Coherent light scattering from cellular dynamics in living tissues.

David D Nolte
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Abstract

This review examines the biological physics of intracellular transport probed by the coherent optics of dynamic light scattering from optically thick living tissues. Cells and their constituents are in constant motion, composed of a broad range of speeds spanning many orders of magnitude that reflect the wide array of functions and mechanisms that maintain cellular health. From the organelle scale of tens of nanometers and upward in size, the motion inside living tissue is actively driven rather than thermal, propelled by the hydrolysis of bioenergetic molecules and the forces of molecular motors. Active transport can mimic the random walks of thermal Brownian motion, but mean-squared displacements are far from thermal equilibrium and can display anomalous diffusion through Lévy or fractional Brownian walks. Despite the average isotropic three-dimensional environment of cells and tissues, active cellular or intracellular transport of single light-scattering objects is often pseudo-one-dimensional, for instance as organelle displacement persists along cytoskeletal tracks or as membranes displace along the normal to cell surfaces, albeit isotropically oriented in three dimensions. Coherent light scattering is a natural tool to characterize such tissue dynamics because persistent directed transport induces Doppler shifts in the scattered light. The many frequency-shifted partial waves from the complex and dynamic media interfere to produce dynamic speckle that reveals tissue-scale processes through speckle contrast imaging and fluctuation spectroscopy. Low-coherence interferometry, dynamic optical coherence tomography, diffusing-wave spectroscopy, diffuse-correlation spectroscopy, differential dynamic microscopy and digital holography offer coherent detection methods that shed light on intracellular processes. In health-care applications, altered states of cellular health and disease display altered cellular motions that imprint on the statistical fluctuations of the scattered light. For instance, the efficacy of medical therapeutics can be monitored by measuring the changes they induce in the Doppler spectra of livingex vivocancer biopsies.

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活体组织中细胞动态的相干光散射。
这篇综述探讨了通过光学厚活组织动态光散射的相干光学探测细胞内运输的生物物理学。细胞及其成分处于持续运动中,由跨越多个数量级的各种速度组成,反映了维持细胞健康的各种功能和机制。从数十纳米大小的细胞器开始,活体组织内部的运动是由生物能分子的水解作用和分子马达的作用力主动驱动的,而不是热驱动的。主动运输可模仿热布朗运动的随机行走,但平均位移远离热平衡,并可通过莱维或分数布朗行走显示异常扩散。尽管细胞和组织具有平均各向同性的三维环境,但单个光散射物体在细胞或细胞内的主动传输往往是伪一维的,例如,细胞器沿着细胞骨架轨道持续位移,或者细胞膜沿着细胞表面的法线位移,尽管在三维空间中是各向同性的。相干光散射是表征此类组织动力学的天然工具,因为持续的定向传输会引起散射光的多普勒频移。来自复杂动态介质的许多频移偏波相互干扰,产生动态斑点,通过斑点对比成像和波动光谱学揭示组织尺度过程。低相干干涉仪、动态光学相干断层扫描、扩散波光谱学、扩散相关光谱学、差分动态显微镜和数字全息技术提供的相干检测方法可揭示细胞内的过程。在医疗保健应用中,细胞健康和疾病状态的改变会显示出细胞运动的改变,而这些改变会影响散射光的统计波动。例如,可以通过测量活体癌症活检组织的多普勒光谱变化来监测医疗疗法的疗效。
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