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Modeling Cataract Surgery in Mice
Published on: December 1, 2023
The cataract causing Cx50-S50P mutant inhibits Cx43 and intercellular communication in the lens epithelium
Adam M DeRosa1, Gülistan Meşe, Leping Li
1Department of Physiology and Biophysics, State University of New York, T5-147, Basic Science Tower, Stony Brook, NY 11794-8661, USA.
Abstract:
Mutations in Connexin50 (Cx50) cause cataracts in both humans and mice. The mechanism(s) behind how mutated connexins lead to a variety of cataracts have yet to be fully elucidated. Here, we tested whether the cataract inducing Cx50-S50P mutant interacts with wild-type Connexin43 (Cx43) to form mixed channels with attenuated function. Using dual whole-cell voltage clamp, immunofluorescent microscopy and in situ dye transfer analysis we identified a unique interaction between the mutant subunit and wild-type Cx43. In paired Xenopus oocytes, co-expression of Cx50-S50P with Cx43 reduced electrical coupling >/=90%, without a reduction in protein expression. In transfected cells, Cx50-S50P did not target to cell-cell interfaces by itself, but co-expression of Cx50-S50P with Cx43 resulted in its localization at areas of cell-cell contact. We used Cx43 conditional knockout, Cx50 knockout and Cx50-S50P mutant mice to examine this interaction in vivo. Mice expressing both Cx43 and Cx50-S50P in the lens epithelium revealed a unique expression pattern for Cx43 and a reduction in Cx43 protein. In situ dye transfer experiments showed that the Cx50-S50P mutant, but not the Cx50, or Cx43 conditional knockout, greatly inhibited epithelial cell gap junctional communication in a manner similar to a double knockout of Cx43 and Cx50. The inhibitory affects of Cx50-S50P lead to diminished electrical coupling in vitro, as well as a discernable reduction in epithelial cell dye permeation. These data suggest that dominant inhibition of Cx43 mediated epithelial cell coupling may play a role in the lens pathophysiology caused by the Cx50-S50P mutation.
Insights
Mutations in Connexin50 (Cx50) cause cataracts. The Cx50-S50P mutant interacts with Connexin43 (Cx43), inhibiting cell coupling and potentially causing lens disease.
Area of Science:
- Cell Biology
- Ophthalmology
- Genetics
Background:
- Mutations in Connexin50 (Cx50) are linked to cataracts in humans and mice.
- The precise mechanisms by which mutated connexins induce cataracts remain unclear.
- Connexin43 (Cx43) is another key connexin protein involved in cellular communication.
Purpose of the Study:
- To investigate the interaction between the cataract-associated Cx50-S50P mutant and wild-type Cx43.
- To determine if this interaction forms mixed channels with altered function.
- To elucidate the role of this interaction in lens pathophysiology.
Main Methods:
- Dual whole-cell voltage clamp electrophysiology in Xenopus oocytes.
- Immunofluorescent microscopy to assess protein localization.
- In situ dye transfer assays in oocytes and mouse lens epithelium.
- Analysis of Cx43 conditional knockout, Cx50 knockout, and Cx50-S50P mutant mice.
Main Results:
- Co-expression of Cx50-S50P and Cx43 in oocytes significantly reduced electrical coupling (>90%) without affecting protein levels.
- Cx50-S50P localized to cell-cell interfaces only when co-expressed with Cx43.
- In vivo studies showed altered Cx43 expression and significantly inhibited gap junctional communication in mice expressing Cx50-S50P and Cx43.
- The Cx50-S50P mutant inhibited epithelial cell coupling similarly to a double knockout of Cx43 and Cx50.
Conclusions:
- The Cx50-S50P mutant interacts with Cx43 to form non-functional or poorly functional heteromeric gap junctions.
- This dominant-negative interaction significantly impairs Cx43-mediated cell coupling in the lens epithelium.
- Dominant inhibition of Cx43 by Cx50-S50P may be a key mechanism in Cx50-related cataract formation.
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