Toxin Inhibition - Deconvolution Strategies and Assay Screening of Combinatorial Peptide Libraries

Abstract

Combinatorial peptide libraries offer an expedient source of structurally diverse molecules that could serve as lead compounds in the development of drug therapies to toxins. The libraries have typical structures of X1 - X2 - hinge - X3 - X4, where X1 through X4 are near-equimolar mixtures of twelve alpha-L-amino acids and hinge = gamma-aminobutyric acid. Screening of the libraries for inhibitory activity in assays for botulinum neurotoxins A and B (BoNTIA, BoNTIB) and saxitoxin uncovered potent library subsets. For effective screening of the peptide libraries, improved methods of analysis were sought. We report on development of a capillary electrophoresis laser-induced fluorescence (CE LIF) method for measuring BoNTIA peptidase activity and for screening peptide libraries for inhibitory effects. A second analytical method for quantitation of BoNTIA assays was employed based on fluorescence resonance energy transfer (FRET). The FRET assay is homogeneous phase, i.e., no separation step is required. Thus assay time was reduced and throughput increased. The research described in this report was supported by the Technology Investment Fund of Defence R&D Canada.

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Document Details

Document Type
Technical Report
Publication Date
Aug 01, 2007
Accession Number
ADA473466

Entities

People

  • A. J. Marenco
  • D. C. Mah
  • D. Moore
  • G. J. Moore
  • Lawrence J. Hayden
  • M. G. Hamilton
  • M. Gregory
  • N. W. Chan
  • T. D. Laing
  • W. E. Lee

Tags

Communities of Interest

  • Biomedical

DTIC Thesaurus Topics

  • Amines
  • Amino Acids
  • Capillary Electrophoresis
  • Chemical Synthesis
  • Chemistry
  • Drug Therapy
  • Electrophoresis
  • Energy Transfer
  • Fluorescence
  • Laser Induced Fluorescence
  • Lasers
  • Lead Compounds
  • Liquid Chromatography
  • Molecules
  • National Security
  • Peptides
  • Security

Readers

  • Microbial Pathology
  • Molecular and Cellular Biochemistry

Technology Areas

  • Directed Energy