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1.
Nucleic Acids Res ; 52(9): 5320-5335, 2024 May 22.
Artículo en Inglés | MEDLINE | ID: mdl-38366569

RESUMEN

The σ54-σS sigma factor cascade plays a central role in regulating differential gene expression during the enzootic cycle of Borreliella burgdorferi, the Lyme disease pathogen. In this pathway, the primary transcription of rpoS (which encodes σS) is under the control of σ54 which is activated by a bacterial enhancer-binding protein (EBP), Rrp2. The σ54-dependent activation in B. burgdorferi has long been thought to be unique, requiring an additional factor, BosR, a homologue of classical Fur/PerR repressor/activator. However, how BosR is involved in this σ54-dependent activation remains unclear and perplexing. In this study, we demonstrate that BosR does not function as a regulator for rpoS transcriptional activation. Instead, it functions as a novel RNA-binding protein that governs the turnover rate of rpoS mRNA. We further show that BosR directly binds to the 5' untranslated region (UTR) of rpoS mRNA, and the binding region overlaps with a region required for rpoS mRNA degradation. Mutations within this 5'UTR region result in BosR-independent RpoS production. Collectively, these results uncover a novel role of Fur/PerR family regulators as RNA-binding proteins and redefine the paradigm of the σ54-σS pathway in B. burgdorferi.


Asunto(s)
Proteínas Bacterianas , Borrelia burgdorferi , Regulación Bacteriana de la Expresión Génica , Estabilidad del ARN , Proteínas de Unión al ARN , Factor sigma , Factor sigma/metabolismo , Factor sigma/genética , Borrelia burgdorferi/genética , Borrelia burgdorferi/metabolismo , Proteínas Bacterianas/metabolismo , Proteínas Bacterianas/genética , Estabilidad del ARN/genética , Proteínas de Unión al ARN/metabolismo , Proteínas de Unión al ARN/genética , Regiones no Traducidas 5' , Enfermedad de Lyme/microbiología , Enfermedad de Lyme/genética , Proteínas Represoras/metabolismo , Proteínas Represoras/genética , ARN Mensajero/metabolismo , ARN Mensajero/genética , ARN Polimerasa Sigma 54/metabolismo , ARN Polimerasa Sigma 54/genética
2.
Cells ; 12(6)2023 03 07.
Artículo en Inglés | MEDLINE | ID: mdl-36980170

RESUMEN

The sigma (σ) factor of RNA holoenzymes is essential for identifying and binding to promoter regions during gene transcription in prokaryotes. σ54 promoters carried out various ancillary methods and environmentally responsive procedures; therefore, it is crucial to accurately identify σ54 promoter sequences to comprehend the underlying process of gene regulation. Herein, we come up with a convolutional neural network (CNN) based prediction tool named "iProm-Sigma54" for the prediction of σ54 promoters. The CNN consists of two one-dimensional convolutional layers, which are followed by max pooling layers and dropout layers. A one-hot encoding scheme was used to extract the input matrix. To determine the prediction performance of iProm-Sigma54, we employed four assessment metrics and five-fold cross-validation; performance was measured using a benchmark and test dataset. According to the findings of this comparison, iProm-Sigma54 outperformed existing methodologies for identifying σ54 promoters. Additionally, a publicly accessible web server was constructed.


Asunto(s)
ARN Polimerasas Dirigidas por ADN , Factor sigma , ARN Polimerasa Sigma 54/genética , ARN Polimerasa Sigma 54/metabolismo , ARN Polimerasas Dirigidas por ADN/metabolismo , Factor sigma/genética , Factor sigma/metabolismo , Regiones Promotoras Genéticas/genética , Redes Neurales de la Computación
3.
Sci Adv ; 8(51): eadd3479, 2022 12 21.
Artículo en Inglés | MEDLINE | ID: mdl-36542713

RESUMEN

Gene transcription is carried out by RNA polymerase (RNAP) and requires the conversion of the initial closed promoter complex, where DNA is double stranded, to a transcription-competent open promoter complex, where DNA is opened up. In bacteria, RNAP relies on σ factors for its promoter specificities. Using a special form of sigma factor (σ54), which forms a stable closed complex and requires its activator that belongs to the AAA+ ATPases (ATPases associated with diverse cellular activities), we obtained cryo-electron microscopy structures of transcription initiation complexes that reveal a previously unidentified process of DNA melting opening. The σ54 amino terminus threads through the locally opened up DNA and then becomes enclosed by the AAA+ hexameric ring in the activator-bound intermediate complex. Our structures suggest how ATP hydrolysis by the AAA+ activator could remove the σ54 inhibition while helping to open up DNA, using σ54 amino-terminal peptide as a pry bar.


