Slow kinesin-dependent microtubular transport facilitates ribbon synapse assembly in developing cochlear inner hair cells

Author:

Voorn Roos Anouk1234ORCID,Sternbach Michael567,Jarysta Amandine8ORCID,Rankovic Vladan910,Tarchini Basile811ORCID,Wolf Fred5671213,Vogl Christian134ORCID

Affiliation:

1. Presynaptogenesis and Intracellular Transport in Hair Cells Junior Research Group, Institute for Auditory Neuroscience and InnerEarLab, University Medical Centre Goettingen

2. Göttingen Graduate Centre for Neurosciences, Biophysics and Molecular Biosciences

3. Collaborative Research Centre 889 ‘Cellular Mechanisms of Sensory Processing’

4. Auditory Neuroscience Group, Institute of Physiology, Medical University Innsbruck

5. Campus Institute for Dynamics of Biological Networks

6. Bernstein Centre for Computational Neuroscience

7. Max Planck Institute for Dynamics and Self-Organization

8. The Jackson Laboratory

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

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

11. Tufts University School of Medicine

12. Institute for Dynamics of Complex Systems Georg-August-University

13. Max Planck Institute for Multidisciplinary Sciences

Abstract

Sensory synapses are characterized by electron-dense presynaptic specializations, so-called synaptic ribbons. In cochlear inner hair cells (IHCs), ribbons play an essential role as core active zone (AZ) organizers, where they tether synaptic vesicles, cluster calcium channels and facilitate the temporally-precise release of primed vesicles. While a multitude of studies aimed to elucidate the molecular composition and function of IHC ribbon synapses, the developmental formation of these signalling complexes remains largely elusive to date. To address this shortcoming, we performed long-term live-cell imaging of fluorescently-labelled ribbon precursors in young postnatal IHCs to track ribbon precursor motion. We show that ribbon precursors utilize the apico-basal microtubular (MT) cytoskeleton for targeted trafficking to the presynapse, in a process reminiscent of slow axonal transport in neurons. During translocation, precursor volume regulation is achieved by highly dynamic structural plasticity – characterized by regularly-occurring fusion and fission events. Pharmacological MT destabilization negatively impacted on precursor translocation and attenuated structural plasticity, whereas genetic disruption of the anterograde molecular motor Kif1a impaired ribbon volume accumulation during developmental maturation. Combined, our data thus indicate an essential role of the MT cytoskeleton and Kif1a in adequate ribbon synapse formation and structural maintenance.

Publisher

eLife Sciences Publications, Ltd

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