Cysteine-Selective Phosphonamidate Electrophiles for Modular Protein Bioconjugations

Angew Chem Int Ed Engl. 2019 Aug 19;58(34):11625-11630. doi: 10.1002/anie.201814715. Epub 2019 Apr 29.

Abstract

We describe a new technique in protein synthesis that extends the existing repertoire of methods for protein modification: A chemoselective reaction that induces reactivity for a subsequent bioconjugation. An azide-modified building block reacts first with an ethynylphosphonite through a Staudinger-phosphonite reaction (SPhR) to give an ethynylphosphonamidate. The resulting electron-deficient triple bond subsequently undergoes a cysteine-selective reaction with proteins or antibodies. We demonstrate that ethynylphosphonamidates display excellent cysteine-selective reactivity combined with superior stability of the thiol adducts, when compared to classical maleimide linkages. This turns our technique into a versatile and powerful tool for the facile construction of stable functional protein conjugates.

Keywords: bioconjugation; bioorganic chemistry; bioorthogonal chemistry; cysteine-selective modification; protein modification.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Antineoplastic Agents, Immunological / chemistry*
  • Antineoplastic Agents, Immunological / metabolism
  • Cysteine / chemistry*
  • Cysteine / metabolism
  • Humans
  • Immunoconjugates / chemistry
  • Immunoconjugates / metabolism*
  • Iodoacetamide / chemistry
  • Iodoacetamide / metabolism
  • Maleimides / chemistry
  • Maleimides / metabolism
  • Organophosphonates / chemistry*
  • Organophosphonates / metabolism
  • Receptor, ErbB-2 / immunology*
  • Sulfhydryl Compounds / chemistry*
  • Sulfhydryl Compounds / metabolism
  • Trastuzumab / chemistry*
  • Trastuzumab / metabolism

Substances

  • Antineoplastic Agents, Immunological
  • Immunoconjugates
  • Maleimides
  • Organophosphonates
  • Sulfhydryl Compounds
  • maleimide
  • ERBB2 protein, human
  • Receptor, ErbB-2
  • Cysteine
  • Trastuzumab
  • Iodoacetamide