Asunto(s)
ARN Polimerasas Dirigidas por ADN , ADN , ARN Polimerasa Sigma 54/genética , ARN Polimerasa Sigma 54/química , ARN Polimerasa Sigma 54/metabolismo , Microscopía por Crioelectrón , ARN Polimerasas Dirigidas por ADN/metabolismo , Regiones Promotoras Genéticas , Transcripción Genética
4.
J Bacteriol ; 204(1): e0035021, 2022 01 18.
Artículo en Inglés | MEDLINE | ID: mdl-34633869

RESUMEN

Bacterial cells alter gene expression in response to changes in population density in a process called quorum sensing (QS). In Vibrio harveyi, LuxO, a low-cell-density activator of sigma factor-54 (RpoN), is required for transcription of five noncoding regulatory small RNAs (sRNAs), Qrr1 to Qrr5, which each repress translation of the master QS regulator, LuxR. Vibrio parahaemolyticus, the leading cause of bacterial seafoodborne gastroenteritis, also contains five Qrr sRNAs that control OpaR (the LuxR homolog), controlling capsule polysaccharide (CPS), motility, and metabolism. We show that in a ΔluxO deletion mutant, opaR was derepressed and CPS and biofilm were produced. However, in a ΔrpoN mutant, opaR was repressed, no CPS was produced, and less biofilm production was observed than in the wild type. To determine why opaR was repressed, expression analysis in ΔluxO showed that all five qrr genes were repressed, while in ΔrpoN the qrr2 gene was significantly derepressed. Reporter assays and mutant analysis showed that Qrr2 sRNA can act alone to control OpaR. Bioinformatics analysis identified a sigma-70 (RpoD) -35 -10 promoter overlapping the canonical sigma-54 (RpoN) -24 -12 promoter in the qrr2 regulatory region. The qrr2 sigma-70 promoter element was also present in additional Vibrio species, indicating that it is widespread. Mutagenesis of the sigma-70 -10 promoter site in the ΔrpoN mutant background resulted in repression of qrr2. Analysis of qrr quadruple deletion mutants, in which only a single qrr gene is present, showed that only Qrr2 sRNA can act independently to regulate opaR. Mutant and expression data also demonstrated that RpoN and the global regulator, Fis, act additively to repress qrr2. Our data have uncovered a new mechanism of qrr expression and show that Qrr2 sRNA is sufficient for OpaR regulation. IMPORTANCE The quorum sensing noncoding small RNAs (sRNAs) are present in all Vibrio species but vary in number and regulatory roles among species. In the Harveyi clade, all species contain five qrr genes, and in Vibrio harveyi these are transcribed by sigma-54 and are additive in function. In the Cholerae clade, four qrr genes are present, and in Vibrio cholerae the qrr genes are redundant in function. In Vibrio parahaemolyticus, qrr2 is controlled by two overlapping promoters. In an rpoN mutant, qrr2 is transcribed from a sigma-70 promoter that is present in all V. parahaemolyticus strains and in other species of the Harveyi clade, suggesting a conserved mechanism of regulation. Qrr2 sRNA can function as the sole Qrr sRNA to control OpaR.


Asunto(s)
Proteínas Bacterianas/metabolismo , Percepción de Quorum/fisiología , ARN Bacteriano/metabolismo , Vibrio parahaemolyticus/fisiología , Proteínas Bacterianas/genética , ARN Polimerasas Dirigidas por ADN/genética , ARN Polimerasas Dirigidas por ADN/metabolismo , Regulación Bacteriana de la Expresión Génica/fisiología , Mutación , Filogenia , ARN Polimerasa Sigma 54/genética , ARN Polimerasa Sigma 54/metabolismo , ARN Bacteriano/genética , Factor sigma/genética , Factor sigma/metabolismo , Vibrio parahaemolyticus/genética
5.
Nucleic Acids Res ; 50(1): 227-243, 2022 01 11.
Artículo en Inglés | MEDLINE | ID: mdl-34928327

RESUMEN

Pseudomonas aeruginosa uses three type six secretion systems (H1-, H2- and H3-T6SS) to manipulate its environment, subvert host cells and for microbial competition. These T6SS machines are loaded with a variety of effectors/toxins, many being associated with a specific VgrG. How P. aeruginosa transcriptionally coordinates the main T6SS clusters and the multiple vgrG islands spread through the genome is unknown. Here we show an unprecedented level of control with RsmA repressing most known T6SS-related genes. Moreover, each of the H2- and H3-T6SS clusters encodes a sigma factor activator (SFA) protein called, Sfa2 and Sfa3, respectively. SFA proteins are enhancer binding proteins necessary for the sigma factor RpoN. Using a combination of RNA-seq, ChIP-seq and molecular biology approaches, we demonstrate that RpoN coordinates the T6SSs of P. aeruginosa by activating the H2-T6SS but repressing the H1- and H3-T6SS. Furthermore, RpoN and Sfa2 control the expression of the H2-T6SS-linked VgrGs and their effector arsenal to enable very effective interbacterial killing. Sfa2 is specific as Sfa3 from the H3-T6SS cannot complement loss of Sfa2. Our study further delineates the regulatory mechanisms that modulate the deployment of an arsenal of T6SS effectors likely enabling P. aeruginosa to adapt to a range of environmental conditions.


