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视杆和视锥光电传导反应参数的数学分析。

Mathematical analysis of phototransduction reaction parameters in rods and cones.

机构信息

Department of Integrative & Systems Physiology, Faculty of Medical Sciences, University of Fukui, Fukui, Fukui, Japan.

Department of Life Sciences, Ritsumeikan University, 1-1-1 Nojihigashi, Kusatsu, Shiga, 525-8577, Japan.

出版信息

Sci Rep. 2022 Nov 14;12(1):19529. doi: 10.1038/s41598-022-23069-0.

Abstract

Retinal photoreceptor cells, rods and cones, convert photons of light into chemical and electrical signals as the first step of the visual transduction cascade. Although the chemical processes in the phototransduction system are very similar to each other in these photoreceptors, the light sensitivity and time resolution of the photoresponse in rods are functionally different than those in the photoresponses of cones. To systematically investigate how photoresponses are divergently regulated in rods and cones, we have developed a detailed mathematical model on the basis of the Hamer model. The current model successfully reconstructed light intensity-, ATP- and GTP-dependent changes in concentrations of phosphorylated visual pigments (VPs), activated transducins (Tr*s) and phosphodiesterases (PDEs) in rods and cones. In comparison to rods, the lower light sensitivity of cones was attributed not only to the lower affinity of activated VPs for Trs but also to the faster desensitization of the VPs. The assumption of an intermediate inactive state, MII, in the thermal decay of activated VPs was essential for inducing faster inactivation of VPs in rods, and possibly also in cones.

摘要

视网膜光感受器细胞(视杆细胞和视锥细胞)将光量子转化为化学和电信号,作为视觉转导级联的第一步。虽然这些光感受器中的光转导系统的化学过程非常相似,但视杆细胞的光反应的光灵敏度和时间分辨率与视锥细胞的光响应在功能上有所不同。为了系统地研究光反应在视杆细胞和视锥细胞中如何被不同地调节,我们在 Hamer 模型的基础上,建立了一个详细的数学模型。该模型成功地重建了视紫红质(VP)、激活的转导蛋白(Tr*)和磷酸二酯酶(PDE)在视杆细胞和视锥细胞中的浓度对光强度、ATP 和 GTP 的依赖性变化。与视杆细胞相比,视锥细胞的光灵敏度较低,不仅归因于激活的 VP 与 Tr 的亲和力较低,还归因于 VP 的快速脱敏。在激活的 VP 的热衰减中存在中间非活性状态 MII 的假设,对于诱导视杆细胞中 VP 的更快失活是必不可少的,可能在视锥细胞中也是如此。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9f1a/9663442/8e7f9d232c85/41598_2022_23069_Fig1_HTML.jpg

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