TY - JOUR
T1 - The local translation of KNa in dendritic projections of auditory neurons and the roles of KNa in the transition from hidden to overt hearing loss
AU - Lee, Jeong Han
AU - Kang, Mincheol
AU - Park, Seojin
AU - Perez-Flores, Maria C.
AU - Zhang, Xiao Dong
AU - Wang, Wenying
AU - Gratton, Michael Anne
AU - Chiamvimonvat, Nipavan
AU - Yamoah, Ebenezer N.
N1 - Funding Information:
This work was supported by grants to E.N.Y. from the National Institutes of Health (DC016099, DC05135, and AG051443, DC015252, AG060504). The project was supported by grants from the National Institutes of Health (P01 AG051443, R01 DC015135, DC016099, DC015252, and R01 AG060504) to E. N. Y.
Publisher Copyright:
© Lee et al.
PY - 2019
Y1 - 2019
N2 - Local and privileged expression of dendritic proteins allows segregation of distinct functions in a single neuron but may represent one of the underlying mechanisms for early and insidious presentation of sensory neuropathy. Tangible characteristics of early hearing loss (HL) are defined in correlation with nascent hidden hearing loss (HHL) in humans and animal models. Despite the plethora of causes of HL, only two prevailing mechanisms for HHL have been identified, and in both cases, common structural deficits are implicated in inner hair cell synapses, and demyelination of the auditory nerve (AN). We uncovered that Na+-activated K+ (KNa) mRNA and channel proteins are distinctly and locally expressed in dendritic projections of primary ANs and genetic deletion of KNa channels (Kcnt1 and Kcnt2) results in the loss of proper AN synaptic function, characterized as HHL, without structural synaptic alterations. We further demonstrate that the local functional synaptic alterations transition from HHL to increased hearing-threshold, which entails changes in global Ca2+ homeostasis, activation of caspases 3/9, impaired regulation of inositol triphosphate receptor 1 (IP3R1), and apoptosis-mediated neurodegeneration. Thus, the present study demonstrates how local synaptic dysfunction results in an apparent latent pathological phenotype (HHL) and, if undetected, can lead to overt HL. It also highlights, for the first time, that HHL can precede structural synaptic dysfunction and AN demyelination. The stepwise cellular mechanisms from HHL to canonical HL are revealed, providing a platform for intervention to prevent lasting and irreversible age-related hearing loss (ARHL).
AB - Local and privileged expression of dendritic proteins allows segregation of distinct functions in a single neuron but may represent one of the underlying mechanisms for early and insidious presentation of sensory neuropathy. Tangible characteristics of early hearing loss (HL) are defined in correlation with nascent hidden hearing loss (HHL) in humans and animal models. Despite the plethora of causes of HL, only two prevailing mechanisms for HHL have been identified, and in both cases, common structural deficits are implicated in inner hair cell synapses, and demyelination of the auditory nerve (AN). We uncovered that Na+-activated K+ (KNa) mRNA and channel proteins are distinctly and locally expressed in dendritic projections of primary ANs and genetic deletion of KNa channels (Kcnt1 and Kcnt2) results in the loss of proper AN synaptic function, characterized as HHL, without structural synaptic alterations. We further demonstrate that the local functional synaptic alterations transition from HHL to increased hearing-threshold, which entails changes in global Ca2+ homeostasis, activation of caspases 3/9, impaired regulation of inositol triphosphate receptor 1 (IP3R1), and apoptosis-mediated neurodegeneration. Thus, the present study demonstrates how local synaptic dysfunction results in an apparent latent pathological phenotype (HHL) and, if undetected, can lead to overt HL. It also highlights, for the first time, that HHL can precede structural synaptic dysfunction and AN demyelination. The stepwise cellular mechanisms from HHL to canonical HL are revealed, providing a platform for intervention to prevent lasting and irreversible age-related hearing loss (ARHL).
KW - Age-related hearing loss
KW - Auditory neurons
KW - Axonal protein translation
KW - Hearing loss
KW - Potassium channels
UR - http://www.scopus.com/inward/record.url?scp=85077298659&partnerID=8YFLogxK
U2 - 10.18632/aging.102553
DO - 10.18632/aging.102553
M3 - Review article
C2 - 31812952
AN - SCOPUS:85077298659
SN - 1945-4589
VL - 11
SP - 11541
EP - 11564
JO - Aging
JF - Aging
IS - 23
ER -