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1.
mSystems ; 7(3): e0031222, 2022 06 28.
Artigo em Inglês | MEDLINE | ID: mdl-35543104

RESUMO

Microbial symbiosis drives physiological processes of higher-order systems, including the acquisition and consumption of nutrients that support symbiotic partner reproduction. Metabolic analytics provide new avenues to examine how chemical ecology, or the conversion of existing biomass to new forms, changes over a symbiotic life cycle. We applied these approaches to the nematode Steinernema carpocapsae, its mutualist bacterium, Xenorhabdus nematophila, and the insects they infect. The nematode-bacterium pair infects, kills, and reproduces in an insect until nutrients are depleted. To understand the conversion of insect biomass over time into either nematode or bacterium biomass, we integrated information from trophic, metabolomic, and gene regulation analyses. Trophic analysis established bacteria as meso-predators and primary insect consumers. Nematodes hold a trophic position of 4.6, indicative of an apex predator, consuming bacteria and likely other nematodes. Metabolic changes associated with Galleria mellonella insect bioconversion were assessed using multivariate statistical analyses of metabolomics data sets derived from sampling over an infection time course. Statistically significant, discrete phases were detected, indicating the insect chemical environment changes reproducibly during bioconversion. A novel hierarchical clustering method was designed to probe molecular abundance fluctuation patterns over time, revealing distinct metabolite clusters that exhibit similar abundance shifts across the time course. Composite data suggest bacterial tryptophan and nematode kynurenine pathways are coordinated for reciprocal exchange of tryptophan and NAD+ and for synthesis of intermediates that can have complex effects on bacterial phenotypes and nematode behaviors. Our analysis of pathways and metabolites reveals the chemistry underlying the recycling of organic material during carnivory. IMPORTANCE The processes by which organic life is consumed and reborn in a complex ecosystem were investigated through a multiomics approach applied to the tripartite Xenorhabdus bacterium-Steinernema nematode-Galleria insect symbiosis. Trophic analyses demonstrate the primary consumers of the insect are the bacteria, and the nematode in turn consumes the bacteria. This suggests the Steinernema-Xenorhabdus mutualism is a form of agriculture in which the nematode cultivates the bacterial food sources by inoculating them into insect hosts. Metabolomics analysis revealed a shift in biological material throughout progression of the life cycle: active infection, insect death, and conversion of cadaver tissues into bacterial biomass and nematode tissue. We show that each phase of the life cycle is metabolically distinct, with significant differences including those in the tricarboxylic acid cycle and amino acid pathways. Our findings demonstrate that symbiotic life cycles can be defined by reproducible stage-specific chemical signatures, enhancing our broad understanding of metabolic processes that underpin a three-way symbiosis.


Assuntos
Mariposas , Rabditídios , Xenorhabdus , Animais , Ecossistema , Triptofano , Insetos , Xenorhabdus/genética , Rabditídios/microbiologia
2.
Appl Environ Microbiol ; 83(24)2017 12 15.
Artigo em Inglês | MEDLINE | ID: mdl-28986375

