Force sensing GPR133 is essential for normal balance and modulates vestibular hair cell membrane excitability via Gi signaling and CNGA3 coupling
yang, z.; zhou, s.; wang, m.; ping, y.; fu, x.; zhao, r.; xiao, p.; lu, y.; zhang, q.; song, z.; xi, y.; lin, h.; zheng, y.; qin, w.; yi, f.; Yu, X.; chai, r.; Sun, J.
Show abstract
The maintenance of normal balance sensing is a fundamental prerequisite for virtually every activity of daily life. As one set most important balance information collectors, vestibular hair cells convert mechanical stimuli from head movement into electrical signals through a mechanoelectrical transduction (MET) process. The molecular mechanism underlying equilibrioception and MET in vestibular hair cells is not well understood but is generally believed to be mediated by ion channels. However, whether these procedures are also mediated by other receptors, such as GPCRs, which are known to govern light, odorant and taste sensing, is not known. Here, by screening the expression of force-sensitive adhesion GPCRs in vestibular hair cells and phenotype profiling in animal models, we identified that a seven-transmembrane receptor, GPR133, was able to sense force in utricle hair cells and was required for maintenance of normal equilibrioception. Notably, GPR133 converted mechanical stimuli into changes in intracellular cAMP levels through Gi engagement and then modulated plasma membrane excitability and mediated MET by coupling to CNGA3 activity changes in approximately 30% of GPR133-expressing utricle hair cells. GPR133-mediated MET and its coupling with CNGA3 were recapitulated by an in vitro reconstitution system. Further chemical labeling, mass spectrometry and cryo-EM analysis provided potential structural information on force-induced GPR133 activation and Gi3 engagement. Collectively, our findings reveal the essential role of GPR133 in the maintenance of normal equilibrioception and suggest that GPCR family members can participate in the MET process in utricle hair cells through modulation of intracellular second messenger levels and ion channel coupling.
Matching journals
The top 2 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- TRPA1 activation in non-sensory supporting cells contributes to regulation of cochlear sensitivity after acoustic trauma 96%
- Sensory Schwann cells set perceptual thresholds for touch and selectively regulate mechanical nociception 95%
- Hierarchical regulation of functionally antagonistic neuropeptides expressed in a single neuron pair 95%
Similar papers in this journal
- TMEM16 and OSCA/TMEM63 proteins share a conserved potential to permeate ions and phospholipids 94%
- An antagonism between Spinophilin and Syd-1 operates upstream of memory promoting presynaptic long-term plasticity 94%
- Coupling of Slack and NaV1.6 sensitizes Slack to quinidine blockade and guides anti-seizure strategy development 94%
Similar papers in this journal
- Intradental mechano-nociceptors serve as sentinels that prevent tooth damage 95%
- Ca2+-phospholipid-dependent regulation of Munc13-1 is essential for post-tetanic potentiation at mossy fiber synapses and supports working memory 94%
- Spinal microcircuits go through multiphasic homeostatic compensations in a mouse model of motoneuron degeneration 94%
Similar papers in this journal
- Mechanical gating of the auditory transduction channel TMC1 involves the fourth and sixth transmembrane helices 95%
- A tonically active master neuron continuously modulates mutually exclusive motor states at two timescales 94%
- Parabrachial neuron types categorically encode thermoregulation variables during heat defense 94%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.