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1.
Nat Commun ; 15(1): 4850, 2024 Jun 06.
Article in English | MEDLINE | ID: mdl-38844782

ABSTRACT

Bacterial RNAP needs to form holoenzyme with σ factors to initiate transcription. While Staphylococcus aureus σA controls housekeeping functions, S. aureus σB regulates virulence, biofilm formation, persistence, cell internalization, membrane transport, and antimicrobial resistance. Besides the sequence difference, the spacers between the -35 element and -10 element of σB regulated promoters are shorter than those of σA regulated promoters. Therefore, how σB recognizes and initiates transcription from target promoters can not be inferred from that of the well studied σ. Here, we report the cryo-EM structures of S. aureus RNAP-promoter open complexes comprising σA and σB, respectively. Structural analyses, in combination with biochemical experiments, reveal the structural basis for the promoter specificity of S. aureus transcription. Although the -10 element of σA regulated promoters is recognized by domain σA2 as single-stranded DNA, the -10 element of σB regulated promoters is co-recognized by domains σB2 and σB3 as double-stranded DNA, accounting for the short spacers of σB regulated promoters. S. aureus RNAP is a validated target of antibiotics, and our structures pave the way for rational drug design targeting S. aureus RNAP.


Subject(s)
Bacterial Proteins , Cryoelectron Microscopy , DNA-Directed RNA Polymerases , Promoter Regions, Genetic , Sigma Factor , Staphylococcus aureus , Staphylococcus aureus/genetics , Staphylococcus aureus/enzymology , DNA-Directed RNA Polymerases/metabolism , DNA-Directed RNA Polymerases/genetics , DNA-Directed RNA Polymerases/chemistry , Sigma Factor/metabolism , Sigma Factor/genetics , Sigma Factor/chemistry , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/chemistry , Gene Expression Regulation, Bacterial , Models, Molecular , Transcription, Genetic , Protein Binding
2.
Protein Sci ; 33(6): e5012, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38723180

ABSTRACT

The enormous LysR-type transcriptional regulators (LTTRs), which are diversely distributed amongst prokaryotes, play crucial roles in transcription regulation of genes involved in basic metabolic pathways, virulence and stress resistance. However, the precise transcription activation mechanism of these genes by LTTRs remains to be explored. Here, we determine the cryo-EM structure of a LTTR-dependent transcription activation complex comprising of Escherichia coli RNA polymerase (RNAP), an essential LTTR protein GcvA and its cognate promoter DNA. Structural analysis shows two N-terminal DNA binding domains of GcvA (GcvA_DBD) dimerize and engage the GcvA activation binding sites, presenting the -35 element for specific recognition with the conserved σ70R4. In particular, the versatile C-terminal domain of α subunit of RNAP directly interconnects with GcvA_DBD, σ70R4 and promoter DNA, providing more interfaces for stabilizing the complex. Moreover, molecular docking supports glycine as one potential inducer of GcvA, and single molecule photobleaching experiments kinetically visualize the occurrence of tetrameric GcvA-engaged transcription activation complex as suggested for the other LTTR homologs. Thus, a general model for tetrameric LTTR-dependent transcription activation is proposed. These findings will provide new structural and functional insights into transcription activation of the essential LTTRs.


Subject(s)
DNA-Directed RNA Polymerases , Escherichia coli , Transcriptional Activation , Escherichia coli/genetics , Escherichia coli/metabolism , DNA-Directed RNA Polymerases/metabolism , DNA-Directed RNA Polymerases/chemistry , DNA-Directed RNA Polymerases/genetics , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Promoter Regions, Genetic , Cryoelectron Microscopy , Escherichia coli Proteins/chemistry , Escherichia coli Proteins/metabolism , Escherichia coli Proteins/genetics , Transcription Factors/chemistry , Transcription Factors/metabolism , Transcription Factors/genetics , Models, Molecular , Molecular Docking Simulation , Gene Expression Regulation, Bacterial , Protein Multimerization , Binding Sites
3.
Nat Commun ; 15(1): 4189, 2024 May 17.
Article in English | MEDLINE | ID: mdl-38760379

ABSTRACT

The viral polymerase complex, comprising the large protein (L) and phosphoprotein (P), is crucial for both genome replication and transcription in non-segmented negative-strand RNA viruses (nsNSVs), while structures corresponding to these activities remain obscure. Here, we resolved two L-P complex conformations from the mumps virus (MuV), a typical member of nsNSVs, via cryogenic-electron microscopy. One conformation presents all five domains of L forming a continuous RNA tunnel to the methyltransferase domain (MTase), preferably as a transcription state. The other conformation has the appendage averaged out, which is inaccessible to MTase. In both conformations, parallel P tetramers are revealed around MuV L, which, together with structures of other nsNSVs, demonstrates the diverse origins of the L-binding X domain of P. Our study links varying structures of nsNSV polymerase complexes with genome replication and transcription and points to a sliding model for polymerase complexes to advance along the RNA templates.


