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.

Hearing Research
|January 1, 1994
PubMed

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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