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Electrophysiological Analysis of Retinal Organoid Development Using Three-Dimensional Microelectrodes of Liquid Metals.

Sanghoon LeeWon Gi ChungHan JeongGang CuiEnji KimJeong Ah LimHunkyu SeoYong Won KwonSuk Ho ByeonJunwon LeeJang-Ung Park
Published in: Advanced materials (Deerfield Beach, Fla.) (2024)
Despite of the substantial potential of human-derived retinal organoids, the degeneration of retinal ganglion cells (RGCs) during maturation limits their utility in assessing the functionality of later-born retinal cell subtypes. Additionally, conventional analyses primarily rely on fluorescent emissions, which limits the detection of actual cell functionality while risking damage to the three-dimensional (3D) cytoarchitecture of organoids. Here, we present an electrophysiological analysis to monitor RGC development in early to mid-stage retinal organoids, and compare distinct features with fully-mature mouse retina. Our approach utilizes high-resolution 3D printing of liquid-metal microelectrodes, enabling precise targeting of specific inner retinal layers within organoids. The adaptable distribution and softness of these microelectrodes facilitate the spatiotemporal recording of inner retinal signals. Our study not only demonstrates the functional properties of RGCs in retinal organoid development but also provides insights into their synaptic connectivity, reminiscent of fetal native retinas. Further comparison with fully-mature mouse retina in vivo verifies the organoid features, highlighting the potential of early-stage retinal organoids in biomedical research. This article is protected by copyright. All rights reserved.
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