Subject(s)
Cryoelectron Microscopy , Mumps virus , Viral Proteins , Mumps virus/genetics , Mumps virus/ultrastructure , Mumps virus/metabolism , Viral Proteins/metabolism , Viral Proteins/ultrastructure , Viral Proteins/chemistry , Viral Proteins/genetics , Models, Molecular , RNA, Viral/metabolism , RNA, Viral/ultrastructure , RNA, Viral/genetics , DNA-Directed RNA Polymerases/metabolism , DNA-Directed RNA Polymerases/ultrastructure , DNA-Directed RNA Polymerases/chemistry , DNA-Directed RNA Polymerases/genetics , Protein Domains , Phosphoproteins/metabolism , Phosphoproteins/chemistry , Phosphoproteins/ultrastructure , RNA-Dependent RNA Polymerase/metabolism , RNA-Dependent RNA Polymerase/ultrastructure , RNA-Dependent RNA Polymerase/chemistry , RNA-Dependent RNA Polymerase/genetics , Virus Replication , Transcription, Genetic , Protein Conformation
4.
Biomolecules ; 14(5)2024 Apr 25.
Article in English | MEDLINE | ID: mdl-38785925

ABSTRACT

The principle of continuity posits that some central features of primordial biocatalytic mechanisms should still be present in the genetically dependent pathway of protein synthesis, a crucial step in the emergence of life. Key bimolecular reactions of this process are catalyzed by DNA-dependent RNA polymerases, aminoacyl-tRNA synthetases, and ribosomes. Remarkably, none of these biocatalysts contribute chemically active groups to their respective reactions. Instead, structural and functional studies have demonstrated that nucleotidic α-phosphate and ß-d-ribosyl 2' OH and 3' OH groups can help their own catalysis, a process which, consequently, has been called "substrate-assisted". Furthermore, upon binding, the substrates significantly lower the entropy of activation, exclude water from these catalysts' active sites, and are readily positioned for a reaction. This binding mode has been described as an "entropy trap". The combination of this effect with substrate-assisted catalysis results in reactions that are stereochemically and mechanistically simpler than the ones found in most modern enzymes. This observation is consistent with the way in which primordial catalysts could have operated; it may also explain why, thanks to their complementary reactivities, ß-d-ribose and phosphate were naturally selected to be the central components of early coding polymers.


Subject(s)
Protein Biosynthesis , Amino Acyl-tRNA Synthetases/metabolism , Amino Acyl-tRNA Synthetases/genetics , Biocatalysis , Ribosomes/metabolism , DNA-Directed RNA Polymerases/metabolism , DNA-Directed RNA Polymerases/chemistry
5.
Nucleic Acids Res ; 52(10): 6017-6035, 2024 Jun 10.
Article in English | MEDLINE | ID: mdl-38709902

ABSTRACT

Archaeal transcription is carried out by a multi-subunit RNA polymerase (RNAP) that is highly homologous in structure and function to eukaryotic RNAP II. Among the set of basal transcription factors, only Spt5 is found in all domains of life, but Spt5 has been shaped during evolution, which is also reflected in the heterodimerization of Spt5 with Spt4 in Archaea and Eukaryotes. To unravel the mechanistic basis of Spt4/5 function in Archaea, we performed structure-function analyses using the archaeal transcriptional machinery of Pyrococcus furiosus (Pfu). We report single-particle cryo-electron microscopy reconstructions of apo RNAP and the archaeal elongation complex (EC) in the absence and presence of Spt4/5. Surprisingly, Pfu Spt4/5 also binds the RNAP in the absence of nucleic acids in a distinct super-contracted conformation. We show that the RNAP clamp/stalk module exhibits conformational flexibility in the apo state of RNAP and that the enzyme contracts upon EC formation or Spt4/5 engagement. We furthermore identified a contact of the Spt5-NGN domain with the DNA duplex that stabilizes the upstream boundary of the transcription bubble and impacts Spt4/5 activity in vitro. This study, therefore, provides the structural basis for Spt4/5 function in archaeal transcription and reveals a potential role beyond the well-described support of elongation.