Asunto(s)
Sistemas de Secreción Bacterianos/genética , Pseudomonas aeruginosa/metabolismo , ARN Polimerasa Sigma 54/metabolismo , Sistemas de Secreción Bacterianos/metabolismo , Toxinas Bacterianas/genética , Toxinas Bacterianas/metabolismo , Regulación Bacteriana de la Expresión Génica , Pseudomonas aeruginosa/genética , ARN Polimerasa Sigma 54/genética
6.
Int J Mol Sci ; 22(23)2021 Nov 24.
Artículo en Inglés | MEDLINE | ID: mdl-34884502

RESUMEN

σ54 factor (RpoN), a type of transcriptional regulatory factor, is widely found in pathogenic bacteria. It binds to core RNA polymerase (RNAP) and regulates the transcription of many functional genes in an enhancer-binding protein (EBP)-dependent manner. σ54 has two conserved functional domains: the activator-interacting domain located at the N-terminal and the DNA-binding domain located at the C-terminal. RpoN directly binds to the highly conserved sequence, GGN10GC, at the -24/-12 position relative to the transcription start site of target genes. In general, bacteria contain one or two RpoNs but multiple EBPs. A single RpoN can bind to different EBPs in order to regulate various biological functions. Thus, the overlapping and unique regulatory pathways of two RpoNs and multiple EBP-dependent regulatory pathways form a complex regulatory network in bacteria. However, the regulatory role of RpoN and EBPs is still poorly understood in phytopathogenic bacteria, which cause economically important crop diseases and pose a serious threat to world food security. In this review, we summarize the current knowledge on the regulatory function of RpoN, including swimming motility, flagella synthesis, bacterial growth, type IV pilus (T4Ps), twitching motility, type III secretion system (T3SS), and virulence-associated phenotypes in phytopathogenic bacteria. These findings and knowledge prove the key regulatory role of RpoN in bacterial growth and pathogenesis, as well as lay the groundwork for further elucidation of the complex regulatory network of RpoN in bacteria.


Asunto(s)
Bacterias/patogenicidad , Proteínas Bacterianas/metabolismo , Elementos de Facilitación Genéticos , Regulación Bacteriana de la Expresión Génica , ARN Polimerasa Sigma 54/metabolismo , Sistemas de Secreción Tipo III/metabolismo , Virulencia , Animales , Proteínas Bacterianas/genética , Humanos , ARN Polimerasa Sigma 54/genética , Sistemas de Secreción Tipo III/genética
7.
Nat Commun ; 11(1): 2422, 2020 05 15.
Artículo en Inglés | MEDLINE | ID: mdl-32415118

RESUMEN

Transcription is fundamentally noisy, leading to significant heterogeneity across bacterial populations. Noise is often attributed to burstiness, but the underlying mechanisms and their dependence on the mode of promotor regulation remain unclear. Here, we measure E. coli single cell mRNA levels for two stress responses that depend on bacterial sigma factors with different mode of transcription initiation (σ70 and σ54). By fitting a stochastic model to the observed mRNA distributions, we show that the transition from low to high expression of the σ70-controlled stress response is regulated via the burst size, while that of the σ54-controlled stress response is regulated via the burst frequency. Therefore, transcription initiation involving σ54 differs from other bacterial systems, and yields bursting kinetics characteristic of eukaryotic systems.


Asunto(s)
Escherichia coli/genética , Regulación Bacteriana de la Expresión Génica , Transcripción Genética , Adenosina Trifosfato/química , Teorema de Bayes , ARN Polimerasas Dirigidas por ADN/metabolismo , Proteínas de Escherichia coli/metabolismo , Hidrólisis , Cinética , Modelos Genéticos , Regiones Promotoras Genéticas , ARN Polimerasa Sigma 54/metabolismo , ARN Mensajero/metabolismo , Factor sigma/metabolismo , Análisis de la Célula Individual , Procesos Estocásticos
8.
J Bacteriol ; 202(14)2020 06 25.
Artículo en Inglés | MEDLINE | ID: mdl-32341074

RESUMEN

Bacteria synthesize inorganic polyphosphate (polyP) in response to a variety of different stress conditions. polyP protects bacteria by acting as a protein-stabilizing chaperone, metal chelator, or regulator of protein function, among other mechanisms. However, little is known about how stress signals are transmitted in the cell to lead to increased polyP accumulation. Previous work in the model enterobacterium Escherichia coli has indicated that the RNA polymerase-binding regulatory protein DksA is required for polyP synthesis in response to nutrient limitation stress. In this work, I set out to characterize the role of DksA in polyP regulation in more detail. I found that overexpression of DksA increases cellular polyP content (explaining the long-mysterious phenotype of dksA overexpression rescuing growth of a dnaK mutant at high temperatures) and characterized the roles of known functional residues of DksA in this process, finding that binding to RNA polymerase is required but that none of the other functions of DksA appear to be necessary. Transcriptomics revealed genome-wide transcriptional changes upon nutrient limitation, many of which were affected by DksA, and follow-up experiments identified complex interactions between DksA and the stress-sensing alternative sigma factors FliA, RpoN, and RpoE that impact polyP production, indicating that regulation of polyP synthesis is deeply entwined in the multifactorial stress response network of E. coliIMPORTANCE Inorganic polyphosphate (polyP) is an evolutionarily ancient, widely conserved biopolymer required for stress resistance and pathogenesis in diverse bacteria, but we do not understand how its synthesis is regulated. In this work, I gained new insights into this process by characterizing the role of the transcriptional regulator DksA in polyP regulation in Escherichia coli and identifying previously unknown links between polyP synthesis and the stress-responsive alternative sigma factors FliA, RpoN, and RpoE.


