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Methods in Molecular Biology (Clifton, N.J.)|April 5, 2024
Spatial and Temporal Localization of Connexins in Cells Using Confocal MicroscopySergiu A Lucaciu, Stephanie E Leighton, Dale W Laird
The Journal of Biological Chemistry|September 21, 2023
Diversity in connexin biologySergiu A Lucaciu, Stephanie E Leighton, Alexandra Hauser, et al.
The Biochemical Journal|November 8, 2024
The genetic and molecular basis of a connexin-linked skin diseaseSergiu A Lucaciu, Dale W Laird
Journal of Cell Science|March 27, 2024
Cx31.1 can selectively intermix with co-expressed connexins to facilitate its assembly into gap junctionsStephanie E Leighton, Robert S Wong, Sergiu A Lucaciu, et al.
Frontiers in Cell and Developmental Biology|March 2, 2023
GJB4 variants linked to skin disease exhibit a trafficking deficiency en route to gap junction formation that can be restored by co-expression of select connexinsSergiu A Lucaciu, Rhett Figliuzzi, Ruth Neumann, et al.
The Journal of Physiology|January 16, 2025
Skin disease-associated GJB4 variants differentially influence connexin stability, cell viability and channel functionSergiu A Lucaciu, Stephanie E Leighton, Robert S Wong, et al.
International Journal of Molecular Sciences|January 11, 2022
Interrogation of Carboxy-Terminus Localized GJA1 Variants Associated with Erythrokeratodermia Variabilis et ProgressivaSergiu A Lucaciu, Qing Shao, Rhett Figliuzzi, et al.
Biomolecules|October 17, 2020
Comparative Analysis of Cx31 and Cx43 in Differentiation-Competent Rodent KeratinocytesAkina Au, Qing Shao, Kyra K White, et al.
FEBS Letters|January 18, 2014
Syndromic and non-syndromic disease-linked Cx43 mutationsDale W Laird
The Journal of Biological Chemistry|December 20, 2007
Closing the gap on autosomal dominant connexin-26 and connexin-43 mutants linked to human diseaseDale W Laird
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