Subject(s)
Archaeal Proteins , DNA-Directed RNA Polymerases , Models, Molecular , Transcription Elongation, Genetic , Transcriptional Elongation Factors , Archaeal Proteins/chemistry , Archaeal Proteins/metabolism , Archaeal Proteins/genetics , Chromosomal Proteins, Non-Histone/chemistry , Chromosomal Proteins, Non-Histone/genetics , Chromosomal Proteins, Non-Histone/metabolism , Cryoelectron Microscopy , DNA-Directed RNA Polymerases/metabolism , DNA-Directed RNA Polymerases/chemistry , DNA-Directed RNA Polymerases/genetics , Protein Binding , Pyrococcus furiosus/enzymology , Pyrococcus furiosus/genetics , Transcriptional Elongation Factors/metabolism , Transcriptional Elongation Factors/chemistry , Transcriptional Elongation Factors/genetics
6.
Nucleic Acids Res ; 52(10): 5438-5450, 2024 Jun 10.
Article in English | MEDLINE | ID: mdl-38716860

ABSTRACT

In recent years, several noncanonical RNA caps derived from cofactors and metabolites have been identified. Purine-containing RNA caps have been extensively studied, with multiple decapping enzymes identified and efficient capture and sequencing protocols developed for nicotinamide adenine dinucleotide (NAD)-RNA, which allowed for a stepwise elucidation of capping functions. Despite being identified as an abundant noncanonical RNA-cap, UDP-sugar-capped RNA remains poorly understood, which is partly due to its complex in vitro preparation. Here, we describe a scalable synthesis of sugar-capped uridine-guanosine dinucleotides from readily available protected building blocks and their enzymatic conversion into several cell wall precursor-capped dinucleotides. We employed these capped dinucleotides in T7 RNA polymerase-catalyzed in vitro transcription reactions to efficiently generate RNAs capped with uridine diphosphate N-acetylglucosamine (UDP-GlcNAc), its N-azidoacetyl derivative UDP-GlcNAz, and various cell wall precursors. We furthermore identified four enzymes capable of processing UDP-GlcNAc-capped RNA in vitro: MurA, MurB and MurC from Escherichia coli can sequentially modify the sugar-cap structure and were used to introduce a bioorthogonal, clickable moiety, and the human Nudix hydrolase Nudt5 was shown to efficiently decap UDP-GlcNAc-RNA. Our findings underscore the importance of efficient synthetic methods for capped model RNAs. Additionally, we provide useful enzymatic tools that could be utilized in the development and application of UDP-GlcNAc capture and sequencing protocols. Such protocols are essential for deepening our understanding of the widespread yet enigmatic GlcNAc modification of RNA and its physiological significance.


Subject(s)
RNA Caps , Uridine Diphosphate N-Acetylglucosamine , Uridine Diphosphate N-Acetylglucosamine/metabolism , RNA Caps/metabolism , Endoribonucleases/metabolism , Endoribonucleases/chemistry , DNA-Directed RNA Polymerases/metabolism , DNA-Directed RNA Polymerases/genetics , DNA-Directed RNA Polymerases/chemistry , Humans , Escherichia coli/genetics , Escherichia coli/enzymology , Escherichia coli/metabolism , Viral Proteins
7.
Arch Microbiol ; 206(5): 230, 2024 Apr 22.
Article in English | MEDLINE | ID: mdl-38649511

ABSTRACT

During the past few decades, a wealth of knowledge has been made available for the transcription machinery in bacteria from the structural, functional and mechanistic point of view. However, comparatively little is known about the homooligomerization of the multisubunit M. tuberculosis RNA polymerase (RNAP) enzyme and its functional relevance. While E. coli RNAP has been extensively studied, many aspects of RNAP of the deadly pathogenic M. tuberculosis are still unclear. We used biophysical and biochemical methods to study the oligomerization states of the core and holoenzymes of M. tuberculosis RNAP. By size exclusion chromatography and negative staining Transmission Electron Microscopy (TEM) studies and quantitative analysis of the TEM images, we demonstrate that the in vivo reconstituted RNAP core enzyme (α2ßß'ω) can also exist as dimers in vitro. Using similar methods, we also show that the holoenzyme (core + σA) does not dimerize in vitro and exist mostly as monomers. It is tempting to suggest that the oligomeric changes that we see in presence of σA factor might have functional relevance in the cellular process. Although reported previously in E. coli, to our knowledge we report here for the first time the study of oligomeric nature of M. tuberculosis RNAP in presence and absence of σA factor.


