An efficient protocol towards site-specifically clickable nanobodies in high yield: cytoplasmic expression in Escherichia coli combined with intein-mediated protein ligation

Protein Eng Des Sel. 2015 Oct;28(10):351-63. doi: 10.1093/protein/gzv032. Epub 2015 Aug 4.

Abstract

In this study, several expression strategies were investigated in order to develop a generic, highly productive and efficient protocol to produce nanobodies modified with a clickable alkyne function at their C-terminus via the intein-mediated protein ligation (IPL) technique. Hereto, the nanobody targeting the vascular cell adhesion molecule 1 (NbVCAM1) was used as a workhorse. The highlights of the protocol can be ascribed to a cytoplasmic expression of the nanobody-intein-chitin-binding domain fusion protein in the Escherichia coli SHuffle(®) T7 cells with a C-terminal extension, i.e. LEY, EFLEY or His6 spacer peptide, in the commonly used Luria-Bertani medium. The combination of these factors led to a high yield (up to 22 mg/l of culture) and nearly complete alkynation efficiency of the C-terminally modified nanobody via IPL. This yield can even be improved to ∼45 mg/l in the EnPresso(®) growth system but this method is more expensive and time-consuming. The resulting alkynated nanobodies retained excellent binding capacity towards the recombinant human VCAM1. The presented protocol benefits from time- and cost-effectiveness, which allows a feasible production up-scaling of generic alkynated nanobodies. The production of high quantities of site-specifically modified nanobodies paves the way to new biosurface applications that demand for a homogeneously oriented nanobody coupling. Prospectively, the alkynated nanobodies can be covalently coupled to a multitude of azide-containing counterparts, e.g. contrast labeling agents, particles or surfaces for numerous innovative applications.

Keywords: CuAAC; VCAM1-targeting nanobody; bioorthogonal chemistry; cytoplasmic expression; intein-mediated protein ligation.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Alkynes / chemistry
  • Chitin / metabolism
  • Click Chemistry
  • Cytoplasm / genetics*
  • Escherichia coli / cytology*
  • Escherichia coli / genetics*
  • Gene Expression
  • Humans
  • Inteins*
  • Protein Engineering / methods*
  • Single-Domain Antibodies / chemistry*
  • Single-Domain Antibodies / genetics*
  • Vascular Cell Adhesion Molecule-1 / genetics

Substances

  • Alkynes
  • Single-Domain Antibodies
  • Vascular Cell Adhesion Molecule-1
  • Chitin