首页> 外文会议>Multiphoton microscopy in the biomedical sciences XVII >Pump-probe microscopy of respiratory chain pigments: towards non-fluorescent label-free metabolic imaging
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Pump-probe microscopy of respiratory chain pigments: towards non-fluorescent label-free metabolic imaging

机译:呼吸链色素的泵浦探针显微镜:走向无荧光的无标记代谢成像

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Current label-free metabolic microscopy techniques are limited to obtaining contrast from fluorescent molecules NAD(P)H and FAD+, and are unable to determine redox state along the mitochondrial respiratory chain itself. The respiratory chain electron carriers do not fluoresce, but some are heme proteins that have redox-dependent absorption spectra. The most prominent of these, cytochrome c, has been extensively characterized by transient absorption spectroscopy, which suggests that pump-probe measurements in the vicinity of 450 - 600 nm can provide strong contrast between its redox states. Motivated by the success of pump-probe microscopy targeting another heme protein, hemoglobin, we seek to extend the technique to the cytochromes, with the ultimate goal of dissecting respiratory chain function of individual cells in live tissue. To that end, we have developed a new optical system producing ultrafast, visible, independently-tunable pulse pairs via sum-frequency generation of nonlinearly broadened pulses in periodically-poled lithium niobate. The system is pumped by a homebuilt fiber-based oscillator/amplifier emitting 1060 nm pulses at 1.3 W (63 MHz repetition rate), and produces tunable pulses in the vicinity of 488 and 532 nm. Pump-probe spectroscopy of cytochrome c with this source reveals differences in excited-state absorption relaxation times between redox states. Though redox contrast is weak with this setup, we argue that this can be improved with a resonant galvo-scanning microscope. Moreover, pump-probe images were acquired of brown adipose tissue (which contains dense mitochondria), demonstrating label-free contrast from excited-state absorption in respiratory chain hemes.
机译:当前的无标记代谢显微镜技术仅限于从荧光分子NAD(P)H和FAD +获得对比度,并且无法确定沿线粒体呼吸链本身的氧化还原状态。呼吸链电子载体不发荧光,但有些是血红素蛋白,具有依赖于氧化还原的吸收光谱。其中最突出的细胞色素c已通过瞬态吸收光谱进行了广泛表征,这表明在450-600 nm附近的泵浦探针测量可以提供其氧化还原状态之间的强烈对比。受靶向另一种血红素蛋白血红蛋白的泵浦探针显微镜技术成功的推动,我们寻求将该技术扩展到细胞色素,其最终目的是解剖活组织中单个细胞的呼吸链功能。为此,我们开发了一种新的光学系统,该光学系统通过在周期性极化的铌酸锂中非线性加宽的脉冲的总和频率产生来产生超快,可见光,可独立调节的脉冲对。该系统由一个内置的基于光纤的振荡器/放大器泵浦,该振荡器/放大器以1.3 W(63 MHz的重复频率)发射1060 nm脉冲,并在488和532 nm附近产生可调脉冲。用这种来源的细胞色素c的泵浦探针光谱显示了氧化还原状态之间激发态吸收弛豫时间的差异。尽管此设置的氧化还原对比很弱,但我们认为可以通过振镜扫描显微镜来改善。此外,获得了棕色脂肪组织(其中包含密集的线粒体)的泵浦图像,表明呼吸链血红素的激发态吸收没有标记物的对比。

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  • 来源
  • 会议地点 San Francisco(US)
  • 作者单位

    Department of Electrical Computer Engineering, Colorado State University, 1373 Campus Delivery, Fort Collins, CO, USA 80523,Current affiliation:KMLabs, Boulder, CO, USA;

    Department of Biomedical Sciences, Colorado State University, 1601 Campus Delivery, Fort Collins, CO, USA 80523;

    Department of Electrical Computer Engineering, Colorado State University, 1373 Campus Delivery, Fort Collins, CO, USA 80523,School of Biomedical Engineering, Colorado State University, 1301 Campus Delivery, Fort Collins, CO, USA 80523;

    Department of Electrical Computer Engineering, Colorado State University, 1373 Campus Delivery, Fort Collins, CO, USA 80523,School of Biomedical Engineering, Colorado State University, 1301 Campus Delivery, Fort Collins, CO, USA 80523;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    multiphoton microscopy; time-resolved imaging; metabolism; mitochondria; cytochrome; ultrafast phenomena;

    机译:多光子显微镜时间分辨成像代谢;线粒体细胞色素超快现象;

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