Subject(s)
Bacterial Proteins , DNA-Directed RNA Polymerases , Mycobacterium tuberculosis , Protein Multimerization , Mycobacterium tuberculosis/enzymology , Mycobacterium tuberculosis/genetics , Mycobacterium tuberculosis/chemistry , DNA-Directed RNA Polymerases/metabolism , DNA-Directed RNA Polymerases/chemistry , DNA-Directed RNA Polymerases/genetics , Holoenzymes/chemistry , Holoenzymes/metabolism , Bacterial Proteins/metabolism , Bacterial Proteins/chemistry , Bacterial Proteins/genetics , Microscopy, Electron, Transmission , Sigma Factor/metabolism , Sigma Factor/chemistry , Sigma Factor/genetics , Chromatography, Gel
8.
J Mol Biol ; 436(10): 168568, 2024 May 15.
Article in English | MEDLINE | ID: mdl-38583515

ABSTRACT

Porphyromonas gingivalis, an anaerobic CFB (Cytophaga, Fusobacterium, and Bacteroides) group bacterium, is the keystone pathogen of periodontitis and has been implicated in various systemic diseases. Increased antibiotic resistance and lack of effective antibiotics necessitate a search for new intervention strategies. Here we report a 3.5 Å resolution cryo-EM structure of P. gingivalis RNA polymerase (RNAP). The structure displays new structural features in its ω subunit and multiple domains in ß and ß' subunits, which differ from their counterparts in other bacterial RNAPs. Superimpositions with E. coli RNAP holoenzyme and initiation complex further suggest that its ω subunit may contact the σ4 domain, thereby possibly contributing to the assembly and stabilization of initiation complexes. In addition to revealing the unique features of P. gingivalis RNAP, our work offers a framework for future studies of transcription regulation in this important pathogen, as well as for structure-based drug development.


Subject(s)
Bacterial Proteins , DNA-Directed RNA Polymerases , Porphyromonas gingivalis , Bacterial Proteins/chemistry , Cryoelectron Microscopy , DNA-Directed RNA Polymerases/chemistry , Escherichia coli , Models, Molecular , Porphyromonas gingivalis/enzymology , Protein Conformation , Protein Subunits/chemistry
9.
Nucleic Acids Res ; 52(8): 4466-4482, 2024 May 08.
Article in English | MEDLINE | ID: mdl-38567721

ABSTRACT

A central question in biology is how RNA sequence changes influence dynamic conformational changes during cotranscriptional folding. Here we investigated this question through the study of transcriptional fluoride riboswitches, non-coding RNAs that sense the fluoride anion through the coordinated folding and rearrangement of a pseudoknotted aptamer domain and a downstream intrinsic terminator expression platform. Using a combination of Escherichia coli RNA polymerase in vitro transcription and cellular gene expression assays, we characterized the function of mesophilic and thermophilic fluoride riboswitch variants. We showed that only variants containing the mesophilic pseudoknot function at 37°C. We next systematically varied the pseudoknot sequence and found that a single wobble base pair is critical for function. Characterizing thermophilic variants at 65°C through Thermus aquaticus RNA polymerase in vitro transcription showed the importance of this wobble pair for function even at elevated temperatures. Finally, we performed all-atom molecular dynamics simulations which supported the experimental findings, visualized the RNA structure switching process, and provided insight into the important role of magnesium ions. Together these studies provide deeper insights into the role of riboswitch sequence in influencing folding and function that will be important for understanding of RNA-based gene regulation and for synthetic biology applications.


