CaBP1 and 2 enable sustained CaV1.3 calcium currents and synaptic transmission in inner hair cells

Author:

Oestreicher David12,Chepurwar Shashank34,Kusch Kathrin56,Rankovic Vladan67,Jung Sangyong6,Strenzke Nicola34ORCID,Pangrsic Tina1248

Affiliation:

1. Experimental Otology Group, InnerEarLab, Department of Otolaryngology, University Medical Center Göttingen

2. Auditory Neuroscience Group, Max Planck Institute for Multidisciplinary Sciences

3. Auditory Systems Physiology Group, Institute for Auditory Neuroscience, InnerEarLab, University Medical Center Göttingen

4. Collaborative Research Center 889, University of Göttingen

5. Functional Auditory Genomics, Institute for Auditory Neuroscience, University Medical Center Göttingen

6. Institute for Auditory Neuroscience and InnerEarLab, University Medical Center Göttingen

7. Restorative Cochlear Genomics Group, Auditory Neuroscience and Optogenetics Laboratory, German Primate Center

8. Multiscale Bioimaging Cluster of Excellence (MBExC), University of Göttingen

Abstract

To encode continuous sound stimuli, the inner hair cell (IHC) ribbon synapses utilize calcium-binding proteins (CaBPs), which reduce the inactivation of their Ca V 1.3 calcium channels. Mutations in the CABP2 gene underlie non-syndromic autosomal recessive hearing loss DFNB93. Besides CaBP2, the structurally related CaBP1 is highly abundant in the IHCs. Here, we investigated how the two CaBPs cooperatively regulate IHC synaptic function. In Cabp1/2 double-knockout mice, we find strongly enhanced Ca V 1.3 inactivation, slowed recovery from inactivation and impaired sustained exocytosis. Already mild IHC activation further reduces the availability of channels to trigger synaptic transmission and may effectively silence synapses. Spontaneous and sound-evoked responses of spiral ganglion neurons in vivo are strikingly reduced and strongly depend on stimulation rates. Transgenic expression of CaBP2 leads to substantial recovery of IHC synaptic function and hearing sensitivity. We conclude that CaBP1 and 2 act together to suppress voltage- and calcium-dependent inactivation of IHC Ca V 1.3 channels in order to support sufficient rate of exocytosis and enable fast, temporally precise and indefatigable sound encoding.

Publisher

eLife Sciences Publications, Ltd

Reference66 articles.

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