Asunto(s)
Proteínas de Escherichia coli/metabolismo , Escherichia coli/metabolismo , Polifosfatos/metabolismo , ARN Polimerasa Sigma 54/metabolismo , Factor sigma/metabolismo , Escherichia coli/genética , Proteínas de Escherichia coli/genética , Regulación Bacteriana de la Expresión Génica , Unión Proteica , ARN Polimerasa Sigma 54/genética , Factor sigma/genética , Estrés Fisiológico
9.
Biomolecules ; 10(3)2020 02 25.
Artículo en Inglés | MEDLINE | ID: mdl-32106553

RESUMEN

Bacterial enhancer-binding proteins (bEBPs) are specialised transcriptional activators. bEBPs are hexameric AAA+ ATPases and use ATPase activities to remodel RNA polymerase (RNAP) complexes that contain the major variant sigma factor, σ54 to convert the initial closed complex to the transcription competent open complex. Earlier crystal structures of AAA+ domains alone have led to proposals of how nucleotide-bound states are sensed and propagated to substrate interactions. Recently, the structure of the AAA+ domain of a bEBP bound to RNAP-σ54-promoter DNA was revealed. Together with structures of the closed complex, an intermediate state where DNA is partially loaded into the RNAP cleft and the open promoter complex, a mechanistic understanding of how bEBPs use ATP to activate transcription can now be proposed. This review summarises current structural models and the emerging understanding of how this special class of AAA+ proteins utilises ATPase activities to allow σ54-dependent transcription initiation.


Asunto(s)
Proteínas AAA/metabolismo , Bacterias/genética , Proteínas Bacterianas/metabolismo , Regulación Bacteriana de la Expresión Génica , Factores de Transcripción/metabolismo , Activación Transcripcional , Proteínas AAA/química , Proteínas AAA/genética , Adenosina Trifosfato/metabolismo , Bacterias/química , Bacterias/metabolismo , Proteínas Bacterianas/química , Proteínas Bacterianas/genética , Modelos Moleculares , Conformación Proteica , Multimerización de Proteína , ARN Polimerasa Sigma 54/química , ARN Polimerasa Sigma 54/genética , ARN Polimerasa Sigma 54/metabolismo , Factores de Transcripción/química , Factores de Transcripción/genética
10.
J Mol Biol ; 431(20): 3960-3974, 2019 09 20.
Artículo en Inglés | MEDLINE | ID: mdl-31029702

RESUMEN

Cellular RNA polymerase is a multi-subunit macromolecular assembly responsible for gene transcription, a highly regulated process conserved from bacteria to humans. In bacteria, sigma factors are employed to mediate gene-specific expression in response to a variety of environmental conditions. The major variant σ factor, σ54, has a specific role in stress responses. Unlike σ70-dependent transcription, which often can spontaneously proceed to initiation, σ54-dependent transcription requires an additional ATPase protein for activation. As a result, structures of a number of distinct functional states during the dynamic process of transcription initiation have been captured using the σ54 system with both x-ray crystallography and cryo electron microscopy, furthering our understanding of σ54-dependent transcription initiation and DNA opening. Comparisons with σ70 and eukaryotic polymerases reveal unique and common features during transcription initiation.


Asunto(s)
Bacterias/enzimología , Bacterias/metabolismo , ARN Polimerasa Sigma 54/metabolismo , Iniciación de la Transcripción Genética , Adenosina Trifosfatasas/química , Adenosina Trifosfatasas/genética , Adenosina Trifosfatasas/metabolismo , Microscopía por Crioelectrón , Cristalografía por Rayos X , ADN Bacteriano/genética , ADN Bacteriano/metabolismo , ARN Polimerasas Dirigidas por ADN/química , ARN Polimerasas Dirigidas por ADN/genética , ARN Polimerasas Dirigidas por ADN/metabolismo , Complejos Multienzimáticos/química , Complejos Multienzimáticos/genética , Complejos Multienzimáticos/metabolismo , Regiones Promotoras Genéticas , Conformación Proteica , ARN Polimerasa Sigma 54/química , ARN Polimerasa Sigma 54/genética
11.
Appl Environ Microbiol ; 85(7)2019 04 01.
Artículo en Inglés | MEDLINE | ID: mdl-30709822