Subject(s)
Base Pairing , Escherichia coli , Fluorides , Nucleic Acid Conformation , Riboswitch , Transcription, Genetic , Riboswitch/genetics , Fluorides/chemistry , Escherichia coli/genetics , Molecular Dynamics Simulation , DNA-Directed RNA Polymerases/metabolism , DNA-Directed RNA Polymerases/chemistry , DNA-Directed RNA Polymerases/genetics , RNA Folding , Magnesium/chemistry , Base Sequence , RNA, Bacterial/chemistry , RNA, Bacterial/genetics , RNA, Bacterial/metabolism , Thermus/genetics , Thermus/enzymology
10.
Talanta ; 274: 125944, 2024 Jul 01.
Article in English | MEDLINE | ID: mdl-38537347

ABSTRACT

In this study, we present a one-pot, one-step, label-free miRNA detection method through a structural transition of a specially designed dumbbell-shape probe, initiating a rolling circle transition (RCT). In principle, target miRNA binds to right loop of the dumbbell probe (DP), which allows structural change of the DP to circular form, exposing a sequence complementary to the T7 promoter (T7p) previously hidden within the stem. This exposure allows T7 RNA polymerase to initiate RCT, producing a repetitive Mango aptamer sequence. TO1-biotin, fluorescent dye, binds to the aptamer, inducing a detectable enhancement of fluorescence intensity. Without miR-141, the DP stays closed, RCT is prevented, and the fluorescence intensity remains low. By employing this novel strategy, target miRNA was successfully identified with a detection of 73 pM and a dynamic linear range of 0-10 nM. Additionally, the method developed enables one-pot, one-step, and label-free detection of miRNA, demonstrating potential for point-of-care testing (POCT) applications. Furthermore, the practical application of the designed technique was demonstrated by reliably detecting the target miRNA in the human serum sample. We also believe that the conceived approach could be widely used to detect not only miRNAs but also diverse biomolecules by simply replacing the detection probe.


Subject(s)
Aptamers, Nucleotide , MicroRNAs , Viral Proteins , MicroRNAs/analysis , MicroRNAs/blood , Humans , Aptamers, Nucleotide/chemistry , Biosensing Techniques/methods , Fluorescent Dyes/chemistry , Limit of Detection , Nucleic Acid Conformation , Spectrometry, Fluorescence , DNA-Directed RNA Polymerases/chemistry
11.
Nucleic Acids Res ; 52(8): 4556-4574, 2024 May 08.
Article in English | MEDLINE | ID: mdl-38554114

ABSTRACT

Transcriptional pausing aids gene regulation by cellular RNA polymerases (RNAPs). A surface-exposed domain inserted into the catalytic trigger loop (TL) of Escherichia coli RNAP, called SI3, modulates pausing and is essential for growth. Here we describe a viable E. coli strain lacking SI3 enabled by a suppressor TL substitution (ß'Ala941→Thr; ΔSI3*). ΔSI3* increased transcription rate in vitro relative to ΔSI3, possibly explaining its viability, but retained both positive and negative effects of ΔSI3 on pausing. ΔSI3* inhibited pauses stabilized by nascent RNA structures (pause hairpins; PHs) but enhanced other pauses. Using NET-seq, we found that ΔSI3*-enhanced pauses resemble the consensus elemental pause sequence whereas sequences at ΔSI3*-suppressed pauses, which exhibited greater association with PHs, were more divergent. ΔSI3*-suppressed pauses also were associated with apparent pausing one nucleotide upstream from the consensus sequence, often generating tandem pause sites. These '-2 pauses' were stimulated by pyrophosphate in vitro and by addition of apyrase to degrade residual NTPs during NET-seq sample processing. We propose that some pauses are readily reversible by pyrophosphorolysis or single-nucleotide cleavage. Our results document multiple ways that SI3 modulates pausing in vivo and may explain discrepancies in consensus pause sequences in some NET-seq studies.


Subject(s)
DNA-Directed RNA Polymerases , Escherichia coli Proteins , Escherichia coli , Transcription, Genetic , DNA-Directed RNA Polymerases/chemistry , DNA-Directed RNA Polymerases/genetics , DNA-Directed RNA Polymerases/metabolism , Escherichia coli/genetics , Escherichia coli/metabolism , Escherichia coli Proteins/metabolism , Escherichia coli Proteins/genetics , Gene Expression Regulation, Bacterial , Protein Domains
12.
Cell ; 187(5): 1145-1159.e21, 2024 Feb 29.
Article in English | MEDLINE | ID: mdl-38428394

