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Detecting infrared luminescence and non-chemical signaling of living cells and single cell mid-IR spectroscopy in cryogenic environment

机译:在低温环境中检测活细胞的红外发光和非化学信号以及单细胞中红外光谱

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Many life-relevant interaction energies are in IR range, and it is reasonable to believe that some biochemical reactions inside cells can results in emission of IR photons. Cells can use this emission for non-chemical and non-electrical signaling. Detecting weak infrared radiation from live cells is complicated because of strong thermal radiation background and absorption of radiation by tissues. A microfluidic device with live cells inside a vacuum cryogenic environment should suppress this background, and thereby permit observation of live cell auto-luminescence or signaling in the IR regime. One can make IR-transparent windows not emitting in this range, so only the cell and a small amount of liquid around it will emit infrared radiation. Currently mid-IR spectroscopy of single cells requires the use of a synchrotron source to measure absorption or reflection spectra. Decreasing of thermal radiation background will allow absorption and reflection spectroscopy of cells without using synchrotron light. Moreover, cell auto-luminescence can be directly measured. The complete absence of thermal background radiation for cryogenically cooled samples allows the use IR photon-sensitive detectors and obtaining single molecule sensitivity in IR photo-luminescence measurements. Due to low photon energies, photo-luminescence measurements will be non-distractive for pressures samples. The technique described here is based upon US patent 9366574.
机译:许多与生命有关的相互作用能都在IR范围内,因此可以合理地相信细胞内的某些生化反应会导致IR光子的发射。细胞可以将这种发射用于非化学和非电信号传递。由于强烈的热辐射背景和组织对辐射的吸收,因此从活细胞中检测微弱的红外辐射非常复杂。在真空低温环境中具有活细胞的微流控设备应抑制这种背景,从而可以观察IR区域中的活细胞自发光或信号传导。可以使红外线透明窗口不在此范围内发射,因此只有电池及其周围的少量液体会发射红外线。当前,单个细胞的中红外光谱需要使用同步加速器源来测量吸收或反射光谱。热辐射本底的减少将允许细胞的吸收和反射光谱,而无需使用同步加速器光。而且,可以直接测量细胞的自发光。对于低温冷却的样品,完全没有热本底辐射,因此可以使用IR光子敏感检测器,并在IR光致发光测量中获得单分子灵敏度。由于光子能量低,压力样品的光致发光测量将不会发生衍射。这里描述的技术基于美国专利9366574。

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