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Eshriew, E.

Publications and source records attributed to Eshriew, E..

2 recordsLinked to original sources

Gating Mechanism of the Human Connexin 45 Gap Junction Channel

Gap junction channels formed by the 21-member human connexin family enable direct intercellular exchange of ions and small signaling metabolites, coordinating electrical coupling across cardiac, neural and epithelial tissues. Connexin 45 (Cx45), encoded by GJC1, mediates impulse conduction in the atrioventricular node, His bundle, and Purkinje fibers, where disease-linked mutations cause progressive atrioventricular block and familial atrial fibrillation, yet no experimental structure has been reported, and its regulatory mechanism remains undefined. Here, we determine the structural basis of Cx45 gating and Ca2+ regulation using cryo-electron microscopy, mutational analysis, and molecular dynamics simulations. Cryo-EM structures of the apo (2.76 [A]), Ca2+-bound (2.65 [A]), and E41A mutant (3.55 [A]) channel reveal a neck constriction formed by Y45, establishing a steric gate distinct from other connexins. Ca2+ associates with E41, stabilizing the neck via electrostatic remodeling without global conformational change. Together, these data define a dual steric-electrostatic mechanism for Cx45 regulation and provide a structural framework for isoform-specific connexin gating relevant to cardiac physiology and conduction disease.

biochemistry↗

In situ Structure of the Human Gap Junction

Gap junction plaques (GJPs) enable direct intercellular communication and consist of connexin channels arranged into two-dimensional lattices. While structures of purified connexin channels have informed models of gating, they omit key intracellular regions and lack native context. Here, we use cryogenic electron tomography and focused ion beam milling to determine the in situ structure of human connexin-43 (Cx43) GJPs in HEK293 cells at 14 [A] resolution. We discover a previously unresolved structural role for the large C-terminal domain in mediating lateral channel-channel interactions critical for plaque assembly. Coarse-grained molecular dynamics simulations reveal how lipids and cholesterol occupy the space between adjacent connexins. These findings resolve a decades-old question regarding gap junction organization and highlight a mechanistic function for the C-terminal domain, likely regulated by phosphorylation. Our study provides a structural blueprint for understanding how connexin diversity and regulation shape tissue-level communication in health and disease.

cell biology↗