RESUMEN

Labrenzia aggregata LZB033 (Rhodobacteraceae), which produces dimethylsulfoniopropionate (DMSP) and reduces nitrate to nitrogen, was isolated from seawater of the East China Sea. Its genome encodes a large number of transcriptional regulators which may be important for its adaptation to diverse marine environments. The alternative σ54 factor (RpoN) is a central regulator of many bacteria, regulating the transcription of multiple genes and controlling important cellular functions. However, the exact role of RpoN in Labrenzia spp. is unknown. In this study, an in-frame rpoN deletion mutant was constructed in LZB033, and the function of RpoN was determined. To systematically identify RpoN-controlled genes, we performed a detailed analysis of gene expression differences between the wild-type strain and the ΔrpoN mutant using RNA sequencing. The expression of 175 genes was shown to be controlled by RpoN. Subsequent phenotypic assays showed that the ΔrpoN mutant was attenuated in flagellar biosynthesis and swimming motility, utilized up to 13 carbon substrates differently, lacked the ability to assimilate malic acid, and displayed markedly decreased biofilm formation. In addition, stress response assays showed that the ΔrpoN mutant was impaired in the ability to survive under different challenge conditions, including osmotic stress, oxidative stress, temperature changes, and acid stress. Moreover, both the DMSP synthesis and catabolism rates of LZB033 decreased after rpoN was knocked out. Our work provides essential insight into the regulatory function of RpoN, revealing that RpoN is a key determinant for LZB033 flagellar formation, motility, biofilm formation, and environmental fitness, as well as DMSP production and degradation.IMPORTANCE This study established an in-frame gene deletion method in the alphaproteobacterium Labrenzia aggregata LZB033 and generated an rpoN gene mutant. A comparison of the transcriptomes and phenotypic characteristics between the mutant and wild-type strains confirmed the role of RpoN in L. aggregata LZB033 flagellar formation, motility, biofilm formation, and carbon usage. Most importantly, RpoN is a key factor for survival under different environmental challenge conditions. Furthermore, the ability to synthesize and metabolize dimethylsulfoniopropionate (DMSP) was related to RpoN. These features revealed RpoN to be an important regulator of stress resistance and survival for L. aggregata LZB033 in marine environments.


Asunto(s)
Adaptación Fisiológica/fisiología , Biopelículas/crecimiento & desarrollo , Flagelos/metabolismo , ARN Polimerasa Sigma 54/genética , ARN Polimerasa Sigma 54/metabolismo , Rhodobacteraceae/genética , Rhodobacteraceae/metabolismo , Proteínas Bacterianas/genética , Proteínas Bacterianas/metabolismo , China , Regulación Bacteriana de la Expresión Génica , Técnicas de Inactivación de Genes , Presión Osmótica , Estrés Oxidativo , ARN Bacteriano/aislamiento & purificación , Rhodobacteraceae/citología , Rhodobacteraceae/crecimiento & desarrollo , Análisis de Secuencia de ARN , Compuestos de Sulfonio/metabolismo , Temperatura , Transcriptoma
12.
Appl Microbiol Biotechnol ; 102(22): 9719-9730, 2018 Nov.
Artículo en Inglés | MEDLINE | ID: mdl-30128583

RESUMEN

The rhizobacterium Pseudomonas protegens H78 biosynthesizes a number of antibiotic compounds, including pyoluteorin, 2,4-diacetylphloroglucinol, and pyrrolnitrin. Here, we investigated the global regulatory function of the nitrogen metabolism-related sigma factor RpoN in P. protegens H78 through RNA-seq and phenotypic analysis. During the mid- to late-log growth phase, transcriptomic profiling revealed that 562 genes were significantly upregulated, and 502 genes were downregulated by at least twofold at the RNA level in the rpoN deletion mutant in comparison with the wild-type strain H78. With respect to antibiotics, Plt biosynthesis and the expression of its operon were positively regulated, while Prn biosynthesis and the expression of its operon were negatively regulated by RpoN. RpoN is responsible for the global activation of operons involved in flagellar biogenesis and assembly, biofilm formation, and bacterial mobility. In contrast, RpoN was shown to negatively control a number of secretion system operons including one type VI secretion system operon (H1-T6SS), two pilus biogenesis operons (Flp/Tad-T4b pili and Csu-T1 pili), and one polysaccharide biosynthetic operon (psl). In addition, two operons that are involved in mannitol and inositol utilization are under the positive regulation of RpoN. Consistent with this result, the ability of H78 to utilize mannitol or inositol as a sole carbon source is positively influenced by RpoN. Taken together, the RpoN-mediated global regulation is mainly involved in flagellar biogenesis and assembly, bacterial mobility, biofilm formation, antibiotic biosynthesis, secretion systems, and carbon utilization in P. protegens H78.


Asunto(s)
Antibacterianos/biosíntesis , Proteínas Bacterianas/metabolismo , Biopelículas , Carbono/metabolismo , Regulación Bacteriana de la Expresión Génica , Operón , Pseudomonas/fisiología , ARN Polimerasa Sigma 54/metabolismo , Proteínas Bacterianas/genética , Fimbrias Bacterianas/metabolismo , Pseudomonas/genética , ARN Polimerasa Sigma 54/genética
13.
BMC Microbiol ; 17(1): 171, 2017 Aug 09.
Artículo en Inglés | MEDLINE | ID: mdl-28793882

RESUMEN

BACKGROUND: Bacterial blight of rice caused by Xanthomonas oryzae pv. oryzae (Xoo) is one of the most important crop diseases in the world. More insights into the mechanistic regulation of bacterial pathogenesis will help us identify novel molecular targets for developing effective disease control strategies. A large flagellar gene cluster is regulated under a three-tiered hierarchy by σ54 factor RpoN2 and its activator FleQ, and σ28 factor FliA. A hypothetical protein gene fliTX is located upstream of rpoN2, however, how it is regulated and how it is related to bacterial behaviors remain to be elucidated. RESULTS: Sequence alignment analysis indicated that FliTX in Xoo is less well conserved compared with FliT proteins in Escherichia coli, Salmonella typhimurium, and Pseudomonas fluorescens. Co-transcription of fliTX with a cytosolic chaperone gene fliS and an atypical PilZ-domain gene flgZ in an operon was up-regulated by RpoN2/FleQ and FliA. Significantly shorter filament length and impaired swimming motility were observed in ∆fliTX compared with those in the wildtype strain. ∆fliTX also demonstrated reduced disease lesion length and in planta growth in rice, attenuated ability of induction of hypersensitive response (HR) in nonhost tobacco, and down-regulation of type III secretion system (T3SS)-related genes. In trans expression of fliTX gene in ∆fliTX restored these phenotypes to near wild-type levels. CONCLUSIONS: This study demonstrates that RpoN2- and FliA-regulated fliTX is indispensible for flagellar motility and virulence and provides more insights into mechanistic regulation of T3SS expression in Xoo.


