6533b7dafe1ef96bd126f724

RESEARCH PRODUCT

A novel bio-orthogonal cross-linker for improved protein/protein interaction analysis

Guillaume Van Der RestJulia Chamot-rookeCatherine NuryPierre-yves RenardAnthony RomieuAnthony RomieuVirginie RedekerSébastien DautreyRonald Melki

subject

Models MolecularAzidesMolecular Sequence DataPeptide[CHIM.THER]Chemical Sciences/Medicinal ChemistryMass spectrometry01 natural sciencesMass SpectrometryAnalytical ChemistryProtein–protein interaction03 medical and health sciencesHydrolysis[CHIM.ANAL]Chemical Sciences/Analytical chemistryProtein Interaction MappingHumansOrganic chemistryAmino Acid SequenceProtein Interaction MapsCross linker030304 developmental biologychemistry.chemical_classification0303 health sciencesRigid coreEnzymatic digestionChemistry[CHIM.ORGA]Chemical Sciences/Organic chemistry010401 analytical chemistryHSC70 Heat-Shock ProteinsParkinson Disease[CHIM.CATA]Chemical Sciences/CatalysisCombinatorial chemistry0104 chemical sciences[CHIM.THEO]Chemical Sciences/Theoretical and/or physical chemistryCross-Linking ReagentsReagentalpha-SynucleinCarbamates[CHIM.CHEM]Chemical Sciences/CheminformaticsChromatography Liquid

description

International audience; The variety of protein cross-linkers developed in recent years illustrates the current requirement for efficient reagents optimized for mass spectrometry (MS) analysis. To date, the most widely used strategy relies on commercial cross-linkers that bear an isotopically labeled tag and N-hydroxysuccinimid-ester (NHS-ester) moieties. Moreover, an enrichment step using liquid chromatography is usually performed after enzymatic digestion of the cross-linked proteins. Unfortunately, this approach suffers from several limitations. First, it requires large amounts of proteins. Second, NHS-ester cross-linkers are poorly efficient because of their fast hydrolysis in water. Finally, data analysis is complicated because of uneven fragmentation of complex isotopic cross-linked peptide mixtures. We therefore synthesized a new type of trifunctional cross-linker to overrule these limitations. This reagent, named NNP9, comprises a rigid core and bears two activated carbamate moieties and an azido group. NNP9 was used to establish intra- and intermolecular cross-links within creatine kinase, then to map the interaction surfaces between α-Synuclein (α-Syn), the aggregation of which leads to Parkinson’s disease, and the molecular chaperone Hsc70. We show that NNP9 cross-linking efficiency is significantly higher than that of NHS-ester commercial cross-linkers. The number of cross-linked peptides identified was increased, and a high quality of MS/MS spectra leading to high sequence coverage was observed. Our data demonstrate the potential of NNP9 for an efficient and straightforward characterization of protein–protein interfaces and illustrate the power of using different cross-linkers to map thoroughly the surface interfaces within protein complexes.

10.1021/ac503892chttps://hal.science/hal-01144840