HK022 Nun requires arginine-rich motif residues distinct from λ N

dc.contributor.authorTawk, Caroline S.
dc.contributor.authorGhattas, Ingrid R.
dc.contributor.authorSmith, Colin Andrew
dc.contributor.departmentDepartment of Biology
dc.contributor.facultyFaculty of Arts and Sciences (FAS)
dc.contributor.institutionAmerican University of Beirut
dc.date.accessioned2025-01-24T11:20:34Z
dc.date.available2025-01-24T11:20:34Z
dc.date.issued2015
dc.description.abstractBacteriophage λ N protein binds boxB RNA hairpins in the nut (N utilization) sites of immediate early λ transcripts and interacts with host factors to suppress transcriptional termination at downstream terminators. In opposition to λ N, the Nun protein of HK022 binds the boxBs of coinfecting λ transcripts, interacts with a similar or identical set of host factors, and terminates transcription to suppress λ replication. Comparison of N-boxB and Nun-boxB nuclear magnetic resonance (NMR) structural models suggests similar interactions, though limited mutagenesis of Nun is available. Here, libraries of Nun's arginine-rich motif (ARM) were screened for the ability to exclude λ coinfection, and mutants were assayed for Nun termination with a boxB plasmid reporter system. Several Nun ARM residues appear to be immutable: Asp26, Arg28, Arg29, Arg32, Trp33, and Arg36. Asp26 and Trp33 appear to be unable to contact boxB and are not found at equivalent positions in λ N ARM. To understand if the requirement of Asp26, Trp33, and Arg36 indicated differences between HK022 Nun termination and λ N antitermination complexes, the same Nun libraries were fused to the activation domain of λ N and screened for clones able to complement N-deficient λ. Mutants were assayed for N antitermination. Surprisingly, Asp26 and Trp33 were still essential when Nun ARM was fused to N. Docking suggests that Nun ARM contacts a hydrophobic surface of the NusG carboxy-terminal domain containing residues necessary for Nun function. These findings indicate that Nun ARM relies on distinct contacts in its ternary complex and illustrate how protein-RNA recognition can evolve new regulatory functions. © 2015, American Society for Microbiology.
dc.identifier.doihttps://doi.org/10.1128/JB.00466-15
dc.identifier.eid2-s2.0-84944625334
dc.identifier.pmid26350130
dc.identifier.urihttp://hdl.handle.net/10938/25046
dc.language.isoen
dc.publisherAmerican Society for Microbiology
dc.relation.ispartofJournal of Bacteriology
dc.sourceScopus
dc.subjectAmino acid motifs
dc.subjectAmino acid sequence
dc.subjectArginine
dc.subjectBacteriophage lambda
dc.subjectBase sequence
dc.subjectGene expression regulation, viral
dc.subjectModels, molecular
dc.subjectPeptide library
dc.subjectProtein conformation
dc.subjectTranscription, genetic
dc.subjectViral regulatory and accessory proteins
dc.subjectAsparagine
dc.subjectBacterial protein
dc.subjectBacteriophage lambda n protein
dc.subjectHost factor
dc.subjectNun protein
dc.subjectRna binding protein
dc.subjectTranscription elongation factor
dc.subjectTryptophan
dc.subjectUnclassified drug
dc.subjectVirus protein
dc.subjectN protein, bacteriophage lambda
dc.subjectViral protein
dc.subjectArticle
dc.subjectBoxb structure
dc.subjectControlled study
dc.subjectEnterobacteria phage hk022
dc.subjectMolecular docking
dc.subjectMolecular library
dc.subjectMolecular recognition
dc.subjectMutagenesis
dc.subjectNonhuman
dc.subjectNuclear magnetic resonance spectroscopy
dc.subjectPlasmid
dc.subjectPriority journal
dc.subjectProtein motif
dc.subjectProtein protein interaction
dc.subjectProtein rna binding
dc.subjectReporter gene
dc.subjectRna structure
dc.subjectTranscription elongation
dc.subjectTranscription regulation
dc.subjectTranscription termination
dc.subjectChemistry
dc.subjectEnterobacteria phage lambda
dc.subjectGene expression regulation
dc.subjectGenetic transcription
dc.subjectMetabolism
dc.subjectMolecular model
dc.subjectNucleotide sequence
dc.subjectPhysiology
dc.titleHK022 Nun requires arginine-rich motif residues distinct from λ N
dc.typeArticle

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