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Updated: Aug 11, 2026

Evaluation of Planar-Cell-Polarity Phenotypes in Ciliopathy Mouse Mutant Cochlea
Published on: February 21, 2016
p27(Kip1) deficiency causes organ of Corti pathology and hearing loss
Sho Kanzaki1, Lisa A Beyer, Donald L Swiderski
1Kresge Hearing Research Institute, The University of Michigan Medical School, MSRB III Room-9303, 1150 West Medical Center Drive, Ann Arbor, MI 48109-0648, USA.
Abstract:
p27(Kip1) (p27) has been shown to inhibit several cyclin-dependent kinase molecules and to play a central role in regulating entry into the cell cycle. Once hair cells in the cochlea are formed, p27 is expressed in non-sensory cells of the organ of Corti and prevents their re-entry into the cell cycle. In one line of p27 deficient mice (p27(-/-)), cell division in the organ of Corti continues past its normal embryonic time, leading to continual production of cells in the organ of Corti. Here we report on the structure and function of the inner ear in another line of p27 deficient mice originating from the Memorial Sloan-Kettering Cancer Center. The deficiency in p27 expression of these mice is incomplete, as they retain expression of amino acids 52-197. We determined that mice homozygote for this mutation had severe hearing loss and their organ of Corti exhibited an increase in the number of inner and outer hair cells. There also was a marked increase in the number of supporting cells, with severe pathologies in pillar cells. These data show similarities between this p27(Kip1) mutation and another, previously reported null allele of this gene, and suggest that reducing the inhibition on the cell cycle in the organ of Corti leads to pathology and dysfunction. Manipulations to regulate the time and place of p27 inhibition will be necessary for inducing functionally useful hair cell regeneration.
Insights
Reduced p27(Kip1) expression in mice leads to severe hearing loss and increased hair and supporting cells in the cochlea. This suggests cell cycle dysregulation causes inner ear pathology, highlighting the need for controlled inhibition for hair cell regeneration.
Area of Science:
- Cell Biology
- Developmental Biology
- Otolaryngology
Background:
- p27(Kip1) is a cell cycle inhibitor crucial for cochlear development.
- Post-mitotic hair cells in the organ of Corti normally express p27 to prevent further cell division.
- Previous studies show p27 deficiency leads to uncontrolled cell division in the cochlea.
Purpose of the Study:
- To investigate the inner ear structure and function in a novel line of p27 deficient mice.
- To characterize the effects of incomplete p27 deficiency on the organ of Corti.
- To understand the relationship between cell cycle regulation and inner ear pathology.
Main Methods:
- Analysis of a new mouse model with partial p27(Kip1) deficiency.
- Histological examination of the organ of Corti in homozygote mutant mice.
- Assessment of hearing function in affected mice.
Main Results:
- Homozygote mice exhibited severe hearing loss.
- The organ of Corti showed an increased number of inner and outer hair cells.
- A significant increase in supporting cells, including pathological pillar cells, was observed.
Conclusions:
- Incomplete p27(Kip1) deficiency causes significant inner ear pathology and hearing dysfunction.
- Similarities exist between this mutation and a null p27 allele, reinforcing the role of cell cycle inhibition.
- Targeted regulation of p27 inhibition is essential for future hair cell regeneration strategies.
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