4.8 Article

Fluorescence-Detected Mid-Infrared Photothermal Microscopy

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JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
卷 143, 期 30, 页码 11490-11499

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AMER CHEMICAL SOC
DOI: 10.1021/jacs.1c03642

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  1. [R35GM136223]
  2. [R43GM142346]

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Mid-infrared photothermal microscopy is a novel chemical imaging technology that utilizes thermosensitive fluorescent probes to enhance sensitivity and image quality, enabling high-resolution imaging of biological specimens. The technique offers improved spectral fidelity and specificity by targeting specific organelles or biomolecules, and addresses the issue of photobleaching through the development of a wide-field fluorescence-detected mid-infrared photothermal microscope.
Mid-infrared photothermal microscopy is a new chemical imaging technology in which a visible beam senses the photothermal effect induced by a pulsed infrared laser. This technology provides infrared spectroscopic information at submicrometer spatial resolution and enables infrared spectroscopy and imaging of living cells and organisms. Yet, current mid-infrared photothermal imaging sensitivity suffers from a weak dependence of scattering on the temperature, and the image quality is vulnerable to the speckles caused by scattering. Here, we present a novel version of mid-infrared photothermal microscopy in which thermosensitive fluorescent probes are harnessed to sense the mid-infrared photothermal effect. The fluorescence intensity can be modulated at the level of 1% per Kelvin, which is 100 times larger than the modulation of scattering intensity. In addition, fluorescence emission is free of interference, thus much improving the image quality. Moreover, fluorophores can target specific organelles or biomolecules, thus augmenting the specificity of photothermal imaging. Spectral fidelity is confirmed through fingerprinting a single bacterium. Finally, the photobleaching issue is successfully addressed through the development of a wide-field fluorescence-detected mid-infrared photothermal microscope which allows video rate bond-selective imaging of biological specimens.

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