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Hanke-Gogokhia, C.

Publications and source records attributed to Hanke-Gogokhia, C..

2 recordsLinked to original sources

Rho/ROCK-dependent actomyosin contractility drives extracellular vesicle release from the cilium

The release of extracellular vesicles (EV) from the primary cilium is a conserved process observed in many cell types. It serves as a rapid and efficient mechanism to release select proteins from the cilium, which can be used for either intercellular communication or membrane material disposal. Previous studies have shown that the release of EVs from the cilium relies on the actin cytoskeleton and proposed several molecular mechanisms that may perform this function. Using the model of IMCD3 cells, we now demonstrate that this process relies on actomyosin contractility supported by non-muscle myosin IIA acting downstream of the RhoA-ROCK signaling pathway. We further showed that the cilia of these cells release EVs independently of de novo actin polymerization, which we confirmed using an in vivo model of mutant photoreceptor cells that release massive amounts of vesicles from their cilia instead of elaborating into light-sensitive outer segment membrane structures.

cell biology↗

Molecular identification of wide-field amacrine cells in mouse retina that encode stimulus orientation

Visual information processing in the retina is sculpted by a diverse group of inhibitory interneurons called amacrine cells. For most of the >60 amacrine cell types, molecular identities and specialized functional attributes remain unknown. Here, we developed an intersectional genetic strategy to target a group of wide-field amacrine cells (WACs) in mouse retina that co-express the transcription factor Bhlhe22 and the Kappa Opioid Receptor (KOR; B/K WACs). B/K WACs feature straight, unbranched dendrites spanning over 0.5 mm (~15 deg visual angle) and produce non-spiking responses to either light increments or decrements. Two-photon dendritic population imaging reveals Ca2+ signals tuned to the physical orientations of B/K WAC dendrites, signifying a robust structure-function alignment. B/K WACs establish divergent connections with multiple retinal neurons, including unexpected connections with non-orientation-tuned ganglion cells and bipolar cells. Our work sets the stage for future comprehensive investigations of the most enigmatic group of retinal neurons: WACs.

neuroscience↗