Province [BK20170996]
  2. Natural Science Key Fund for Colleges and Universities of Jiangsu Province [15KJB530006]
  3. Postgraduate Research and Practice Innovation Program of Jiangsu Province [KYCX19_0863]
  4. Jiangsu Province Natural Science Foundation for Distinguished Young Scholars [BK20190035]
  5. Six talent peaks project in Jiangsu Province [SWYY-045]

向作者/读者索取更多资源

In this study, a nanosystem based on upconversion nanoparticles is developed for sensing carbon monoxide (CO). The nanosystem demonstrates a fast response to CO with high sensitivity and selectivity in aqueous solution using a near-infrared-excited ratiometric UCL detection method. It is also capable of visualizing CO bio-signaling in living organisms.
Carbon monoxide (CO) is considered as the second gasotransmitter involved in a series of physiological and pathological processes. Although a number of organic fluorescent probes have been developed for imaging CO, these probes display excitation within the ultraviolet or visible range, which restrict their applications in the complex biosystems. In the present work, a strategy is developed to construct an upconversion nanoparticles-based nanosystem for upconversion luminescent (UCL) sensing CO. This nanosystem exhibits a fast response to CO with high sensitivity and selectivity in aqueous solution by a near-infrared-excited ratiometric UCL detection method. Meanwhile, laser scanning upconversion luminescence microscope experiments demonstrate that this nanosystem can visualize the endogenous CO bio-signaling in living cells, deep tissues, zebrafish, and living mice by ratiometric UCL imaging. In particular, this nanosystem has been successfully employed in visualization of the endogenous CO bio-signaling through up-regulation of heme oxygenase-1 (HO-1) in the progression of hypoxia, acute inflammation, or ischemic injury. This work demonstrates that the outstanding performance of the nanosystem not only can provide an effective tool for further understanding the role of CO in the physiological and pathological environment, but also may have great potential ability for tracking the expression of HO-1 in living systems.

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