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Spontaneous retinal waves are periodic bursts of correlated activity observed in the developing retina before the onset of vision. In mice, the circuits that initiate and propagate retinal waves change rapidly during development, starting embryonically and ending at eye opening (postnatal day 14)1. As retinal circuits develop, the spatiotemporal properties of retinal waves change dramatically2,3. Several studies support that those specific spatiotemporal properties instruct the development of the visual system: asynchronous activity between the eyes instructs eye-specific segregation4, wave area size instructs the refinement of retinotopic axons in binocular brain regions5,6, and the propagation direction of waves has been implicated to instruct the direction selectivity circuits in the superior colliculus3. Beyond neural circuits, retinal waves are responsible for the development of the permeability of the blood vasculature7. Additionally, it was discovered that the stage II retinal waves control the outgrowth of receptive-field areas and stabilize it in retinal ganglion cells (RGCs)8. Critically, aberrant retinal waves during development could be the basis of various neurodevelopmental disorders, and indeed, retinal waves are abnormal in a mouse model of congenital nystagmus3. Given their critical role in early visual system development and implications for disease, there is a need a to record the spatiotemporal dynamics of retinal waves at any age and in any animal model.
Several methods have emerged to study retinal waves. Both single-cell electrophysiology9,10 and calcium imaging11,12,13,14,15 have led to seminal findings about circuits and the function of retinal waves. Here, we focus on multielectrode array recordings (MEA), a method that has been used since the early investigation of retinal waves16 and has continued to improve as a technique2. MEAs enable simultaneous extracellular recording of action potentials from hundreds to thousands of RGCs, allowing researchers to track wave initiation, propagation, and termination similarly to what is possible with calcium imaging. Since MEAs directly record action potential from RGCs, MEAs can be used to study various genetic mouse models or non-model organisms without the added complication of introducing a calcium indicator. Tissue can also be cultured directly in the MEA, enabling very long recording times. MEAs are also highly scalable, with current products enabling up to six active MEAs at once, which could enable rapid assessment of retinas and catalyze drug discovery. Perhaps the biggest strength of MEAs is their ability to sample many cells at a high sampling rate, which enables laboratories across the world to quickly obtain rich datasets but requires expertise in postprocessing.
The primary goal of this protocol is to provide a detailed and reproducible protocol for preparing retinal tissue and performing electrophysiological recordings using a single-well High-density MEA (HD-MEA) system to study spontaneous retinal waves ex vivo. This method ensures high-throughput and long-duration data acquisition, making it suitable for a wide range of developmental and disease-related studies. The new advanced CMOS-based HD-MEA system, which allows >1,000 electrode sites at once, offers several advantages over traditional electrophysiological approaches. Its high-density electrode array (26,400 electrodes) enables precise, simultaneous extracellular recordings from up to 1,012 RGCs, capturing fine-scale spatial activity patterns. The single-well design provides uniform recording conditions17. Additionally, this system allows for long-term recordings lasting several hours, making it possible to study wave dynamics under various physiological and pharmacological conditions without significant signal degradation18. By providing a protocol, this study aims to make HD-MEA technology accessible to a broader audience of researchers in neuroscience, ophthalmology, and vision science. This method represents a significant step forward in the study of retinal waves, offering new avenues to study early visual system development, disease mechanisms, and potential therapeutic interventions.