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bioRxiv · 10.1101/2024.09.05.611421

In Vivo Optical Clearing of Mammalian Brain

Abstract

Established methods for imaging the living mammalian brain have, to date, taken the brains optical properties as fixed; we here demonstrate that it is possible to modify the optical properties of the brain itself to significantly enhance at-depth imaging while preserving native physiology. Using a small amount of any of several biocompatible materials to raise the refractive index of solutions superfusing the brain prior to imaging, we could increase several-fold the signals from the deepest cells normally visible and, under both one-photon and two-photon imaging, visualize cells previously too dim to see. The enhancement was observed for both anatomical and functional fluorescent reporters across a broad range of emission wavelengths. Importantly, visual tuning properties of cortical neurons in awake mice, and electrophysiological properties of neurons assessed ex vivo, were not altered by this procedure.

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Talei Franzesi, G., Gupta, I., Hu, M., Piatkveich, K., Yildirim, M., Zhao, J.-P., Eom, M., Han, S., Park, D., Andaraarachchi, H., Li, Z., Greenhagen, J., Islam, A. M., Vashishtha, P., Yaqoob, Z., Pak, N., Wissner-Gross, A. D., Martin-Alarcon, D., Veinot, J., So, P. T., Kortshagen, U., Yoon, Y.-G., Sur, M., Boyden, E. S.. 2024-09-07. In Vivo Optical Clearing of Mammalian Brain. https://doi.org/10.1101/2024.09.05.611421

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