Four-color single-molecule imaging with engineered tags resolves the molecular architecture of signaling complexes in the plasma membrane

Cell Rep Methods. 2022 Feb 4;2(2):100165. doi: 10.1016/j.crmeth.2022.100165. eCollection 2022 Feb 28.

Abstract

Localization and tracking of individual receptors by single-molecule imaging opens unique possibilities to unravel the assembly and dynamics of signaling complexes in the plasma membrane. We present a comprehensive workflow for imaging and analyzing receptor diffusion and interaction in live cells at single molecule level with up to four colors. Two engineered, monomeric GFP variants, which are orthogonally recognized by anti-GFP nanobodies, are employed for efficient and selective labeling of target proteins in the plasma membrane with photostable fluorescence dyes. This labeling technique enables us to quantitatively resolve the stoichiometry and dynamics of the interferon-γ (IFNγ) receptor signaling complex in the plasma membrane of living cells by multicolor single-molecule imaging. Based on versatile spatial and spatiotemporal correlation analyses, we identify ligand-induced receptor homo- and heterodimerization. Multicolor single-molecule co-tracking and quantitative single-molecule Förster resonance energy transfer moreover reveals transient assembly of IFNγ receptor heterotetramers and confirms its structural architecture.

Keywords: cell surface labeling; cytokine receptor; live-cell imaging; multicolor imaging; plasma membrane dynamics; receptor dimerization; single molecule tracking; single-molecule FRET; single-molecule fluorescence microscopy; type II interferon receptor.

Publication types

  • Research Support, N.I.H., Extramural
  • Research Support, Non-U.S. Gov't

MeSH terms

  • Cell Membrane / metabolism
  • Fluorescence Resonance Energy Transfer* / methods
  • Fluorescent Dyes / chemistry
  • Proteins / chemistry
  • Single Molecule Imaging* / methods

Substances

  • Proteins
  • Fluorescent Dyes