. The major objective of the present proposal is to identify peripheral neurotransmitters/neuromodulators and associated biochemical systems of hair-cell organs. Peripheral neurotransmitters voltage-gated calcium channels, and neurotransmitter receptors will be examined for mammalian and fish model systems. The main hypotheses address the existence and function of non-glutamate hair cell transmitter(s), non-L-type voltage- gated calcium channel(s), and recently-described efferent neurotransmitter receptors for acetylcholine and dopamine. Methods include: 1) high- resolution, high-performance liquid chromatography (HPLC) with detection by electrochemistry, fluorescence, radioactivity, and radioimmunoassay, 2) analysis of tissue content, and depolarization-induced release in vitro of presumptive neurotransmitters and neuromodulators from a saccular hair cell sheet for which the hair cell is the only intact cell type, and sound-induced release in vivo into cochlear perilymph, 3) biological assay of compounds utilizing Xenopus laevis lateral line, 4) morphological localization of molecular entities by immunochemical and in situ hybridization methods, 5) sequence analysis as to molecular function after RT-PC (reverse transcription polymerase chain reaction) of voltage-gated calcium channels associated with transmitter release of haircells, and 6) functional sequence analysis after RT-PCR of efferent neurotransmitter receptors for acetylcholine and dopamine. Using these methods, it is planned to identify chemically and determine the biological activity of compounds release from saccular sensory cells in a calcium-dependent manner by low level potassium depolarization and released into perilymph by sound stimulation. Biosynthesis of neuroactive monoamines and related molecules will be studied utilizing radioactive precursors and HPLC. We will demonstrate molecular characteristics and localization of a hair cell-associated, non-L-type voltage-gated calcium channel and efferent- related a. nicotinic receptor and dopamine D2(ing) and D, receptors. This approach, utilizing methods of micro-biochemistry, should result in continued, detailed elucidation of structure and molecular function of peripheral neurotransmitter systems of hearing and balance, pointing the way to development of therapies for transmitter-related hearing loss, vertigo, and tinnitus.

Agency
National Institute of Health (NIH)
Institute
National Institute on Deafness and Other Communication Disorders (NIDCD)
Type
Research Project (R01)
Project #
5R01DC000156-19
Application #
6030127
Study Section
Special Emphasis Panel (ZRG1-CMS (01))
Project Start
1980-05-01
Project End
2003-06-30
Budget Start
1999-07-01
Budget End
2000-06-30
Support Year
19
Fiscal Year
1999
Total Cost
Indirect Cost
Name
Wayne State University
Department
Otolaryngology
Type
Schools of Medicine
DUNS #
City
Detroit
State
MI
Country
United States
Zip Code
48202
Selvakumar, Dakshnamurthy; Drescher, Marian J; Deckard, Nathan A et al. (2017) Dopamine D1A directly interacts with otoferlin synaptic pathway proteins: Ca2+ and phosphorylation underlie an NSF-to-AP2mu1 molecular switch. Biochem J 474:79-104
Drescher, Dennis G; Dakshnamurthy, Selvakumar; Drescher, Marian J et al. (2016) Surface Plasmon Resonance (SPR) Analysis of Binding Interactions of Inner-Ear Proteins. Methods Mol Biol 1427:165-87
Ramakrishnan, Neeliyath A; Drescher, Marian J; Morley, Barbara J et al. (2014) Calcium regulates molecular interactions of otoferlin with soluble NSF attachment protein receptor (SNARE) proteins required for hair cell exocytosis. J Biol Chem 289:8750-66
Selvakumar, Dakshnamurthy; Drescher, Marian J; Drescher, Dennis G (2013) Cyclic nucleotide-gated channel ?-3 (CNGA3) interacts with stereocilia tip-link cadherin 23 + exon 68 or alternatively with myosin VIIa, two proteins required for hair cell mechanotransduction. J Biol Chem 288:7215-29
Ramakrishnan, Neeliyath A; Drescher, Marian J; Drescher, Dennis G (2012) The SNARE complex in neuronal and sensory cells. Mol Cell Neurosci 50:58-69
Ramakrishnan, Neeliyath A; Drescher, Marian J; Khan, Khalid M et al. (2012) HCN1 and HCN2 proteins are expressed in cochlear hair cells: HCN1 can form a ternary complex with protocadherin 15 CD3 and F-actin-binding filamin A or can interact with HCN2. J Biol Chem 287:37628-46
Selvakumar, Dakshnamurthy; Drescher, Marian J; Dowdall, Jayme R et al. (2012) CNGA3 is expressed in inner ear hair cells and binds to an intracellular C-terminus domain of EMILIN1. Biochem J 443:463-76
Drescher, Dennis G; Cho, Won Jin; Drescher, Marian J (2011) Identification of the porosome complex in the hair cell. Cell Biol Int Rep (2010) 18:
Drescher, M J; Cho, W J; Folbe, A J et al. (2010) An adenylyl cyclase signaling pathway predicts direct dopaminergic input to vestibular hair cells. Neuroscience 171:1054-74
Ramakrishnan, Neeliyath A; Drescher, Marian J; Drescher, Dennis G (2009) Direct interaction of otoferlin with syntaxin 1A, SNAP-25, and the L-type voltage-gated calcium channel Cav1.3. J Biol Chem 284:1364-72

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