CALCIUM WAVES, CONNEXIN PERMEABILITY DEFECTS AND HEREDITARY DEAFNESS

Author(s):  
VALERIA PIAZZA ◽  
MARTINA BELTRAMELLO ◽  
FELIKSAS BUKAUSKAS ◽  
TULLIO POZZAN ◽  
FABIO MAMMANO
BIOPHYSICS ◽  
2010 ◽  
Vol 55 (6) ◽  
pp. 977-981
Author(s):  
K. V. Sobol ◽  
G. B. Belostotskaya ◽  
V. P. Nesterov

2008 ◽  
Vol 18 (06) ◽  
pp. 883-912 ◽  
Author(s):  
BOGDAN KAZMIERCZAK ◽  
VITALY VOLPERT

The existence and structural stability of travelling waves of systems of the free cytosolic calcium concentration in the presence of immobile buffers are studied. The proof is carried out by passing to zero with the diffusion coefficients of buffers. Thus, its method is different from Ref. 13 where the existence is proved straightforwardly.


2021 ◽  
Author(s):  
Daniel R. Romano ◽  
Eri Hashino ◽  
Rick F. Nelson

AbstractSensorineural hearing loss (SNHL) is a major cause of functional disability in both the developed and developing world. While hearing aids and cochlear implants provide significant benefit to many with SNHL, neither targets the cellular and molecular dysfunction that ultimately underlies SNHL. The successful development of more targeted approaches, such as growth factor, stem cell, and gene therapies, will require a yet deeper understanding of the underlying molecular mechanisms of human hearing and deafness. Unfortunately, the human inner ear cannot be biopsied without causing significant, irreversible damage to the hearing or balance organ. Thus, much of our current understanding of the cellular and molecular biology of human deafness, and of the human auditory system more broadly, has been inferred from observational and experimental studies in animal models, each of which has its own advantages and limitations. In 2013, researchers described a protocol for the generation of inner ear organoids from pluripotent stem cells (PSCs), which could serve as scalable, high-fidelity alternatives to animal models. Here, we discuss the advantages and limitations of conventional models of the human auditory system, describe the generation and characteristics of PSC-derived inner ear organoids, and discuss several strategies and recent attempts to model hereditary deafness in vitro. Finally, we suggest and discuss several focus areas for the further, intensive characterization of inner ear organoids and discuss the translational applications of these novel models of the human inner ear.


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