RESUMO

In enteric bacteria such as Escherichia coli, the transcription factor SgrR and the small RNA SgrS regulate the response to glucose phosphate stress, a metabolic dysfunction that results in growth inhibition and stems from the intracellular accumulation of sugar phosphates. SgrR activates the transcription of sgrS, and SgrS helps to rescue cells from stress in part by inhibiting the uptake of stressor sugar phosphates. While the regulatory targets of this stress response are well described, less is known about how the SgrR-SgrS response itself is regulated. To further characterize the regulation of the glucose phosphate stress response, we screened global regulator gene mutants for growth changes during glucose phosphate stress. We found that deleting dksA, which encodes a regulator of the stringent response to nutrient starvation, decreases growth under glucose phosphate stress conditions. The stringent response alarmone regulator ppGpp (synthesized by RelA and SpoT) also contributes to recovery from glucose phosphate stress: as with dksA, mutating relA and spoT worsens the growth defect of an sgrS mutant during stress, although the sgrS relA spoT mutant defect was only detectable under lower stress levels. In addition, mutating dksA or relA and spoT lowers sgrS expression (as measured with a P sgrS -lacZ fusion), suggesting that the observed growth defects may be due to decreased induction of the glucose phosphate stress response or related targets. This regulatory effect could occur through altered sgrR transcription, as dksA and relA spoT mutants also exhibit decreased expression of a P sgrR -lacZ fusion. Taken together, this work supports a role for stringent response regulators in aiding the recovery from glucose phosphate stress.IMPORTANCE Glucose phosphate stress leads to growth inhibition in bacteria such as Escherichia coli when certain sugar phosphates accumulate in the cell. The transcription factor SgrR and the small RNA SgrS alleviate this stress in part by preventing further sugar phosphate transport. While the regulatory mechanisms of this response have been characterized, the regulation of the SgrR-SgrS response itself is not as well understood. Here, we describe a role for stringent response regulators DksA and ppGpp in the response to glucose phosphate stress. sgrS dksA and sgrS relA spoT mutants exhibit growth defects under glucose phosphate stress conditions. These defects may be due to a decrease in stress response induction, as deleting dksA or relA and spoT also results in decreased expression of sgrS and sgrR This research presents one of the first regulatory effects on the glucose phosphate stress response outside SgrR and SgrS and depicts a novel connection between these two metabolic stress responses.


Assuntos
Proteínas de Escherichia coli/genética , Escherichia coli/genética , Regulação Bacteriana da Expressão Gênica/genética , Genes Reguladores/fisiologia , Ligases/genética , Pirofosfatases/genética , Glucose/metabolismo , Fosfatos/metabolismo , Estresse Fisiológico
3.
Microbiol Spectr ; 3(3)2015 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-26185078

RESUMO

Over the last decade, small (often noncoding) RNA molecules have been discovered as important regulators influencing myriad aspects of bacterial physiology and virulence. In particular, small RNAs (sRNAs) have been implicated in control of both primary and secondary metabolic pathways in many bacterial species. This chapter describes characteristics of the major classes of sRNA regulators, and highlights what is known regarding their mechanisms of action. Specific examples of sRNAs that regulate metabolism in gram-negative bacteria are discussed, with a focus on those that regulate gene expression by base pairing with mRNA targets to control their translation and stability.


Assuntos
Fenômenos Fisiológicos Bacterianos/genética , Regulação Bacteriana da Expressão Gênica/genética , Bactérias Gram-Negativas/genética , Bactérias Gram-Negativas/metabolismo , Pequeno RNA não Traduzido/genética , Metabolismo Secundário/genética , Pareamento de Bases/genética , Proteínas de Escherichia coli/genética , Metaloproteínas/genética , Percepção de Quorum/genética , RNA Bacteriano/genética , Metabolismo Secundário/fisiologia , Transcrição Gênica/genética
4.
J Bacteriol ; 195(21): 4816-25, 2013 Nov.
Artigo em Inglês | MEDLINE | ID: mdl-23995640

RESUMO

In bacteria like Escherichia coli, the accumulation of glucose-6-phosphate (G6P) or its analogs such as α-methyl glucoside-6-phosphate (αMG6P) results in stress that appears in the form of growth inhibition. The small RNA SgrS is an essential part of the response that helps E. coli combat glucose-phosphate stress; the growth of sgrS mutants during stress caused by αMG is significantly impaired. The cause of this stress is not currently known but may be due to either toxicity of accumulated sugar-phosphates or to depletion of metabolic intermediates. Here, we present evidence that glucose-phosphate stress results from depletion of glycolytic intermediates. Addition of glycolytic compounds like G6P and fructose-6-phosphate rescues the αMG growth defect of an sgrS mutant. These intermediates also markedly decrease induction of the stress response in both wild-type and sgrS strains grown with αMG, implying that cells grown with these intermediates experience less stress. Moreover, αMG transport assays confirm that G6P relieves stress even when αMG is taken up by the cell, strongly suggesting that accumulated αMG6P per se does not cause stress. We also report that addition of pyruvate during stress has a novel lethal effect on the sgrS mutant, resulting in cell lysis. The phosphoenolpyruvate (PEP) synthetase PpsA, which converts pyruvate to PEP, can confer resistance to pyruvate-induced lysis when ppsA is ectopically expressed in the sgrS mutant. Taken as a whole, these results provide the strongest evidence thus far that depletion of glycolytic intermediates is at the metabolic root of glucose-phosphate stress.


