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Proposal of a new method to measure FRET quantitatively in living or fixed biomedical specimens on a laser microscope

机译:提出了一种在激光显微镜上定量测量活体或固定生物医学样本中FRET的新方法的建议

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摘要

"Forster Resonance Energy Transfer", abbreviated "FRET", is a fluorescence phenomenon, which can be used to study and map co-localizations and dynamics of co-localizations at nanometer precision on a light microscope. FRET has been described as a "spectroscopic ruler". The efficiency of the radiationless energy transfer from an excited chromophore, the "donor", to another chromophore, the "acceptor", the excitation energy of which approximately matches the energy to be released by the donor, is dependent on the sixth power of the mutual distance between the two molecules in space. We propose a new, non-destructive technique for measuring FRET quantitatively and at high spatial and temporal resolution on a laser scanning microscope: Two laser beams of wavelengths suitable for the mutually exclusive excitation of the donor and the acceptor, the "donor beam" and the "acceptor beam", respectively, are intensity modulated by means of two electro optical modulators (EOM). The modulation patterns are rectangular at duty cycle Vi. The modulation frequencies differ slightly. The acceptor beam is saturating the acceptor so that it cannot accept energy from the donor. The saturation is modulated in the same way as the acceptor beam. Since the donor beam also is modulated, though at a frequency slightly different from that of the acceptor beam, the intensity of the released donor fluorescence is modulated with the beat frequency of the frequencies of the two laser beam modulations and can be detected and interpreted in quantitative terms by means of a lock in amplifier.
机译:“福斯特共振能量转移”(Forster Resonance Energy Transfer),缩写为“ FRET”,是一种荧光现象,可用于在光学显微镜上研究和绘制纳米级精度的共定位和共定位动力学。 FRET被描述为“光谱尺”。从激发的生色团“供体”到另一个生色团“受体”的无辐射能量转移效率取决于激发能的六次方,该激发能的激发能与供体释放的能量大致匹配。空间中两个分子之间的相互距离。我们提出了一种新的非破坏性技术,用于在激光扫描显微镜上定量测量FRET,并以高时空分辨率进行测量:两种波长适合于供体和受体互斥激发的波长的激光束,即“供体束”和分别通过两个电光调制器(EOM)对“接收光束”进行强度调制。调制模式在占空比Vi处为矩形。调制频率略有不同。受体束使受体饱和,因此它不能接受来自施主的能量。饱和度的调制方式与受体光束相同。由于供体束也被调制,尽管其频率与受体束的频率略有不同,所以释放的供体荧光的强度被两个激光束调制频率的拍频调制,并可以在其中检测和解释。通过放大器锁定的定量项。

著录项

  • 来源
    《Multiphoton microscopy in the biomedical sciences XI》|2011年|p.790331.1-790331.13|共13页
  • 会议地点 San Francisco CA(US)
  • 作者单位

    Centre for Molecular Biology and Neuroscience - University of Oslo, Institute of Basic Medical Sciences, Dept. of Anatomy, P.O. Box 1105 - Blindern, NO-0317 Oslo, Norway;

    Centre for Molecular Biology and Neuroscience - University of Oslo, Institute of Basic Medical Sciences, Dept. of Anatomy, P.O. Box 1105 - Blindern, NO-0317 Oslo, Norway;

    Centre for Molecular Biology and Neuroscience - University of Oslo, Institute of Basic Medical Sciences, Dept. of Anatomy, P.O. Box 1105 - Blindern, NO-0317 Oslo, Norway;

    Centre for Molecular Biology and Neuroscience - University of Oslo, Institute of Basic Medical Sciences, Dept. of Anatomy, P.O. Box 1105 - Blindern, NO-0317 Oslo, Norway;

    Centre for Molecular Biology and Neuroscience - University of Oslo, Institute of Basic Medical Sciences, Dept. of Anatomy, P.O. Box 1105 - Blindern, NO-0317 Oslo, Norway;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 医用物理学;
  • 关键词

    fret; lsm; dynamic; non-destructive; electro optic modulator; beat; saturation; modulation;

    机译:烦恼; lsm;动态;无损电光调制器击败;饱和;调制;
  • 入库时间 2022-08-26 13:44:28

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