2026/07/21 by Francois Lallemend, François Lallemend, Meghna Kolluri +16 · 1 voice
Biochemistry, Genetics and Molecular Biology · Neuroscience · #Animal Vocal Communication and Behavior #Hearing, Cochlea, Tinnitus, Genetics #Vestibular and auditory disorders
paper · pdf · doi:10.21203/rs.3.rs-10203297/v1
crossref issued 2026/07/21 · crossref published 2026/07/21 · openalex publication_date 2026/07/21 · crossref created 2026/07/21 · crossref deposited 2026/07/21 · crossref indexed 2026/07/21 · openalex created_date 2026/07/22 · openalex updated_date 2026/07/22
Abstract The vestibular system is essential for balance, posture, gaze stabilization, and spatial orientation, yet lacks the molecular framework that has transformed understanding of other sensory systems. By integrating deep single-cell transcriptomics, spatial mapping, circuit analysis, targeted electrophysiology, and developmental profiling, we identify thirteen vestibular ganglion neuron subtypes and nine hair-cell subtypes, revealing a previously unrecognized degree of cellular diversity within the vestibular periphery. These populations are distributed across distinct epithelial territories and ganglion domains, exhibit stereotyped connectivity patterns, and link molecular identity to distinct intrinsic firing behaviors. Developmental analyses reveal a hierarchical program of vestibular afferent specification in which embryonic meta-identities emerge early, persist into adulthood, and are associated with distinct connectivity patterns, while subtype diversification occurs within these frameworks prior to overt vestibular reflex activity. Together, these findings define the cellular architecture and organizational logic of the vestibular periphery and establish a hierarchical molecular scaffold linking developmental origin, connectivity, and function.