ABSTRACT

Chloroplast genes encoding photosynthesis-associated proteins are predominantly transcribed by the plastid-encoded RNA polymerase (PEP). PEP is a multi-subunit complex composed of plastid-encoded subunits similar to bacterial RNA polymerases (RNAPs) stably bound to a set of nuclear-encoded PEP-associated proteins (PAPs). PAPs are essential to PEP activity and chloroplast biogenesis, but their roles are poorly defined. Here, we present cryoelectron microscopy (cryo-EM) structures of native 21-subunit PEP and a PEP transcription elongation complex from white mustard (Sinapis alba). We identify that PAPs encase the core polymerase, forming extensive interactions that likely promote complex assembly and stability. During elongation, PAPs interact with DNA downstream of the transcription bubble and with the nascent mRNA. The models reveal details of the superoxide dismutase, lysine methyltransferase, thioredoxin, and amino acid ligase enzymes that are subunits of PEP. Collectively, these data provide a foundation for the mechanistic understanding of chloroplast transcription and its role in plant growth and adaptation.


Subject(s)
DNA-Directed RNA Polymerases , Plastids , Arabidopsis Proteins/metabolism , Chloroplasts/metabolism , Cryoelectron Microscopy , DNA-Directed RNA Polymerases/chemistry , Gene Expression Regulation, Plant , Plant Proteins/chemistry , Plastids/enzymology , Transcription, Genetic
13.
Cell ; 187(5): 1106-1108, 2024 Feb 29.
Article in English | MEDLINE | ID: mdl-38428392

ABSTRACT

RNA polymerases (RNAPs) control the first step of gene expression in all forms of life by transferring genetic information from DNA to RNA, a process known as transcription. In this issue of Cell, Webster et al. and Wu et al. report three-dimensional structures of RNAP complexes from chloroplasts.


Subject(s)
DNA-Directed RNA Polymerases , DNA-Directed RNA Polymerases/chemistry , DNA-Directed RNA Polymerases/metabolism , Transcription, Genetic , Plastids/enzymology
14.
Chemistry ; 30(24): e202400137, 2024 Apr 25.
Article in English | MEDLINE | ID: mdl-38403849

ABSTRACT

Besides being a key player in numerous fundamental biological processes, RNA also represents a versatile platform for the creation of therapeutic agents and efficient vaccines. The production of RNA oligonucleotides, especially those decorated with chemical modifications, cannot meet the exponential demand. Due to the inherent limits of solid-phase synthesis and in vitro transcription, alternative, biocatalytic approaches are in dire need to facilitate the production of RNA oligonucleotides. Here, we present a first step towards the controlled enzymatic synthesis of RNA oligonucleotides. We have explored the possibility of a simple protection step of the vicinal cis-diol moiety to temporarily block ribonucleotides. We demonstrate that pyrimidine nucleotides protected with acetals, particularly 2',3'-O-isopropylidene, are well-tolerated by the template-independent RNA polymerase PUP (polyU polymerase) and highly efficient coupling reactions can be achieved within minutes - an important feature for the development of enzymatic de novo synthesis protocols. Even though purines are not equally well-tolerated, these findings clearly demonstrate the possibility of using cis-diol-protected ribonucleotides combined with template-independent polymerases for the stepwise construction of RNA oligonucleotides.


Subject(s)
DNA-Directed RNA Polymerases , RNA , RNA/chemistry , RNA/metabolism , DNA-Directed RNA Polymerases/metabolism , DNA-Directed RNA Polymerases/chemistry , Oligonucleotides/chemistry , Oligonucleotides/metabolism , Oligonucleotides/chemical synthesis , Ribonucleotides/chemistry , Ribonucleotides/metabolism , Nucleotides/chemistry , Nucleotides/metabolism , Pyrimidine Nucleotides/chemistry , Pyrimidine Nucleotides/metabolism
15.
Nature ; 626(8000): 891-896, 2024 Feb.
Article in English | MEDLINE | ID: mdl-38326611

ABSTRACT

Transcription elongation stalls at lesions in the DNA template1. For the DNA lesion to be repaired, the stalled transcription elongation complex (EC) has to be removed from the damaged site2. Here we show that translation, which is coupled to transcription in bacteria, actively dislodges stalled ECs from the damaged DNA template. By contrast, paused, but otherwise elongation-competent, ECs are not dislodged by the ribosome. Instead, they are helped back into processive elongation. We also show that the ribosome slows down when approaching paused, but not stalled, ECs. Our results indicate that coupled ribosomes functionally and kinetically discriminate between paused ECs and stalled ECs, ensuring the selective destruction of only the latter. This functional discrimination is controlled by the RNA polymerase's catalytic domain, the Trigger Loop. We show that the transcription-coupled DNA repair helicase UvrD, proposed to cause backtracking of stalled ECs3, does not interfere with ribosome-mediated dislodging. By contrast, the transcription-coupled DNA repair translocase Mfd4 acts synergistically with translation, and dislodges stalled ECs that were not destroyed by the ribosome. We also show that a coupled ribosome efficiently destroys misincorporated ECs that can cause conflicts with replication5. We propose that coupling to translation is an ancient and one of the main mechanisms of clearing non-functional ECs from the genome.


