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Martemyanov, K.

Publications and source records attributed to Martemyanov, K..

2 recordsLinked to original sources

Fine-tuning GPCR-mediated neuromodulation by biasing signaling through different G-protein subunits

GPCRs mediate neuromodulation through activation of heterotrimeric G-proteins (G{beta}{gamma}). Classical models depict that G-protein activation leads to a one-to-one formation of G-GTP and G{beta}{gamma} species. Each of these species propagates signaling by independently acting on effectors, but the mechanisms by which response fidelity is ensured by coordinating G and G{beta}{gamma} responses remain unknown. Here, we reveal a paradigm of G-protein regulation whereby the neuronal protein GINIP biases inhibitory GPCR responses to favor G{beta}{gamma} over G signaling. Tight binding of GINIP to Gi-GTP precludes its association with effectors (adenylyl cyclase) and, simultaneously, with Regulator-of-G-protein-Signaling (RGS) proteins that accelerate deactivation. As a consequence, Gi-GTP signaling is dampened whereas G{beta}{gamma} signaling is enhanced. We show that this mechanism is essential to prevent imbalances of neurotransmission that underlie increased seizure susceptibility in vivo. Our findings reveal an additional layer of regulation within a quintessential mechanism of signal transduction that sets the tone of neurotransmission.

biochemistry↗

Retinal circuits driving a non-image forming visual behavior

Outer retinal circuits that drive non-image forming vision in mammals are unknown. Rods and cones signal light increments and decrements to the brain through the ON and OFF pathways, respectively. Although their contribution to image-forming vision is known, the contributions of the ON and OFF pathway to the pupillary light response (PLR), a non-image forming behavior, are unexplored. Here we use genetically modified mouse lines, to comprehensively define the outer retinal circuits driving the PLR. The OFF pathway, which mirrors the ON pathway in image-forming vision, plays no role in the PLR. We found that rods use the primary rod pathway to drive the PLR at scotopic light levels. At photopic light levels, the primary and secondary rod pathways drive normal PLR. Importantly, we find that cones are unable to compensate for rods. Thus, retinal circuit dynamics allow rods to drive the PLR across a wide range of light intensities.

neuroscience↗