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光视网膜图揭示了活体人眼中光传导的初始步骤。

The optoretinogram reveals the primary steps of phototransduction in the living human eye.

机构信息

Department of Ophthalmology, University of Washington, Seattle, WA 98109, USA.

Hansen Experimental Physics Laboratory, Stanford, CA 94305, USA.

出版信息

Sci Adv. 2020 Sep 9;6(37). doi: 10.1126/sciadv.abc1124. Print 2020 Sep.

Abstract

Photoreceptors initiate vision by converting photons to electrical activity. The onset of the phototransduction cascade is marked by the isomerization of photopigments upon light capture. We revealed that the onset of phototransduction is accompanied by a rapid (<5 ms), nanometer-scale electromechanical deformation in individual human cone photoreceptors. Characterizing this biophysical phenomenon associated with phototransduction in vivo was enabled by high-speed phase-resolved optical coherence tomography in a line-field configuration that allowed sufficient spatiotemporal resolution to visualize the nanometer/millisecond-scale light-induced shape change in photoreceptors. The deformation was explained as the optical manifestation of electrical activity, caused due to rapid charge displacement following isomerization, resulting in changes of electrical potential and surface tension within the photoreceptor disc membranes. These all-optical recordings of light-induced activity in the human retina constitute an optoretinogram and hold remarkable potential to reveal the biophysical correlates of neural activity in health and disease.

摘要

感光细胞通过将光子转化为电活动来启动视觉。光转化级联的开始标志着光捕获时光色素的异构化。我们揭示了,在单个人类圆锥感光细胞中,光转化的开始伴随着快速(<5 毫秒)、纳米级的机电变形。通过线场配置的高速相分辨光学相干断层扫描实现了对这种与体内光转化相关的生物物理现象的描述,该配置具有足够的时空分辨率,可以可视化感光细胞中纳米/毫秒级的光诱导形状变化。这种变形被解释为电活动的光学表现,是由于异构化后快速的电荷位移引起的,导致感光器盘膜内的电势和表面张力发生变化。这些对人视网膜中光诱导活动的全光学记录构成了光视网膜图,具有揭示健康和疾病中神经活动的生物物理相关性的巨大潜力。

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