Asunto(s)
Proteínas Bacterianas/genética , Flagelos/fisiología , Regulación Bacteriana de la Expresión Génica , Enfermedades de las Plantas/microbiología , ARN Polimerasa Sigma 54/metabolismo , Factor sigma/metabolismo , Xanthomonas/metabolismo , Xanthomonas/patogenicidad , Proteínas Bacterianas/metabolismo , Flagelos/genética , Oryza/microbiología , ARN Polimerasa Sigma 54/genética , Factor sigma/genética , Sistemas de Secreción Tipo III/genética , Sistemas de Secreción Tipo III/metabolismo , Virulencia , Xanthomonas/genética
14.
Mol Cell ; 67(1): 106-116.e4, 2017 Jul 06.
Artículo en Inglés | MEDLINE | ID: mdl-28579332

RESUMEN

Gene transcription is carried out by RNA polymerases (RNAPs). For transcription to occur, the closed promoter complex (RPc), where DNA is double stranded, must isomerize into an open promoter complex (RPo), where the DNA is melted out into a transcription bubble and the single-stranded template DNA is delivered to the RNAP active site. Using a bacterial RNAP containing the alternative σ54 factor and cryoelectron microscopy, we determined structures of RPc and the activator-bound intermediate complex en route to RPo at 3.8 and 5.8 Å. Our structures show how RNAP-σ54 interacts with promoter DNA to initiate the DNA distortions required for transcription bubble formation, and how the activator interacts with RPc, leading to significant conformational changes in RNAP and σ54 that promote RPo formation. We propose that DNA melting is an active process initiated in RPc and that the RNAP conformations of intermediates are significantly different from that of RPc and RPo.


Asunto(s)
ADN de Cadena Simple/metabolismo , Escherichia coli/enzimología , Klebsiella pneumoniae/enzimología , Desnaturalización de Ácido Nucleico , ARN Polimerasa Sigma 54/metabolismo , Iniciación de la Transcripción Genética , Sitios de Unión , Microscopía por Crioelectrón , ADN de Cadena Simple/genética , ADN de Cadena Simple/ultraestructura , Escherichia coli/genética , Regulación Bacteriana de la Expresión Génica , Klebsiella pneumoniae/genética , Simulación del Acoplamiento Molecular , Conformación de Ácido Nucleico , Regiones Promotoras Genéticas , Unión Proteica , Conformación Proteica , ARN Polimerasa Sigma 54/genética , ARN Polimerasa Sigma 54/ultraestructura , Relación Estructura-Actividad
15.
J Bacteriol ; 199(12)2017 06 15.
Artículo en Inglés | MEDLINE | ID: mdl-28373272

RESUMEN

The variable sigma (σ) subunit of the bacterial RNA polymerase (RNAP) holoenzyme, which is responsible for promoter specificity and open complex formation, plays a strategic role in the response to environmental changes. Salmonella enterica serovar Typhimurium utilizes the housekeeping σ70 and five alternative sigma factors, including σ54 The σ54-RNAP differs from other σ-RNAP holoenzymes in that it forms a stable closed complex with the promoter and requires ATP hydrolysis by an activated cognate bacterial enhancer binding protein (bEBP) to transition to an open complex and initiate transcription. In S. Typhimurium, σ54-dependent promoters normally respond to one of 13 different bEBPs, each of which is activated under a specific growth condition. Here, we utilized a constitutively active, promiscuous bEBP to perform a genome-wide identification of σ54-RNAP DNA binding sites and the transcriptome of the σ54 regulon of S. Typhimurium. The position and context of many of the identified σ54 RNAP DNA binding sites suggest regulatory roles for σ54-RNAP that connect the σ54 regulon to regulons of other σ factors to provide a dynamic response to rapidly changing environmental conditions.IMPORTANCE The alternative sigma factor σ54 (RpoN) is required for expression of genes involved in processes with significance in agriculture, bioenergy production, bioremediation, and host-microbe interactions. The characterization of the σ54 regulon of the versatile pathogen S. Typhimurium has expanded our understanding of the scope of the σ54 regulon and how it links to other σ regulons within the complex regulatory network for gene expression in bacteria.


