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Artsimovitch, I.

Publications and source records attributed to Artsimovitch, I..

4 recordsLinked to original sources

The dormancy specific regulator, SutA, is an intrinsically-disordered protein that modulates transcription initiation in Pseudomonas aeruginosa

Though bacteria in nature are often nutritionally limited and growing slowly, most of our understanding of core cellular processes such as transcription comes from studies in a handful of model organisms doubling rapidly under nutrient-replete conditions. We previously identified a small protein of unknown function, called SutA, in a global screen of proteins synthesized in Pseudomonas aeruginosa under growth arrest (Babin BM, et al. (2016) SutA is a bacterial transcription factor expressed during slow growth in Pseudomonas aeruginosa. PNAS 113(5):E597-605). SutA binds RNA polymerase (RNAP), causing widespread changes in gene expression, including upregulation of the ribosomal RNA (rRNA) genes. Here, using biochemical and structural methods, we examine how SutA interacts with RNAP and the functional consequences of these interactions. We show that SutA consists of a central -helix with unstructured N- and C-terminal tails, and binds to the {beta}1 domain of RNAP. It activates transcription from the P. aeruginosa rrn promoter by both the housekeeping sigma factor holoenzyme (E{sigma}70) and the general stress response sigma factor holoenzyme (E{sigma}S) in vitro, and its N-terminal tail is required for activation in both holoenzyme contexts. However, we find that the interaction between SutA and each holoenzyme is distinct, with the SutA C-terminal tail and an acidic loop unique to {sigma}70 playing the determining roles in these differences. Our results add SutA to a growing list of transcription regulators that use their intrinsically disordered regions to remodel transcription complexes.\n\nSIGNIFICANCELittle is known about how bacteria regulate their activities during periods of dormancy, yet growth arrest dominates bacterial existence in most environments and is directly relevant to the problem of physiological antibiotic tolerance. Though much is known about transcription in the model organism, Escherichia coli, even there, our understanding of gene expression during dormancy is incomplete. Here we explore how transcription under growth arrest is modulated in Pseudomonas aeruginosa by the small acidic protein, SutA. We show that SutA binds to RNA polymerase and controls transcription by a mechanism that is distinct from other known regulators. Our work underscores the potential for fundamental, mechanistic discovery in this important and understudied realm of bacterial physiology.

molecular biology

Ligand Modulates Cross-Coupling between Riboswitch Folding and Transcriptional Pausing

HighlightsO_LIsmFRET, biochemistry and simulations probe co-transcriptional riboswitch folding\nC_LIO_LINascent RNA folding is disfavored by the DNA template and aided by RNAP\nC_LIO_LITranscriptional pausing is stabilized by RNA pseudoknot and destabilized by ligand\nC_LI\n\nSUMMARYNumerous classes of riboswitches have been found to regulate bacterial gene expression in response to physiological cues, offering new paths to anti-bacterial drugs. As common studies of isolated riboswitches lack the functional context of the transcription machinery, we here combine single-molecule, biochemical and simulation approaches to investigate the coupling between co-transcriptional folding of the pseudoknot-structured preQ1 riboswitch and RNA polymerase (RNAP) pausing. We show that pausing at a site immediately downstream of the riboswitch requires a ligand-free pseudoknot in the nascent RNA, a precisely spaced sequence resembling the pause consensus, and electrostatic and steric interactions with the RNAP exit channel. While interactions with RNAP stabilize the native fold of the riboswitch, binding of the ligand signals RNAP release from the pause. Our results demonstrate that the nascent riboswitch and its ligand actively modulate the function of RNAP and vice versa, a paradigm likely to apply to other cellular RNA transcripts.

biophysics

Structural basis for transcript elongation control by NusG/RfaH universal regulators

NusG/RfaH/Spt5 transcription elongation factors are the only transcription regulators conserved across all life. In bacteria, NusG regulates RNA polymerase (RNAP) elongation complexes (ECs) across most genes, enhancing elongation by suppressing RNAP backtracking and also coordinating {rho}-dependent termination and translation. RfaH is a specialized NusG paralog that engages the EC at ops sites and subsequently excludes NusG and suppresses both backtrack and hairpin-stabilized pausing. We used single-particle cryo-EM to determine structures of ECs at ops with NusG or RfaH. Both factors chaperone base pairing of the EC upstream duplex DNA to suppress backtracking. RfaH loads onto the EC by specific recognition of an ops hairpin in the single-stranded nontemplate DNA. Binding of both NusG and RfaH is incompatible with the swiveled RNAP conformation necessary for hairpin-stabilized pausing, but only RfaH fully counteracts swiveling to suppress pausing. The universal conservation of NusG/RfaH/Spt5 suggests that the molecular mechanisms uncovered here are widespread.

biophysics

The universally-conserved transcription factor RfaH is recruited to a hairpin structure of the non-template DNA strand

RfaH, a transcription regulator of the universally conserved NusG/Spt5 family, utilizes a unique mode of recruitment to elongating RNA polymerase to activate virulence genes. RfaH function depends critically on an ops sequence, an exemplar of a consensus pause, in the non-template DNA strand of the transcription bubble. We used structural and functional analyses to elucidate the role of ops in RfaH recruitment. Our results demonstrate that ops induces pausing to facilitate RfaH binding and establishes direct contacts with RfaH. Strikingly, the non-template DNA forms a hairpin in the RfaH: ops complex structure, flipping out a conserved T residue that is specifically recognized by RfaH. Molecular modeling and genetic evidence support the notion that ops hairpin is required for RfaH recruitment. We argue that both the sequence and the structure of the non-template strand are read out by transcription factors, expanding the repertoire of transcriptional regulators in all domains of life.

biochemistry