A new carbamidemethyl-linked lanthanoid chelating tag for PCS NMR spectroscopy of proteins in living HeLa cells.
Yuya HikoneGo HiraiMasaki MishimaKohsuke InomataTeppei IkeyaSouichiro AraiMasahiro ShirakawaMikiko SodeokaYutaka ItoPublished in: Journal of biomolecular NMR (2016)
Structural analyses of proteins under macromolecular crowding inside human cultured cells by in-cell NMR spectroscopy are crucial not only for explicit understanding of their cellular functions but also for applications in medical and pharmaceutical sciences. In-cell NMR experiments using human cultured cells however suffer from low sensitivity, thus pseudocontact shifts from protein-tagged paramagnetic lanthanoid ions, analysed using sensitive heteronuclear two-dimensional correlation NMR spectra, offer huge potential advantage in obtaining structural information over conventional NOE-based approaches. We synthesised a new lanthanoid-chelating tag (M8-CAM-I), in which the eight-fold, stereospecifically methylated DOTA (M8) scaffold was retained, while a stable carbamidemethyl (CAM) group was introduced as the functional group connecting to proteins. M8-CAM-I successfully fulfilled the requirements for in-cell NMR: high-affinity to lanthanoid, low cytotoxicity and the stability under reducing condition inside cells. Large PCSs for backbone N-H resonances observed for M8-CAM-tagged human ubiquitin mutant proteins, which were introduced into HeLa cells by electroporation, demonstrated that this approach readily provides the useful information enabling the determination of protein structures, relative orientations of domains and protein complexes within human cultured cells.
Keyphrases
- induced apoptosis
- cell cycle arrest
- endothelial cells
- magnetic resonance
- cell death
- endoplasmic reticulum stress
- high resolution
- single cell
- induced pluripotent stem cells
- signaling pathway
- computed tomography
- small molecule
- mesenchymal stem cells
- climate change
- cell therapy
- protein protein
- mass spectrometry
- pluripotent stem cells
- molecular dynamics
- density functional theory