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Altered morphology and function of the lacrimal functional unit in protein kinase C{alpha} knockout mice
Zhuo Chen1, Zhijie Li, Surendra Basti
1Department of Ophthalmology, The Ocular Surface Center, Cullen Eye Institute, Baylor College of Medicine, Houston, Texas 77030, USA.
Purpose:
Protein kinase C (PKC) α plays a major role in the parasympathetic neural stimulation of lacrimal gland (LG) secretion. It also has been reported to have antiapoptotic properties and to promote cell survival. Therefore, the hypothesis for the present study was that PKCα knockout ((-/-)) mice have impaired ocular surface-lacrimal gland signaling, rendering them susceptible to desiccating stress and impaired corneal epithelial wound healing. In this study, the lacrimal function unit (LFU) and the stressed wound-healing response were examined in PKCα(-/-) mice.
Methods:
In PKCα(+/+) control mice and PKCα(-/-) mice, tear production, osmolarity, and clearance rate were evaluated before and after experimental desiccating stress. Histology and immunofluorescent staining of PKC and epidermal growth factor were performed in tissues of the LFU. Cornified envelope (CE) precursor protein expression and cell proliferation were evaluated. The time course of healing and degree of neutrophil infiltration was evaluated after corneal epithelial wounding.
Results:
Compared with the PKCα(+/+) mice, the PKCα(-/-) mice were noted to have significantly increased lacrimal gland weight, with enlarged, carbohydrate-rich, PAS-positive acinar cells; increased corneal epithelia permeability, with reduced CE expression; and larger conjunctival epithelial goblet cells. The PKCα(-/-) mice showed more rapid corneal epithelial healing, with less neutrophil infiltration and fewer proliferating cells than did the PKCα(+/+) mice.
Conclusions:
The PKCα(-/-) mice showed lower tear production, which appeared to be caused by impaired secretion by the LG and conjunctival goblet cells. Despite their altered tear dynamics, the PKCα(-/-) mice demonstrated more rapid corneal epithelial wound healing, perhaps due to decreased neutrophil infiltration.
Insights
Protein kinase C alpha knockout mice exhibit reduced tear production but faster corneal wound healing. This suggests PKCα plays a complex role in ocular surface homeostasis and repair.
Area of Science:
- Ophthalmology
- Cell Biology
- Physiology
Background:
- Protein kinase C (PKC) α is crucial for parasympathetic stimulation of lacrimal gland secretion.
- PKCα also exhibits antiapoptotic properties, promoting cell survival.
- The lacrimal function unit (LFU) maintains ocular surface health.
Purpose of the Study:
- To investigate the role of PKCα in ocular surface-lacrimal gland signaling.
- To determine if PKCα knockout ((-/-)) mice are susceptible to desiccating stress.
- To examine the effect of PKCα deficiency on corneal epithelial wound healing.
Main Methods:
- Tear production, osmolarity, and clearance were measured in PKCα(+/+) and PKCα(-/-) mice before and after desiccating stress.
- Histology and immunofluorescence assessed LFU tissues, CE precursor protein, and cell proliferation.
- Corneal epithelial wound healing and neutrophil infiltration were evaluated.
Main Results:
- PKCα(-/-) mice had increased lacrimal gland weight and enlarged acinar cells.
- Corneal epithelial permeability was increased with reduced CE expression in PKCα(-/-) mice.
- PKCα(-/-) mice displayed faster corneal wound healing with less neutrophil infiltration.
Conclusions:
- PKCα(-/-) mice exhibited lower tear production due to impaired lacrimal and goblet cell secretion.
- Despite altered tear dynamics, PKCα(-/-) mice showed accelerated corneal epithelial wound healing.
- Reduced neutrophil infiltration may contribute to the enhanced wound healing in PKCα(-/-) mice.
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