Subject(s)
DNA-Directed RNA Polymerases , Escherichia coli , Protein Biosynthesis , Transcription, Genetic , Catalytic Domain , DNA Helicases/metabolism , DNA Repair , DNA, Bacterial/genetics , DNA, Bacterial/metabolism , DNA-Directed RNA Polymerases/chemistry , DNA-Directed RNA Polymerases/metabolism , Escherichia coli/genetics , Escherichia coli/metabolism , Escherichia coli Proteins/metabolism , Kinetics , Ribosomes/metabolism , Templates, Genetic , Transcription Elongation, Genetic , Genome, Bacterial
16.
Trends Microbiol ; 32(4): 379-397, 2024 Apr.
Article in English | MEDLINE | ID: mdl-37903670

ABSTRACT

Transcription activation is an important checkpoint of regulation of gene expression which occurs in response to different intracellular and extracellular signals. The key elements in this signal transduction process are transcription activators, which determine when and how gene expression is activated. Recent structural studies on a considerable number of new transcription activation complexes (TACs) revealed the remarkable mechanistic diversity of transcription activation mediated by different factors, necessitating a review and re-evaluation of the transcription activation mechanisms. In this review, we present a comprehensive summary of transcription activation mechanisms and propose a new, elaborate, and systematic classification of transcription activation mechanisms, primarily based on the structural features of diverse TAC components.


Subject(s)
Bacterial Proteins , DNA-Directed RNA Polymerases , Transcriptional Activation , Bacterial Proteins/metabolism , DNA-Directed RNA Polymerases/chemistry , DNA-Directed RNA Polymerases/genetics , DNA-Directed RNA Polymerases/metabolism , Sigma Factor/metabolism , Promoter Regions, Genetic , Bacteria/genetics , Bacteria/metabolism , Gene Expression Regulation, Bacterial , Transcription, Genetic
17.
Nat Commun ; 14(1): 8422, 2023 Dec 18.
Article in English | MEDLINE | ID: mdl-38110450

ABSTRACT

RNA performs a wide range of functions regulated by its structure, dynamics, and often post-transcriptional modifications. While NMR is the leading method for understanding RNA structure and dynamics, it is currently limited by the inability to reduce spectral crowding by efficient segmental labeling. Furthermore, because of the challenging nature of RNA chemistry, the tools being developed to introduce site-specific modifications are increasingly complex and laborious. Here we use a previously designed Tgo DNA polymerase mutant to present SegModTeX - a versatile, one-pot, copy-and-paste approach to address these challenges. By precise, stepwise construction of a diverse set of RNA molecules, we demonstrate the technique to be superior to RNA polymerase driven and ligation methods owing to its substantially high yield, fidelity, and selectivity. We also show the technique to be useful for incorporating some fluorescent- and a wide range of other probes, which significantly extends the toolbox of RNA biology in general.


Subject(s)
DNA-Directed RNA Polymerases , RNA , RNA/genetics , RNA/chemistry , DNA-Directed RNA Polymerases/genetics , DNA-Directed RNA Polymerases/chemistry , Magnetic Resonance Spectroscopy , Coloring Agents , Biology
18.
Science ; 382(6677): eadi5120, 2023 12 22.
Article in English | MEDLINE | ID: mdl-38127763

ABSTRACT

Transcription initiation is a complex process, and its mechanism is incompletely understood. We determined the structures of de novo transcribing complexes TC2 to TC17 with RNA polymerase II halted on G-less promoters when nascent RNAs reach 2 to 17 nucleotides in length, respectively. Connecting these structures generated a movie and a working model. As initially synthesized RNA grows, general transcription factors (GTFs) remain bound to the promoter and the transcription bubble expands. Nucleoside triphosphate (NTP)-driven RNA-DNA translocation and template-strand accumulation in a nearly sealed channel may promote the transition from initially transcribing complexes (ITCs) (TC2 to TC9) to early elongation complexes (EECs) (TC10 to TC17). Our study shows dynamic processes of transcription initiation and reveals why ITCs require GTFs and bubble expansion for initial RNA synthesis, whereas EECs need GTF dissociation from the promoter and bubble collapse for promoter escape.