Assuntos
Escherichia coli/metabolismo , Glucose-6-Fosfato/metabolismo , Glucose-6-Fosfato/farmacologia , Glicólise/fisiologia , Transporte Biológico , Escherichia coli/efeitos dos fármacos , Proteínas de Escherichia coli/genética , Proteínas de Escherichia coli/metabolismo , Regulação Bacteriana da Expressão Gênica/efeitos dos fármacos , Regulação Bacteriana da Expressão Gênica/fisiologia , Metilglucosídeos/metabolismo , Mutação
5.
J Bacteriol ; 194(10): 2520-30, 2012 May.
Artigo em Inglês | MEDLINE | ID: mdl-22427626

RESUMO

Some bacteria experience stress when glucose-6-phosphate or analogues like α-methyl glucoside-6-phosphate (αMG6P) accumulate in the cell. In Escherichia coli, the small SgrS RNA is vital to recovery from glucose-phosphate stress; the growth of sgrS mutants is strongly inhibited by αMG. SgrS helps to restore growth in part through inhibiting translation of the ptsG mRNA, which encodes the major glucose transporter EIICB(Glc). While the regulatory mechanism of SgrS has been characterized, little is known about how glucose-phosphate stress connects to other aspects of cell physiology. In the present study, we discovered that mutation of pitA, which encodes the low-affinity transporter of inorganic phosphate, partially suppresses the αMG growth defect of an sgrS mutant. Induction of the stress response was also reduced in the sgrS pitA mutant compared to its sgrS parent. Microarray analysis suggested that expression of phosphate (Pho) regulon genes is increased in the sgrS pitA mutant compared to the sgrS parent. Consistent with this, we found increased PhoA (alkaline phosphatase) activity in the sgrS pitA mutant compared to the sgrS strain. Further, direct induction of the Pho regulon (in a pitA(+) background) also resulted in partial suppression of the sgrS growth defect. The suppression was reversed when Pho induction was prevented by mutation of phoB, which encodes the Pho transcriptional activator. Deletion of individual Pho structural genes in suppressed strains did not identify a single gene responsible for suppression. Altogether, this work describes one of the first studies of glucose-phosphate stress physiology and suggests a novel connection of carbon and phosphate metabolism.


Assuntos
Proteínas de Escherichia coli/metabolismo , Escherichia coli/metabolismo , Regulação Bacteriana da Expressão Gênica/fisiologia , Glucose/metabolismo , Fosfatos/metabolismo , Estresse Fisiológico/genética , Escherichia coli/genética , Proteínas de Escherichia coli/genética , Mutação , Proteínas de Transporte de Fosfato/genética , Proteínas de Transporte de Fosfato/metabolismo , RNA Bacteriano/genética , RNA Bacteriano/metabolismo , Regulon/fisiologia
6.
Environ Microbiol ; 14(4): 924-39, 2012 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-22151385

RESUMO

Xenorhabdus bovienii (SS-2004) bacteria reside in the intestine of the infective-juvenile (IJ) stage of the entomopathogenic nematode, Steinernema jollieti. The recent sequencing of the X. bovienii genome facilitates its use as a model to understand host - symbiont interactions. To provide a biological foundation for such studies, we characterized X. bovienii in vitro and host interaction phenotypes. Within the nematode host X. bovienii was contained within a membrane bound envelope that also enclosed the nematode-derived intravesicular structure. Steinernema jollieti nematodes cultivated on mixed lawns of X. bovienii expressing green or DsRed fluorescent proteins were predominantly colonized by one or the other strain, suggesting the colonizing population is founded by a few cells. Xenorhabdus bovienii exhibits phenotypic variation between orange-pigmented primary form and cream-pigmented secondary form. Each form can colonize IJ nematodes when cultured in vitro on agar. However, IJs did not develop or emerge from Galleria mellonella insects infected with secondary form. Unlike primary-form infected insects that were soft and flexible, secondary-form infected insects retained a rigid exoskeleton structure. Xenorhabdus bovienii primary and secondary form isolates are virulent towards Manduca sexta and several other insects. However, primary form stocks present attenuated virulence, suggesting that X. bovienii, like Xenorhabdus nematophila may undergo virulence modulation.


