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Isacoff, E. Y.

Publications and source records attributed to Isacoff, E. Y..

3 recordsLinked to original sources

Negative allosteric modulation of the glucagon receptor by RAMP2

Receptor activity-modifying proteins (RAMPs) modulate the activity of many Family B heterotrimeric guanine nucleotide-binding protein (G protein)-coupled receptors (GPCRs). The glucagon receptor (GCGR), a Family B GPCR responsible for maintenance of proper blood sugar levels, interacts with RAMP2, though the purpose and consequence of this interaction is poorly understood. Using a series of biochemical and cell-based assays, we show that RAMP2 interacts with and broadly inhibits GCGR-induced downstream signaling. Hydrogen-deuterium exchange monitored by mass spectrometry (HDX-MS) demonstrates that RAMP2 enhances local flexibility in select locations in and near the receptor extracellular domain (ECD) as well as at a key region in the 6th transmembrane helix, while single-molecule fluorescence resonance energy transfer (smFRET) experiments show that this RAMP2-induced ECD disorder results in inhibition of active and intermediate states of the intracellular face of the receptor. Using cryo-electron microscopy (cryoEM), we determined the structure of the GCGR-Gs complex at 2.9 [A] resolution in the presence of RAMP2. RAMP2 apparently does not interact with GCGR in an ordered manner, yet the ECD of GCGR is indeed largely disordered in the presence of RAMP2. This disorder is accompanied by rearrangements of several key areas of the receptor, resulting in the formation of a likely unproductive complex. Together, our studies suggest that RAMP2 acts as a negative allosteric modulator of GCGR by enhancing conformational sampling of the ECD.

biochemistry↗

Structural basis for assembly and lipid-mediated gating of LRRC8A:C volume-regulated anion channels

Leucine-rich repeat-containing protein 8 (LRRC8) family members form volume regulated anion channels activated by hypoosmotic cell swelling. LRRC8 channels are ubiquitously expressed in vertebrate cells as heteromeric assemblies of LRRC8A (Swell1) and LRRC8B-E subunits. Channels of different subunit composition have distinct properties that explain the functional diversity of LRRC8 currents implicated in a broad range of physiology. However, the basis for heteromeric LRRC8 channel assembly and function is unknown. Here, we leverage a fiducial-tagging strategy to determine single-particle cryo-electron microscopy structures of heterohexameric LRRC8A:C channels in detergent micelles and lipid nanodiscs in three conformations. LRRC8A:C channels show pronounced changes in channel architecture compared to homomeric channels due to heterotypic cytoplasmic LRR interactions that displace LRRs and the LRRC8C subunit away from the conduction axis and poise the channel for activation. The structures and associated functional studies further reveal that lipids embedded in the channel pore block ion conduction in the closed state. Together, our results provide insight into determinants for heteromeric LRRC8 channel assembly, activity, and gating by lipids.

biophysics↗

Restoration of high-sensitivity patterned vision in motion with an engineered light-gated G protein-coupled receptor

Inherited retinal degenerations (IRDs) result in blindness due to apoptotic cell death of rods and cones, but spare other retinal neurons, providing a potential that delivery of a light-activated signaling protein to surviving neurons may restore vision. We previously demonstrated that aspects of vision could be restored by introduction into surviving cells of a G protein-coupled receptor for glutamate (mGluR) bearing a tethered photoswitchable agonist. However, this system, containing one photoswitchable agonist per glutamate binding site, yielded low sensitivity, responding only to visual stimuli at the intensity of bright outdoor light, similar to channelrhodopsins. To increase sensitivity, we designed a multi-branched photoswitch, bearing four light-activatable glutamates for each glutamate binding site. When tethered to a modified mGluR2 expressed in retinal ganglion cells via intravitreal AAV gene delivery, this photoswitch boosted sensitivity by ~100-fold compared to the unbranched (single photo-ligand) photoswitch. This improvement in sensitivity enabled an IRD mouse model (rd1) to perform visually-guided object recognition under incidental room light and pattern recognition using standard LCD computer displays. The restored line pattern differentiation approached the acuity reported for normal mouse vision. Pattern recognition functioned as well as wildtype vision with line patterns moving at speeds of up to 36{degrees}/s. In summary, this two-component chemical-optogenetic approach combines high sensitivity and high acuity with superior motion vision, and, unlike optogenetic gene therapy, can be adjusted for dose, upgraded, as new photoswitches are developed, and discontinued at will.

neuroscience↗