Asunto(s)
ADN Bacteriano/metabolismo , Regulación Bacteriana de la Expresión Génica , ARN Polimerasa Sigma 54/metabolismo , Salmonella typhimurium/genética , Salmonella typhimurium/metabolismo , Sitios de Unión , Perfilación de la Expresión Génica , Unión Proteica , Regulón
16.
J Bacteriol ; 199(8)2017 04 15.
Artículo en Inglés | MEDLINE | ID: mdl-28167521

RESUMEN

Dimethylarginine dimethylaminohydrolases (DDAHs) catalyze the hydrolysis of methylarginines to yield l-citrulline and methylamines as products. DDAHs and their central roles in methylarginine metabolism have been characterized for eukaryotic cells. While DDAHs are known to exist in some bacteria, including Streptomyces coelicolor and Pseudomonas aeruginosa, the physiological importance and genetic regulation of bacterial DDAHs remain poorly understood. To provide some insight into bacterial methylarginine metabolism, this study focused on identifying the key elements or factors regulating DDAH expression in P. aeruginosa PAO1. First, results revealed that P. aeruginosa can utilize NG ,NG -dimethyl-l-arginine (ADMA) as a sole source of nitrogen but not carbon. Second, expression of the ddaH gene was observed to be induced in the presence of methylarginines, including NG -monomethyl-l-arginine (l-NMMA) and ADMA. Third, induction of the ddaH gene was shown to be achieved through a mechanism consisting of the putative enhancer-binding protein PA1196 and the alternative sigma factor RpoN. Both PA1196 and RpoN were essential for the expression of the ddaH gene in response to methylarginines. On the basis of the results of this study, PA1196 was given the name DdaR, for dimethylarginine dimethylaminohydrolase regulator. Interestingly, DdaR and its target ddaH gene are conserved only among P. aeruginosa strains, suggesting that this particular Pseudomonas species has evolved to utilize methylarginines from its environment.IMPORTANCE Methylated arginine residues are common constituents of eukaryotic proteins. During proteolysis, methylarginines are released in their free forms and become accessible nutrients for bacteria to utilize as growth substrates. In order to have a clearer and better understanding of this process, we explored methylarginine utilization in the metabolically versatile bacterium Pseudomonas aeruginosa PAO1. Our results show that the transcriptional regulator DdaR (PA1196) and the sigma factor RpoN positively regulate expression of dimethylarginine dimethylaminohydrolases (DDAHs) in response to exogenous methylarginines. DDAH is the central enzyme of methylarginine degradation, and its transcriptional regulation by DdaR-RpoN is expected to be conserved among P. aeruginosa strains.


Asunto(s)
Amidohidrolasas/metabolismo , Arginina/análogos & derivados , Regulación Bacteriana de la Expresión Génica/fisiología , Regulación Enzimológica de la Expresión Génica/fisiología , Pseudomonas aeruginosa/enzimología , omega-N-Metilarginina/metabolismo , Amidohidrolasas/genética , Arginina/genética , Arginina/metabolismo , Proteínas Bacterianas/genética , Proteínas Bacterianas/metabolismo , Pseudomonas aeruginosa/metabolismo , ARN Polimerasa Sigma 54/genética , ARN Polimerasa Sigma 54/metabolismo , omega-N-Metilarginina/genética
17.
Bioinformatics ; 33(3): 467-469, 2017 02 01.
Artículo en Inglés | MEDLINE | ID: mdl-28171531

RESUMEN

Summary: In prokaryotes, the σ54 promoters are unique regulatory elements and have attracted much attention because they are in charge of the transcription of carbon and nitrogen-related genes and participate in numerous ancillary processes and environmental responses. All findings on σ54 promoters are favorable for a better understanding of their regulatory mechanisms in gene transcription and an accurate discovery of genes missed by the wet experimental evidences. In order to provide an up-to-date, interactive and extensible database for σ54 promoter, a free and easy accessed database called Pro54DB (σ54 promoter database) was built to collect information of σ54 promoter. In the current version, it has stored 210 experimental-confirmed σ54 promoters with 297 regulated genes in 43 species manually extracted from 133 publications, which is helpful for researchers in fields of bioinformatics and molecular biology. Availability and Implementation: Pro54DB is freely available on the web at http://lin.uestc.edu.cn/database/pro54db with all major browsers supported. Contacts: greatchen@ncst.edu.cn or hlin@uestc.edu.cn


Asunto(s)
Bacterias/genética , Bases de Datos Genéticas , Regiones Promotoras Genéticas , ARN Polimerasa Sigma 54/metabolismo
18.
Artículo en Inglés | MEDLINE | ID: mdl-29376034

RESUMEN

Clostridium difficile, a major cause of nosocomial diarrhea and pseudomembranous colitis, still poses serious health-care challenges. The expression of its two main virulence factors, TcdA and TcdB, is reportedly repressed by cysteine, but molecular mechanism remains unclear. The cysteine desulfidase CdsB affects the virulence and infection progresses of some bacteria. The C. difficile strain 630 genome encodes a homolog of CdsB, and in the present study, we analyzed its role in C. difficile 630Δerm by constructing an isogenic ClosTron-based cdsB mutant. When C. difficile was cultured in TY broth supplemented with cysteine, the cdsB gene was rapidly induced during the exponential growth phase. The inactivation of cdsB not only affected the resistance of C. difficile to cysteine, but also altered the expression levels of intracellular cysteine-degrading enzymes and the production of hydrogen sulfide. This suggests that C. difficile CdsB is a major inducible cysteine-degrading enzyme. The inactivation of the cdsB gene in C. difficile also removed the cysteine-dependent repression of toxin production, but failed to remove the Na2S-dependent repression, which supports that the cysteine-dependent repression of toxin production is probably attributable to the accumulation of cysteine by-products. We also mapped a δ54 (SigL)-dependent promoter upstream from the cdsB gene, and cdsB expression was not induced in response to cysteine in the cdsR::ermB or sigL::ermB strain. Using a reporter gene fusion analysis, we identified the necessary promoter sequence for cysteine-dependent cdsB expression. Taken together, these results indicate that CdsB is a key inducible cysteine desulfidase in C. difficile which is regulated by δ54 and CdsR in response to cysteine and that cysteine-dependent regulation of toxin production is closely associated with cysteine degradation.


