Type I hair cells of striolar and central zones in vestibular organs are essential for head stability and postural control
成果类型:
Article
署名作者:
Ono, Kazuya; Lee, Hyun Jae; Chang, Hui Ho Vanessa; Verdone, Brandie Morris; Wafa, Talah; Ji, Youngrae; Huang, Austin; Fitzgerald, Tracy; Cullen, Kathleen E.; Wu, Doris K.
署名单位:
National Institutes of Health (NIH) - USA; NIH National Institute on Deafness & Other Communication Disorders (NIDCD); Johns Hopkins University; Johns Hopkins Medicine; National Institutes of Health (NIH) - USA; NIH National Institute on Deafness & Other Communication Disorders (NIDCD); University of Osaka; Korea Brain Research Institute (KBRI); Stanford University
刊物名称:
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA
ISSN/ISSBN:
0027-8424; 1091-6490
DOI:
10.1073/pnas.2535179123
发表日期:
2026-06-09
页码:
e2535179123
关键词:
vestibular hair cells
vestibular evoked potential
vestibulo-ocular reflex
calyceal synapses
head tremor
VESTIBULOOCULAR REFLEX
squirrel-monkey
self-motion
COMPARATIVE MORPHOLOGY
SECONDARY NEURONS
NERVE AFFERENTS
high-frequency
mechanisms
OTOCONIA
inputs
摘要:
The vestibular system of the inner ear provides head motion and orientation information required for maintaining balance and spatial orientation. Each of the five vestibular sensory organs contains type I and type II hair cells (HCs). Type I HCs are particularly notable for their evolutionary adaptability and unique calyceal synapses, in which the vestibular afferent nerve ending envelopes the HC body. In vitro studies indicate that calyceal synapses can transduce signals from HCs to afferents via nonquantal transmission, a mechanism proposed to be faster than conventional bouton synaptic transmission. In specialized regions of vestibular organs-striolae and central zones-many afferents form calyces that encase multiple type I HC bodies, suggesting that nonquantal transmission could be especially important in these regions. Consistently, striolar/central zone afferents are thought to preferentially mediate rapid and high-frequency stimulations. However, the direct consequences of selectively losing these HCs remain unknown. Here, we investigated the role of type I HCs within striolar/central zones by genetically ablating these cells. Reduction of type I HCs in these regions led to a loss of calyces and a compensatory increase in striolar type II HCs. These mutants exhibit reduced vestibular-evoked potentials, a response driven predominantly by striolar activity. In contrast, the vestibulo-ocular reflex, which is thought not to require striolar/central zone function, remained intact. Furthermore, loss of striolar/central zone-specific type I HCs causes head tremor in pups and abnormal head motion in adults, indicating that these HCs are essential for mediating head stability and postural control.
来源URL: