The real identity and sensory overlap mechanism of special vestibular afferent neurons that sense both rotation and linear force

Life Sci. 2020 Oct 15:259:118144. doi: 10.1016/j.lfs.2020.118144. Epub 2020 Aug 2.

Abstract

Aims: Although the vestibular system has been widely investigated over the past 50 years, there is still an unsolved mystery. Some special vestibular afferent (SVA) neurons responding to both rotation and linear force were found through neurophysiological techniques, however, the sensory overlap mechanism of SVA neurons is still unclear, which may be closely related to vestibular-related diseases.

Materials and methods: To address the above-mentioned problem, a cupula buoyancy theory was established in the present study, where SVA neurons were considered semicircular canal afferent (SCCA) neurons. Then labyrinth anatomy and neural response dynamics of vestibular afferent neurons in chinchilla were investigated through vestibular labyrinth reconstruction and single unit recording technique, respectively.

Key findings: We analyzed the deflections of cupulae under multiple conditions with the help of Amira Software and predicted the neural response law of SCCA neurons to linear force based on the cupula buoyancy theory. Data analysis confirmed that the basic response characteristic of SVA neurons had no significant difference to those of SCCA neurons, but were significantly different from those of otolith afferent neurons. Further, the actual responses of SVA neurons to linear force are completely consistent with our predictions. These results strongly suggest that SVA neurons actually are SCCA neurons, and the cupula buoyancy theory is the key to the sensory overlap mechanism of SCCA neurons.

Significance: Our study revealed the real identity of SVA neurons and provided a reasonable mechanism for sensory overlap of rotation and linear force, which improved our understanding about the vestibular system.

Keywords: Basic response characteristics; Cupula buoyancy theory; Sensory overlap mechanism; Special vestibular afferent neurons.

MeSH terms

  • Animals
  • Chinchilla
  • Female
  • Head Movements
  • Models, Anatomic
  • Neurons, Afferent / physiology*
  • Otolithic Membrane / physiology
  • Rotation*
  • Semicircular Canals / physiology
  • Sensation / physiology*
  • Vestibule, Labyrinth / anatomy & histology
  • Vestibule, Labyrinth / injuries*
  • Vestibule, Labyrinth / physiology*