Assuntos
Rabditídios/microbiologia , Xenorhabdus/classificação , Adolescente , Animais , Interações Hospedeiro-Patógeno , Humanos , Intestinos/microbiologia , Fenótipo , Rabditídios/fisiologia , Simbiose , Virulência/fisiologia , Xenorhabdus/fisiologia
7.
PLoS One ; 6(11): e27909, 2011.
Artigo em Inglês | MEDLINE | ID: mdl-22125637

RESUMO

Members of the genus Xenorhabdus are entomopathogenic bacteria that associate with nematodes. The nematode-bacteria pair infects and kills insects, with both partners contributing to insect pathogenesis and the bacteria providing nutrition to the nematode from available insect-derived nutrients. The nematode provides the bacteria with protection from predators, access to nutrients, and a mechanism of dispersal. Members of the bacterial genus Photorhabdus also associate with nematodes to kill insects, and both genera of bacteria provide similar services to their different nematode hosts through unique physiological and metabolic mechanisms. We posited that these differences would be reflected in their respective genomes. To test this, we sequenced to completion the genomes of Xenorhabdus nematophila ATCC 19061 and Xenorhabdus bovienii SS-2004. As expected, both Xenorhabdus genomes encode many anti-insecticidal compounds, commensurate with their entomopathogenic lifestyle. Despite the similarities in lifestyle between Xenorhabdus and Photorhabdus bacteria, a comparative analysis of the Xenorhabdus, Photorhabdus luminescens, and P. asymbiotica genomes suggests genomic divergence. These findings indicate that evolutionary changes shaped by symbiotic interactions can follow different routes to achieve similar end points.


Assuntos
Variação Genética , Genoma Bacteriano/genética , Photorhabdus/genética , Xenorhabdus/genética , Animais , Cromossomos Bacterianos/genética , DNA Bacteriano/química , DNA Bacteriano/genética , Enterobacteriaceae/classificação , Enterobacteriaceae/genética , Enterobacteriaceae/fisiologia , Genômica/métodos , Interações Hospedeiro-Parasita , Interações Hospedeiro-Patógeno , Insetos/microbiologia , Insetos/parasitologia , Dados de Sequência Molecular , Nematoides/microbiologia , Nematoides/fisiologia , Photorhabdus/classificação , Photorhabdus/fisiologia , Filogenia , RNA Ribossômico 16S/genética , Análise de Sequência de DNA , Especificidade da Espécie , Simbiose , Xenorhabdus/classificação , Xenorhabdus/fisiologia
8.
Biochim Biophys Acta ; 1809(10): 525-31, 2011 Oct.
Artigo em Inglês | MEDLINE | ID: mdl-21843668

RESUMO

The vital role of bacterial small RNAs (sRNAs) in cellular regulation is now well-established. Although many diverse mechanisms by which sRNAs bring about changes in gene expression have been thoroughly described, comparatively less is known about their biological roles and effects on cell physiology. Nevertheless, for some sRNAs, insight has been gained into the intricate regulatory interplay that is required to sense external environmental and internal metabolic cues and turn them into physiological outcomes. Here, we review examples of regulation by selected sRNAs, emphasizing signals and regulators required for sRNA expression, sRNA regulatory targets, and the resulting consequences for the cell. We highlight sRNAs involved in regulation of the processes of iron homeostasis (RyhB, PrrF, and FsrA) and carbon metabolism (Spot 42, CyaR, and SgrS).


