Samimi Kayvan, Pattnaik Bikash R, Capowski Elizabeth E, Saha Krishanu, Gamm David M, Skala Melissa C
Morgridge Institute for Research, Madison, WI 53715, USA.
McPherson Eye Research Institute, University of Wisconsin-Madison, Madison, WI 53705, USA.
Biomed Opt Express. 2022 May 18;13(6):3476-3492. doi: 10.1364/BOE.455783. eCollection 2022 Jun 1.
Photoreceptors are the key functional cell types responsible for the initiation of vision in the retina. Phototransduction involves isomerization and conversion of vitamin A compounds, known as retinoids, and their recycling through the visual cycle. We demonstrate a functional readout of the visual cycle in photoreceptors within stem cell-derived retinal organoids and mouse retinal explants based on spectral and lifetime changes in autofluorescence of the visual cycle retinoids after exposure to light or chemical stimuli. We also apply a simultaneous two- and three-photon excitation method that provides specific signals and increases contrast between these retinoids, allowing for reliable detection of their presence and conversion within photoreceptors. This multiphoton imaging technique resolves the slow dynamics of visual cycle reactions and can enable high-throughput functional screening of retinal tissues and organoid cultures with single-cell resolution.
光感受器是视网膜中负责启动视觉的关键功能细胞类型。光转导涉及维生素A化合物(即类视黄醇)的异构化和转化,以及它们通过视觉循环的再循环。我们基于暴露于光或化学刺激后视觉循环类视黄醇的自发荧光光谱和寿命变化,展示了干细胞来源的视网膜类器官和小鼠视网膜外植体中光感受器视觉循环的功能读数。我们还应用了同时双光子和三光子激发方法,该方法提供特定信号并增加这些类视黄醇之间的对比度,从而能够可靠地检测它们在光感受器中的存在和转化。这种多光子成像技术解决了视觉循环反应的缓慢动力学问题,并能够以单细胞分辨率对视网膜组织和类器官培养物进行高通量功能筛选。