4.6 Article

Invariant Gly Residue Is Important for α-Defensin Folding, Dimerization, and Function A CASE STUDY OF THE HUMAN NEUTROPHIL α-DEFENSIN HNP1

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JOURNAL OF BIOLOGICAL CHEMISTRY
卷 287, 期 23, 页码 18900-18912

出版社

AMER SOC BIOCHEMISTRY MOLECULAR BIOLOGY INC
DOI: 10.1074/jbc.M112.355255

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  1. DOE Office of Biological and Environmental Research
  2. National Institutes of Health [AI072732, AI061482]
  3. National Institutes of Health, National Center for Research Resources, Biomedical Technology Program [P41RR001209]
  4. National Institute of General Medical Sciences
  5. Xi'an Jiaotong University School of Medicine

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The human alpha-defensins (HNP) are synthesized in vivo as inactive prodefensins, and contain a conserved glycine, Gly(17), which is part of a beta-bulge structure. It had previously been shown that the glycine main chain torsion angles are in a D-configuration, and that D-amino acids but not L-alanine could be substituted at that position to yield correctly folded peptides without the help of a prodomain. In this study, the glycine to L-alanine mutant defensin was synthesized in the form of a prodefensin using native chemical ligation. The ligation product folded correctly and yielded an active peptide upon CNBr cleavage. The L-Ala(17)-HNP1 crystal structure depicted a beta-bulge identical to wild-type HNP1. However, dimerization was perturbed, causing one monomer to tilt with respect to the other in a dimerization model. Inhibitory activity against the anthrax lethal factor showed a 2-fold reduction relative to wild-type HNP1 as measured by the inhibitory concentration IC50. Self-association was slightly reduced, as detected by surface plasmon resonance measurements. According to the results of the virtual colony count assay, the antibacterial activity against Escherichia coli, Staphylococcus aureus, and Bacillus cereus exhibited a less than 2-fold reduction in virtual lethal dose values. Prodefensins with two other L-amino acid substitutions, Arg and Phe, at the same position did not fold, indicating that only small side chains are tolerable. These results further elucidate the factors governing the region of the beta-bulge structure that includes Gly(17), illuminating why glycine is conserved in all mammalian alpha-defensins.

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