Subject(s)
RNA , Transcription Factors, General , Transcription Initiation, Genetic , DNA-Directed RNA Polymerases/chemistry , RNA/biosynthesis , RNA Polymerase II/chemistry , Transcription Factors, General/metabolism , Humans , Animals , Sus scrofa , Cryoelectron Microscopy , Motion Pictures
19.
J Struct Biol ; 215(4): 108038, 2023 12.
Article in English | MEDLINE | ID: mdl-37858875

ABSTRACT

Transcription of specific genes in bacteria under environmental stress is frequently initiated by extracytoplasmic function (ECF) σ factors. ECFs σ factors harbour two conserved domains, σ2 and σ4, for transcription initiation by recognition of the promoter region and recruitment of RNA polymerase (RNAP). The crystal structure of Streptomyces tsukubaensis SigG1, an ECF56-family σ factor, was determined revealing σ2, σ4 and the additional carboxi-terminal domain SnoaL_2 tightly packed in a compact conformation. The structure of anti-sigma RsfG was also determined by X-ray crystallography and shows a rare ß-barrel fold. Analysis of the metal binding motifs inside the protein barrel are consistent with Fe(III) binding, which is in agreement with previous findings that the Streptomyces tsukubaensis ECF56 SigG1-RsfG system is involved in metal-ion homeostasis.


Subject(s)
Sigma Factor , Streptomyces , Sigma Factor/genetics , Sigma Factor/chemistry , Sigma Factor/metabolism , Bacterial Proteins/chemistry , Ferric Compounds , Models, Molecular , Streptomyces/genetics , DNA-Directed RNA Polymerases/genetics , DNA-Directed RNA Polymerases/chemistry , Gene Expression Regulation, Bacterial
20.
Nature ; 622(7981): 180-187, 2023 Oct.
Article in English | MEDLINE | ID: mdl-37648864

ABSTRACT

Antibiotic binding sites are located in important domains of essential enzymes and have been extensively studied in the context of resistance mutations; however, their study is limited by positive selection. Using multiplex genome engineering1 to overcome this constraint, we generate and characterize a collection of 760 single-residue mutants encompassing the entire rifampicin binding site of Escherichia coli RNA polymerase (RNAP). By genetically mapping drug-enzyme interactions, we identify an alpha helix where mutations considerably enhance or disrupt rifampicin binding. We find mutations in this region that prolong antibiotic binding, converting rifampicin from a bacteriostatic to bactericidal drug by inducing lethal DNA breaks. The latter are replication dependent, indicating that rifampicin kills by causing detrimental transcription-replication conflicts at promoters. We also identify additional binding site mutations that greatly increase the speed of RNAP.Fast RNAP depletes the cell of nucleotides, alters cell sensitivity to different antibiotics and provides a cold growth advantage. Finally, by mapping natural rpoB sequence diversity, we discover that functional rifampicin binding site mutations that alter RNAP properties or confer drug resistance occur frequently in nature.


Subject(s)
Anti-Bacterial Agents , Binding Sites , DNA-Directed RNA Polymerases , Escherichia coli , Mutation , Rifampin , Anti-Bacterial Agents/chemistry , Anti-Bacterial Agents/metabolism , Anti-Bacterial Agents/pharmacology , Binding Sites/drug effects , Binding Sites/genetics , DNA Breaks/drug effects , DNA Replication/drug effects , DNA-Directed RNA Polymerases/antagonists & inhibitors , DNA-Directed RNA Polymerases/chemistry , DNA-Directed RNA Polymerases/genetics , DNA-Directed RNA Polymerases/metabolism , Drug Resistance, Bacterial/genetics , Escherichia coli/drug effects , Escherichia coli/enzymology , Escherichia coli/genetics , Nucleotides/deficiency , Nucleotides/metabolism , Promoter Regions, Genetic , Rifampin/chemistry , Rifampin/metabolism , Rifampin/pharmacology , Time Factors , Transcription, Genetic/drug effects
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