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Ravasio, C.

Publications and source records attributed to Ravasio, C..

2 recordsLinked to original sources

Large-scale deep tissue voltage imaging with targeted illumination confocal microscopy

Voltage imaging with cellular specificity has been made possible by the tremendous advances in genetically encoded voltage indicators (GEVIs). However, the kilohertz rates required for voltage imaging lead to weak signals. Moreover, out-of-focus fluorescence and tissue scattering produce background that both undermines signal-to-noise ratio (SNR) and induces crosstalk between cells, making reliable in vivo imaging in densely labeled tissue highly challenging. We describe a microscope that combines the distinct advantages of targeted illumination and confocal gating, while also maximizing signal detection efficiency. The resulting benefits in SNR and crosstalk reduction are quantified experimentally and theoretically. Our microscope provides a versatile solution for enabling high-fidelity in vivo voltage imaging at large scales and penetration depths, which we demonstrate across a wide range of imaging conditions and different GEVI classes.

neuroscience↗

Deep brain stimulation creates information lesion through membrane depolarization

Deep brain stimulation (DBS) is a promising neuromodulation therapy that alters neural activity via intracranial electrical stimulation. However, the neurophysiological mechanisms of DBS remain largely unknown, because of the difficulty of obtaining cellular resolution recordings without electrical interference. Here, we performed high-speed membrane voltage fluorescence imaging of individual hippocampal CA1 neurons during DBS in awake mice. We discovered that DBS, delivered at either 40Hz or 140Hz, reliably depolarizes somatic membrane potentials. Further, DBS enhanced spike rates and paced membrane voltage and spike timing at the stimulation frequency, though more prominent at 40Hz than 140Hz. To determine how DBS induced membrane voltage change impacts neurons ability to process inputs, we optogenetically evoked membrane depolarization. We found that neurons become unreliable in responding to optogenetic inputs during DBS, particularly during 140Hz DBS. These results demonstrate that DBS produces powerful membrane depolarization that interferes with neurons ability to process inputs, creating information lesion.

neuroscience↗