The tectorial membrane (TM) is a highly hydrated non-cellular matrix situated over the sensory cells of the cochlea. It is widely accepted that the mechanical coupling, between the TM and outer hair cells stereocilia bundles, plays an important role in the cochlea energy transduction mechanism. Recently, we provided supporting evidence for the existence of mechanical coupling by demonstrating that the mechanical properties of the TM change along its longitudinal direction. Since the biochemical composition of the TM is similar throughout its entire length, it is likely that structural differences induce the observed material properties changes. Presently, however, the structure of the TM under physiological environments remains unknown. In this work, the 3D structure of native TM samples is shown by using two-photon second-harmonic imaging microscopy. We find that the collagen fibers at the basal region are arranged in a parallel orientation while being tilted in an angle with respect to the plane of the TM surface at the apical region. Moreover, we find an intensified marginal band at the basal OHC zone which forms a shell-like structure which engulfs the stereocilium imprints surface of the TM. In supports of our previous mechanical characterization, the analysis presented here provides a structural basis for the changes in TM's mechanical properties.
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http://dx.doi.org/10.1016/j.jsb.2007.03.002 | DOI Listing |
J Orthop Case Rep
December 2024
Department of Spine Surgery, Children Hospital Westmead, Sydney, Australia.
Introduction: Death is the most common outcome of longitudinal atlanto-occipital dissociation (L-AOD). Even though rare, survival is commonly seen in the pediatric population. This study reports a successful outcome of a pediatric patient with an L-AOD without neurodeficits, immobilized in a visor (head-neck-chest) orthosis.
View Article and Find Full Text PDFDev Cell
December 2024
Department of Neurobiology, University of Utah, Salt Lake City, UT, USA. Electronic address:
The apical extracellular matrix (aECM), organized by polarized epithelial cells, exhibits complex structures. The tectorial membrane (TM), an aECM in the cochlea mediating auditory transduction, exhibits highly ordered domain-specific architecture. α-Tectorin (TECTA), a glycosylphosphatidylinositol (GPI)-anchored ECM protein, is essential for TM organization.
View Article and Find Full Text PDFJ Comp Neurol
December 2024
School of Biomedical Sciences, The Chinese University of Hong Kong, Shatin, Hong Kong SAR, China.
A gene cadre orchestrates the normal development of sensory and non-sensory cells in the inner ear, segregating the cochlea with a distinct tonotopic sound frequency map, similar brain projection, and five vestibular end-organs. However, the role of genes driving the ear development is largely unknown. Here, we show double deletion of the Iroquois homeobox 3 and 5 transcription factors (Irx3/5 DKO) leads to the fusion of the saccule and the cochlear base.
View Article and Find Full Text PDFAnn Biomed Eng
December 2024
School of Biomedical Engineering, University of Oklahoma, Norman, OK, 73019, USA.
Biogerontology
November 2024
Department of Otolaryngology & Head and Neck Surgery, Ruijin Hospital, Shanghai Jiao Tong University School of Medicine, No. 197 Ruijin 2nd Road, Shanghai, 200025, China.
Age-related hearing loss (ARHL) is a common disease among the elderly. Although its pathogenesis remains unclear by now, it is widely accepted that ARHL is associated with the degenerative alterations within each component of the cochlea. Extracellular matrix (ECM) plays a crucial role in cochlear structure and function, providing not only structural support but also participating in vital physiological processes including the development, differentiation, survival of auditory sensory cells, and sound perception.
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