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Rational design of potent domain antibody inhibitors of amyloid fibril assembly

  • Ali Reza A. Ladiwala
  • , Moumita Bhattacharya
  • , Joseph M. Perchiacca
  • , Ping Cao
  • , Daniel P. Raleigh
  • , Andisheh Abedini
  • , Ann Marie Schmidt
  • , Jobin Varkey
  • , Ralf Langen
  • , Peter M. Tessier
  • Rensselaer Polytechnic Institute
  • Stony Brook University
  • New York University
  • University of Southern California

Research output: Contribution to journalArticlepeer-review

97 Scopus citations

Abstract

Antibodies hold significant potential for inhibiting toxic protein aggregation associated with conformational disorders such as Alzheimer's and Huntington's diseases. However, near-stoichiometric antibody concentrations are typically required to completely inhibit protein aggregation. We posited that the molecular interactions mediating amyloid fibril formation could be harnessed to generate antibodies with potent antiaggregation. Here we report that grafting small amyloidogenic peptides (6-10 residues) into the complementarity-determining regions of a single-domain (VH) antibody yields potent domain antibody inhibitors of amyloid formation. Grafted AMyloid-Motif AntiBODIES (gammabodies) presenting hydrophobic peptides from Aβ (Alzheimer's disease), α-Synuclein (Parkinson's disease), and islet amyloid polypeptide (type 2 diabetes) inhibit fibril assembly of each corresponding polypeptide at low substoichiometric concentrations (1:10 gammabody: monomer molar ratio). In contrast, sequence- and conformation- specific antibodies that were obtained via immunization are unable to prevent fibrillization at the same substoichiometric concentrations. Gammabodies prevent amyloid formation by converting monomers and/or fibrillar intermediates into small complexes that are unstructured and benign. We expect that our antibody design approach - which eliminates the need for immunization or screening to identify sequence-specific domain antibody inhibitors - can be readily extended to generate potent aggregation inhibitors of other amyloidogenic polypeptides linked to human disease.

Original languageEnglish
Pages (from-to)19965-19970
Number of pages6
JournalProceedings of the National Academy of Sciences of the United States of America
Volume109
Issue number49
DOIs
StatePublished - Dec 4 2012

Keywords

  • Beta-amyloid
  • IAPP
  • Misfolding
  • Protein design

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