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The Journal of Biological Chemistry|October 14, 1994
Intracellular turnover of cystic fibrosis transmembrane conductance regulator. Inefficient processing and rapid degradation of wild-type and mutant proteinsC L Ward, R R KopitoJournal of Cell Science|August 1, 1993
Association of the brain anion exchanger, AE3, with the repeat domain of ankyrinC W Morgans, R R KopitoCell|July 28, 1995
Conformational states of CFTR associated with channel gating: the role ATP binding and hydrolysisK L Gunderson, R R KopitoNature|July 18, 1985
Primary structure and transmembrane orientation of the murine anion exchange proteinR R Kopito, H F LodishCell|September 20, 1996
A cluster of cytoplasmic histidine residues specifies pH dependence of the AE2 plasma membrane anion exchangerI Sekler, S Kobayashi, R R KopitoCell|October 6, 1995
Degradation of CFTR by the ubiquitin-proteasome pathwayC L Ward, S Omura, R R KopitoThe Journal of Biological Chemistry|April 14, 1995
The role of cysteine residues in the erythrocyte plasma membrane anion exchange protein, AE1J R Casey, Y Ding, R R KopitoThe Journal of Biological Chemistry|April 29, 1998
Cotranslational ubiquitination of cystic fibrosis transmembrane conductance regulator in vitroS Sato, C L Ward, R R KopitoThe Journal of Biological Chemistry|December 1, 1995
A conserved glutamate is responsible for ion selectivity and pH dependence of the mammalian anion exchangers AE1 and AE2I Sekler, R S Lo, R R KopitoThe Journal of Biological Chemistry|December 23, 1994
The major kidney AE1 isoform does not bind ankyrin (Ank1) in vitro. An essential role for the 79 NH2-terminal amino acid residues of band 3Y Ding, J R Casey, R R KopitoPageof 18