Reversibly Switchable, pH-Dependent Peptide Ligand Binding via 3,5-Diiodotyrosine Substitutions

Chayanon Ngambenjawong1, Meilyn Sylvestre1, Heather H Gustafson1

  • 1Department of Bioengineering and Molecular Engineering and Sciences Institute , University of Washington , Seattle , Washington 98195 , United States.

ACS Chemical Biology
|February 27, 2018
PubMed

Insights

Engineered peptides show pH-dependent binding, improving targeted drug delivery. Modified M2pep selectively targets M2 macrophages in acidic environments, enhancing specificity and serum stability.

Area of Science:

  • Biomedical Engineering
  • Drug Delivery Systems
  • Molecular Targeting

Background:

  • Targeting ligands in drug delivery often bind overexpressed receptors, leading to off-target effects.
  • Current stimuli-responsive systems have limitations like permanent ligand unmasking.
  • Microenvironment-dependent binding based on ionization state offers a promising solution for improved selectivity.

Purpose of the Study:

  • To engineer a pH-responsive targeting peptide with enhanced selectivity for specific microenvironments.
  • To utilize 3,5-diiodotyrosine mutagenesis to create pH-dependent binding properties in a peptide.
  • To demonstrate the improved targeting and stability of the engineered peptide.

Main Methods:

  • Systematic engineering of an M2 macrophage-targeting peptide (M2pep) using 3,5-diiodotyrosine mutagenesis.
  • Assessing pH-dependent binding behavior at acidic (pH 6) and physiological (pH 7.4) conditions.
  • Evaluating serum stability and demonstrating reversible target binding through postbinding elution.

Main Results:

  • Engineered M2pep (Ac-Y-Î-Î) exhibited selective binding to M2 macrophages at pH 6 compared to pH 7.4.
  • 3,5-Diiodotyrosine substitutions enhanced the peptide's stability in serum.
  • pH-dependent reversibility of target binding was successfully demonstrated.

Conclusions:

  • The engineered pH-responsive M2pep offers improved selectivity for acidic microenvironments, crucial for targeted therapies.
  • This strategy of incorporating 3,5-diiodotyrosine is applicable for developing other pH-dependent targeting peptides.
  • The approach holds potential for physiology-dependent in vivo targeting and in vitro receptor identification.

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