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The Journal of Biological Chemistry|April 5, 2000
Peptide mimics of the M13 coat protein transmembrane segment. Retention of helix-helix interaction motifsC Wang, C M DeberBiopolymers|August 6, 1998
Guidelines for membrane protein engineering derived from de novo designed model peptidesL P Liu, C M DeberThe Journal of Biological Chemistry|November 5, 1993
Peptide environment specifies conformation. Helicity of hydrophobic segments compared in aqueous, organic, and membrane environmentsS C Li, C M DeberThe Journal of Biological Chemistry|December 10, 1984
Evidence for a folded conformation of methionine- and leucine-enkephalin in a membrane environmentB A Behnam, C M DeberClinical Biochemistry|April 1, 1991
Central nervous system myelin: structure, function, and pathologyC M Deber, S J ReynoldsProceedings of the National Academy of Sciences of the United States of America|February 1, 1986
Hypothesis about the function of membrane-buried proline residues in transport proteinsC J Brandl, C M DeberBioorganic & Medicinal Chemistry|April 13, 1999
Combining hydrophobicity and helicity: a novel approach to membrane protein structure predictionL P Liu, C M DeberBiochemistry|January 13, 1976
Ionophore A23187. Solution conformations of the calcium complex and free acid deduced from proton and carbon-13 nuclear magnetic resonance studiesC M Deber, D R PfiefferNature Structural Biology|June 1, 1994
A measure of helical propensity for amino acids in membrane environmentsS C Li, C M DeberFEBS Letters|October 26, 1992
Glycine and beta-branched residues support and modulate peptide helicity in membrane environmentsS C Li, C M DeberPageof 22