Assuntos
RNA Bacteriano/genética , RNA Bacteriano/fisiologia , Carbono/química , AMP Cíclico/metabolismo , Escherichia coli/genética , Regulação Bacteriana da Expressão Gênica , Genes Bacterianos , Homeostase , Ferro/metabolismo , Modelos Biológicos , Modelos Genéticos , RNA não Traduzido/genética
9.
Appl Environ Microbiol ; 76(1): 221-9, 2010 Jan.
Artigo em Inglês | MEDLINE | ID: mdl-19880652

RESUMO

Xenorhabdus nematophila is a gammaproteobacterium and broad-host-range insect pathogen. It is also a symbiont of Steinernema carpocapsae, the nematode vector that transports the bacterium between insect hosts. X. nematophila produces several secreted enzymes, including hemolysins, lipases, and proteases, which are thought to contribute to virulence or nutrient acquisition for the bacterium and its nematode host in vivo. X. nematophila has two lipase activities with distinct in vitro specificities for Tween and lecithin. The gene encoding the Tween-specific lipase, xlpA, has been identified and is not required for X. nematophila virulence in one insect host, the tobacco hornworm Manduca sexta. However, the gene encoding the lecithin-specific lipase activity is not currently known. Here, we identify X. nematophila estA, a gene encoding a putative lecithinase, and show that an estA mutant lacks in vitro lipase activity against lecithin but has wild-type virulence in Manduca sexta. X. nematophila secondary-form phenotypic variants have higher in vitro lecithinase activity and estA transcript levels than do primary-form variants, and estA transcription is negatively regulated by NilR, a repressor of nematode colonization factors. We establish a role for xlpA, but not estA, in supporting production of nematode progeny during growth in Galleria mellonella insects. Future research is aimed at characterizing the biological roles of estA and xlpA in other insect hosts.


Assuntos
Lepidópteros/microbiologia , Fosfolipases/genética , Fosfolipases/metabolismo , Fatores de Virulência/genética , Fatores de Virulência/metabolismo , Xenorhabdus/enzimologia , Xenorhabdus/genética , Animais , Proteínas de Bactérias/genética , Proteínas de Bactérias/metabolismo , Perfilação da Expressão Gênica , Regulação Bacteriana da Expressão Gênica , Ordem dos Genes , Lecitinas/metabolismo , Análise de Sobrevida , Virulência
11.
Cell Microbiol ; 11(7): 1025-33, 2009 Jul.
Artigo em Inglês | MEDLINE | ID: mdl-19374654

RESUMO

Invertebrate animal models are experimentally tractable and have immunity and disease symptoms that mirror those of vertebrates. Therefore they are of particular utility in understanding fundamental aspects of pathogenesis. Indeed, artificial models using human pathogens and invertebrate hosts have revealed conserved and novel molecular mechanisms of bacterial infection and host immune responses. Additional insights may be gained from investigating interactions between invertebrates and pathogens they encounter in their natural environments. For example, enteric bacteria in the genera Photorhabdus and Xenorhabdus are pathogens of insects that also mutualistically associate with nematodes in the genera Heterorhabditis and Steinernema respectively. These bacteria serve as models to understand naturally occurring symbiotic associations that result in disease in or benefit for animals. Xenorhabdus nematophila is the best-studied species of its genus with regard to the molecular mechanisms of its symbiotic associations. In this review, we summarize recent advances in understanding X. nematophila-host interactions. We emphasize regulatory cascades involved in coordinating transitions between various stages of the X. nematophila life cycle: infection, reproduction and transmission.


Assuntos
Modelos Animais de Doenças , Regulação Bacteriana da Expressão Gênica , Rabditídios/microbiologia , Rhabditoidea/microbiologia , Simbiose , Xenorhabdus/fisiologia , Animais , Infecções por Bactérias Gram-Negativas/microbiologia , Interações Hospedeiro-Patógeno , Humanos , Virulência , Xenorhabdus/genética , Xenorhabdus/crescimento & desenvolvimento , Xenorhabdus/metabolismo
12.
J Bacteriol ; 190(14): 4870-9, 2008 Jul.
Artigo em Inglês | MEDLINE | ID: mdl-18502863

