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Updated: Aug 9, 2026

Postsynaptic Recordings at Afferent Dendrites Contacting Cochlear Inner Hair Cells: Monitoring Multivesicular Release at a Ribbon Synapse
Published on: February 10, 2011
Calcium and calmodulin inhibit phosphorylation of a novel auditory nerve protein
D E Coling1, R M Naik, J Schacht
1Kresge Hearing Research Institute, University of Michigan, Ann Arbor 48109-0506.
Abstract:
The growing use of cochlear prosthetic devices and demonstrations of direct ototoxic insult to spiral ganglion neurons make it imperative to gain an understanding of intracellular biochemical regulation in primary sensory neurons. Calcium and calmodulin regulate many aspects of neuronal cellular physiology through stimulation of protein kinase activity. We have previously demonstrated the presence of calmodulin-dependent protein kinase substrates in the guinea pig modiolus and, additionally, the presence of two proteins (12 kDa and 81 kDa, designated as p12 and p81) whose phosphorylation is blocked by calcium and calmodulin (Coling and Schacht, 1991). Here, we investigate three models for this unusual regulatory mechanism. The effects of calcium, calmodulin and trifluoperazine on dephosphorylation of both proteins suggests that calmodulin inhibits protein kinase activity. P81 was identified by immunoprecipitation as the myristoylated alanine-rich C kinase substrate (MARCKS), a ubiquitous actin-binding protein. Two observations indicate that MARCKS may be regulated differently in acoustic nerve than in cerebral cortex. 32P incorporation was significantly higher in acoustic nerve than in brain. The calmodulin-dependent block of MARCKS phosphorylation was observed only in acoustic nerve. p12 shares several characteristics with myelin basic protein (MBP). We used a double label assay with 32P autoradiography and immunoblotting to show that p12 is in fact distinct from MBP. We suggest that either p12 or p12 kinase may be either specific to the peripheral auditory system or novel marker proteins for that tissue.
Insights
Calcium and calmodulin regulate spiral ganglion neurons, impacting cochlear prosthetic device function. This study identifies MARCKS and a novel protein (p12) in the acoustic nerve, revealing unique regulatory mechanisms.
Area of Science:
- Neuroscience
- Biochemistry
- Cellular Physiology
Background:
- Cochlear prosthetic devices necessitate understanding spiral ganglion neuron regulation.
- Calcium and calmodulin are key regulators of neuronal physiology via protein kinase activity.
- Previous work identified two proteins (p12, p81) in guinea pig modiolus with calcium/calmodulin-blocked phosphorylation.
Purpose of the Study:
- Investigate the unusual regulatory mechanism of p12 and p81 phosphorylation.
- Identify the proteins involved and their specific regulatory pathways.
- Determine if these proteins are unique to the peripheral auditory system.
Main Methods:
- Investigated effects of calcium, calmodulin, and trifluoperazine on protein dephosphorylation.
- Utilized immunoprecipitation to identify p81.
- Employed a double label assay (32P autoradiography and immunoblotting) to analyze p12.
Main Results:
- Calmodulin appears to inhibit protein kinase activity, affecting dephosphorylation.
- p81 was identified as myristoylated alanine-rich C kinase substrate (MARCKS).
- MARCKS phosphorylation and calmodulin-dependent regulation differ in acoustic nerve compared to cerebral cortex.
- p12 is distinct from myelin basic protein (MBP).
Conclusions:
- MARCKS exhibits unique regulation in the acoustic nerve.
- p12 may be a novel marker protein specific to the peripheral auditory system.
- Further research into p12 and its kinase is warranted for understanding auditory system biochemistry.
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