1999
Mapping RNA−Protein Interactions in Ribonuclease P from Escherichia coli Using Electron Paramagnetic Resonance Spectroscopy †
Gopalan V, Kühne H, Biswas R, Li H, Brudvig G, Altman S. Mapping RNA−Protein Interactions in Ribonuclease P from Escherichia coli Using Electron Paramagnetic Resonance Spectroscopy †. Biochemistry 1999, 38: 1705-1714. PMID: 10026248, DOI: 10.1021/bi9807106.Peer-Reviewed Original ResearchMeSH KeywordsAmino Acid SequenceBacterial ProteinsBinding SitesComputer SimulationElectron Spin Resonance SpectroscopyEndoribonucleasesEscherichia coliEscherichia coli ProteinsModels, MolecularMolecular Sequence DataMutagenesis, Site-DirectedProtein FoldingRibonuclease PRibonucleoproteinsRNA, BacterialRNA, CatalyticSpin LabelsStructure-Activity RelationshipConceptsM1 RNAC5 proteinRibonuclease PCysteine residuesEscherichia coliRNA-protein interfaceCatalytic RNA subunitNative cysteine residuesSulfhydryl-specific reagentsCatalytic ribonucleoproteinRNA subunitHoloenzyme complexRNP complexesProtein cofactorsMutant derivativesDeletion derivativesRNASpin labelsProteinSpectroscopy-based approachRibonucleoproteinResiduesPosition 16Coli
1996
Effects of Dipole–Dipole Interactions on Microwave Progressive Power Saturation of Radicals in Proteins
Galli C, Innes J, Hirsh D, Brudvig G. Effects of Dipole–Dipole Interactions on Microwave Progressive Power Saturation of Radicals in Proteins. Journal Of Magnetic Resonance 1996, 110: 284-287. PMID: 8867444, DOI: 10.1006/jmrb.1996.0044.Peer-Reviewed Original ResearchElectron Spin Resonance SpectroscopyFree RadicalsHumansMetalloproteinsMicrowavesProteinsSignal Processing, Computer-AssistedStructure-Activity Relationship