RESUMO

The gram-negative insect pathogen Xenorhabdus nematophila possesses potential virulence factors including an assortment of toxins, degradative enzymes, and regulators of these compounds. Here, we describe the lysR-like homolog A (lrhA) gene, a gene required by X. nematophila for full virulence in Manduca sexta insects. In several other gram-negative bacteria, LrhA homologs are transcriptional regulators involved in the expression (typically repression) of virulence factors. Based on phenotypic and genetic evidence, we report that X. nematophila LrhA has a positive effect on transcription and expression of certain potential virulence factors, including a toxin subunit-encoding gene, xptD1. Furthermore, an lrhA mutant lacks in vitro lipase activity and has reduced swimming motility compared to its wild-type parent. Quantitative PCR revealed that transcript levels of flagellar genes, a lipase gene, and xptD1 were significantly lower in the lrhA mutant than in the wild type. In addition, lrhA itself is positively regulated by the global regulator Lrp. This work establishes a role for LrhA as a vital component of a regulatory hierarchy necessary for X. nematophila pathogenesis and expression of surface-localized and secreted factors. Future research is aimed at identifying and characterizing virulence factors within the LrhA regulon.


Assuntos
Proteínas de Bactérias/fisiologia , Toxinas Bacterianas/biossíntese , Regulação Bacteriana da Expressão Gênica , Lipase/biossíntese , Manduca/microbiologia , Fatores de Transcrição/fisiologia , Xenorhabdus/fisiologia , Animais , Proteínas de Bactérias/genética , Toxinas Bacterianas/genética , Sequência de Bases , Elementos de DNA Transponíveis , DNA Bacteriano/química , DNA Bacteriano/genética , Flagelos/genética , Deleção de Genes , Perfilação da Expressão Gênica , Infecções por Bactérias Gram-Positivas/microbiologia , Lipase/genética , Locomoção , Dados de Sequência Molecular , Mutagênese Insercional , Reação em Cadeia da Polimerase Via Transcriptase Reversa , Análise de Sequência de DNA , Análise de Sobrevida , Fatores de Transcrição/genética , Virulência , Xenorhabdus/genética
13.
Cell Microbiol ; 9(5): 1311-23, 2007 May.
Artigo em Inglês | MEDLINE | ID: mdl-17223926

RESUMO

Xenorhabdus nematophila is a Gram-negative bacterium that leads both pathogenic and mutualistic lifestyles. In this study, we examine the role of Lrp, the leucine-responsive regulatory protein, in regulating both of these lifestyles. lrp mutants have attenuated virulence towards Manduca sexta insects and are defective in suppression of both cellular and humoral insect immunity. In addition, an lrp mutant is deficient in initiating colonization of and growth within mutualistic host nematodes. Furthermore, nematodes reared on lrp mutant lawns exhibit decreased overall numbers of nematode progeny. To our knowledge, this is the first demonstration of virulence attenuation associated with an lrp mutation in any bacterium, as well as the first report of a factor involved in both X. nematophila symbioses. Protein profiles of wild-type and mutant cells indicate that Lrp is a global regulator of expression in X. nematophila, affecting approximately 65% of 290 proteins. We show that Lrp binds to the promoter regions of genes known to be involved in basic metabolism, mutualism and pathogenesis, demonstrating that the regulation of at least some host interaction factors is likely direct. Finally, we demonstrate that Lrp influences aspects of X. nematophila phenotypic variation, a spontaneous process that occurs during prolonged growth in stationary phase.


Assuntos
Proteínas de Bactérias/genética , Regulação Bacteriana da Expressão Gênica , Proteína Reguladora de Resposta a Leucina/genética , Xenorhabdus/genética , Animais , Proteínas de Bactérias/metabolismo , Proteínas de Bactérias/fisiologia , Eletroforese em Gel Bidimensional , Ensaio de Desvio de Mobilidade Eletroforética , Cavalos , Humanos , Proteína Reguladora de Resposta a Leucina/metabolismo , Proteína Reguladora de Resposta a Leucina/fisiologia , Manduca/microbiologia , Mutação , Nematoides/microbiologia , Fenótipo , Regiões Promotoras Genéticas/genética , Coelhos , Simbiose , Transcrição Gênica , Virulência/genética , Xenorhabdus/crescimento & desenvolvimento , Xenorhabdus/patogenicidade
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