Asunto(s)
Clostridioides difficile/enzimología , Clostridioides difficile/genética , Cisteína/metabolismo , Regulación Bacteriana de la Expresión Génica , Proteínas Bacterianas/biosíntesis , Toxinas Bacterianas/biosíntesis , Sitios de Unión , Clostridioides difficile/metabolismo , Enterotoxinas/biosíntesis , Eliminación de Gen , Sulfuro de Hidrógeno/metabolismo , Regiones Promotoras Genéticas , ARN Polimerasa Sigma 54/metabolismo , Sulfatos/metabolismo
19.
Biochem J ; 473(21): 3741-3753, 2016 11 01.
Artículo en Inglés | MEDLINE | ID: mdl-27789741

RESUMEN

Transcription initiation is highly regulated in bacterial cells, allowing adaptive gene regulation in response to environment cues. One class of promoter specificity factor called sigma54 enables such adaptive gene expression through its ability to lock the RNA polymerase down into a state unable to melt out promoter DNA for transcription initiation. Promoter DNA opening then occurs through the action of specialized transcription control proteins called bacterial enhancer-binding proteins (bEBPs) that remodel the sigma54 factor within the closed promoter complexes. The remodelling of sigma54 occurs through an ATP-binding and hydrolysis reaction carried out by the bEBPs. The regulation of bEBP self-assembly into typically homomeric hexamers allows regulated gene expression since the self-assembly is required for bEBP ATPase activity and its direct engagement with the sigma54 factor during the remodelling reaction. Crystallographic studies have now established that in the closed promoter complex, the sigma54 factor occupies the bacterial RNA polymerase in ways that will physically impede promoter DNA opening and the loading of melted out promoter DNA into the DNA-binding clefts of the RNA polymerase. Large-scale structural re-organizations of sigma54 require contact of the bEBP with an amino-terminal glutamine and leucine-rich sequence of sigma54, and lead to domain movements within the core RNA polymerase necessary for making open promoter complexes and synthesizing the nascent RNA transcript.


Asunto(s)
Proteínas Bacterianas/metabolismo , ARN Polimerasas Dirigidas por ADN/metabolismo , Proteínas Bacterianas/genética , ARN Polimerasas Dirigidas por ADN/genética , Elementos de Facilitación Genéticos/genética , Regulación Bacteriana de la Expresión Génica/genética , Regulación Bacteriana de la Expresión Génica/fisiología , ARN Polimerasa Sigma 54/genética , ARN Polimerasa Sigma 54/metabolismo
20.
J Mol Biol ; 428(23): 4669-4685, 2016 11 20.
Artículo en Inglés | MEDLINE | ID: mdl-27732872

RESUMEN

Bacterial sigma factors are subunits of RNA polymerase that direct the holoenzyme to specific sets of promoters in the genome and are a central element of regulating transcription. Most polymerase holoenzymes open the promoter and initiate transcription rapidly after binding. However, polymerase containing the members of the σ54 family must be acted on by a transcriptional activator before DNA opening and initiation occur. A key domain in these transcriptional activators forms a hexameric AAA+ ATPase that acts through conformational changes brought on by ATP hydrolysis. Contacts between the transcriptional activator and σ54 are primarily made through an N-terminal σ54 activator interacting domain (AID). To better understand this mechanism of bacterial transcription initiation, we characterized the σ54 AID by NMR spectroscopy and other biophysical methods and show that it is an intrinsically disordered domain in σ54 alone. We identified a minimal construct of the Aquifex aeolicus σ54 AID that consists of two predicted helices and retains native-like binding affinity for the transcriptional activator NtrC1. Using the NtrC1 ATPase domain, bound with the non-hydrolyzable ATP analog ADP-beryllium fluoride, we studied the NtrC1-σ54 AID complex using NMR spectroscopy. We show that the σ54 AID becomes structured after associating with the core loops of the transcriptional activators in their ATP state and that the primary site of the interaction is the first predicted helix. Understanding this complex, formed as the first step toward initiation, will help unravel the mechanism of σ54 bacterial transcription initiation.


Asunto(s)
Bacterias/química , Bacterias/enzimología , ARN Polimerasa Sigma 54/química , ARN Polimerasa Sigma 54/metabolismo , Transcripción Genética , Adenosina Trifosfato/metabolismo , Bacterias/genética , Espectroscopía de Resonancia Magnética , Modelos Moleculares , Unión Proteica , Conformación Proteica , Dominios Proteicos , ARN Polimerasa Sigma 54/genética
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