Related Experiment Video
Updated: Oct 13, 2025

Mechanical Stimulation-induced Calcium Wave Propagation in Cell Monolayers: The Example of Bovine Corneal Endothelial Cells
Published on: July 16, 2013
Molecular mechanisms underlying enhanced hemichannel function of a cataract-associated Cx50 mutant
Jun-Jie Tong1, Umair Khan2, Bassam G Haddad2
1Center of Proteomics and Molecular Therapeutics, Rosalind Franklin University of Medicine and Science, North Chicago, Illinois.
Abstract:
Connexin-50 (Cx50) is among the most frequently mutated genes associated with congenital cataracts. Although most of these disease-linked variants cause loss of function because of misfolding or aberrant trafficking, others directly alter channel properties. The mechanistic bases for such functional defects are mostly unknown. We investigated the functional and structural properties of a cataract-linked mutant, Cx50T39R (T39R), in the Xenopus oocyte system. T39R exhibited greatly enhanced hemichannel currents with altered voltage-gating properties compared to Cx50 and induced cell death. Coexpression of mutant T39R with wild-type Cx50 (to mimic the heterozygous state) resulted in hemichannel currents whose properties were indistinguishable from those induced by T39R alone, suggesting that the mutant had a dominant effect. Furthermore, when T39R was coexpressed with Cx46, it produced hemichannels with increased activity, particularly at negative potentials, which could potentially contribute to its pathogenicity in the lens. In contrast, coexpression of wild-type Cx50 with Cx46 was associated with a marked reduction in hemichannel activity, indicating that it may have a protective effect. All-atom molecular dynamics simulations indicate that the R39 substitution can form multiple electrostatic salt-bridge interactions between neighboring subunits that could stabilize the open-state conformation of the N-terminal (NT) domain while also neutralizing the voltage-sensing residue D3 as well as residue E42, which participates in loop gating. Together, these results suggest T39R acts as a dominant gain-of-function mutation that produces leaky hemichannels that may cause cytotoxicity in the lens and lead to development of cataracts.
Insights
Congenital cataracts can stem from connexin-50 (Cx50) mutations. A specific Cx50T39R (T39R) mutation causes dominant gain-of-function, leading to leaky hemichannels, cell death, and potentially cataracts.
Area of Science:
- Cellular Biology
- Biophysics
- Ophthalmology
Background:
- Congenital cataracts are often linked to mutations in connexin-50 (Cx50).
- While some Cx50 mutations cause loss-of-function, others alter channel properties, but their mechanisms remain unclear.
- Understanding Cx50 channel function is crucial for cataract research.
Purpose of the Study:
- To investigate the functional and structural properties of the cataract-linked Cx50T39R (T39R) mutant.
- To determine the mechanistic basis of T39R-induced functional defects.
- To assess the dominant effect and potential pathogenicity of T39R.
Main Methods:
- Functional analysis using Xenopus oocyte expression system.
- Coexpression studies with wild-type Cx50 and Cx46.
- All-atom molecular dynamics simulations.
Main Results:
- T39R exhibited significantly enhanced hemichannel currents and altered voltage gating compared to wild-type Cx50.
- T39R showed a dominant gain-of-function effect, inducing cell death.
- Coexpression with Cx46 increased hemichannel activity, while coexpression with wild-type Cx50 reduced it.
- Molecular dynamics simulations revealed stabilizing interactions in the open-state conformation and altered gating mechanisms.
Conclusions:
- T39R acts as a dominant gain-of-function mutation.
- The mutation leads to "leaky" hemichannels, potentially causing lens cytotoxicity and congenital cataracts.
- Cx50T39R's altered channel properties provide insight into cataract pathogenesis.
Related Concept Videos
Gap Junctions
Ligand-Gated Ion Channel Receptor: Gating Mechanism
Channel Rhodopsins
Rhodopsins belong to the family of cell surface proteins called G-protein coupled receptors,...

