Enhanced immunoprecipitation techniques for the identification of RNA-binding protein partners: IGF2BP1 interactions in mammary epithelial cells

J Biol Chem. 2022 Mar;298(3):101649. doi: 10.1016/j.jbc.2022.101649. Epub 2022 Jan 29.

Abstract

RNA-binding proteins (RBPs) regulate the expression of large cohorts of RNA species to produce programmatic changes in cellular phenotypes. To describe the function of RBPs within a cell, it is key to identify their mRNA-binding partners. This is often done by crosslinking nucleic acids to RBPs, followed by chemical release of the nucleic acid fragments for analysis. However, this methodology is lengthy, which involves complex processing with attendant sample losses, thus large amounts of starting materials and prone to artifacts. To evaluate potential alternative technologies, we tested "exclusion-based" purification of immunoprecipitates (IFAST or SLIDE) and report here that these methods can efficiently, rapidly, and specifically isolate RBP-RNA complexes. The analysis requires less than 1% of the starting material required for techniques that include crosslinking. Depending on the antibody used, 50% to 100% starting protein can be retrieved, facilitating the assay of endogenous levels of RBPs; the isolated ribonucleoproteins are subsequently analyzed using standard techniques, to provide a comprehensive portrait of RBP complexes. Using exclusion-based techniques, we show that the mRNA-binding partners for RBP IGF2BP1 in cultured mammary epithelial cells are enriched in mRNAs important for detoxifying superoxides (specifically glutathione peroxidase [GPX]-1 and GPX-2) and mRNAs encoding mitochondrial proteins. We show that these interactions are functionally significant, as loss of function of IGF2BP1 leads to destabilization of GPX mRNAs and reduces mitochondrial membrane potential and oxygen consumption. We speculate that this underlies a consistent requirement for IGF2BP1 for the expression of clonogenic activity in vitro.

Keywords: RNA-binding protein; RNA–protein interaction; breast cancer; cancer biology; post-transcriptional regulation.

MeSH terms

  • Animals
  • Epithelial Cells / metabolism
  • Female
  • Humans
  • Immunoprecipitation
  • Mammary Glands, Animal* / cytology
  • Mammary Glands, Animal* / metabolism
  • Mammary Glands, Human* / cytology
  • Mammary Glands, Human* / metabolism
  • RNA / metabolism
  • RNA, Messenger
  • RNA-Binding Proteins* / metabolism

Substances

  • RNA, Messenger
  • RNA-Binding Proteins
  • RNA