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1.
Infect Immun ; 91(3): e0006123, 2023 03 15.
Article in English | MEDLINE | ID: mdl-36853005

ABSTRACT

Borrelia mayonii is a newly recognized causative agent of Lyme disease in the Upper Midwestern United States, with distinct clinical presentations compared to classical Lyme disease caused by other Lyme Borrelia species. However, little is known about the B. mayonii genetic determinants required for establishing infection or perpetuating disease in mammals. Extrachromosomal plasmids in Borrelia species often encode proteins necessary for infection and pathogenesis, and spontaneous loss of these plasmids can lead to the identification of virulence determinant genes. Here, we describe infection of Lyme disease-susceptible C3H mice with B. mayonii, and show bacterial dissemination and persistence in peripheral tissues. Loss of endogenous plasmids, including lp28-4, lp25, and lp36 correlated with reduced infectivity in mice. The apparent requirement for lp28-4 during murine infection suggests the presence of a novel virulence determinant, as this plasmid does not encode homologs of any known virulence determinant. We also describe transformation and stable maintenance of a self-replicating shuttle vector in B. mayonii, and show that loss of either lp25 or lp28-4 correlated with increased transformation competency. Finally, we demonstrate that linear plasmids lp25 and lp28-4 each encode functional restriction modification systems with distinct but partially overlapping target modification sequences, which likely accounts for the observed decrease in transformation efficiency when those plasmids are present. Taken together, this study describes a role for endogenous plasmids in mammalian infection and restriction protection in the Lyme disease spirochete Borrelia mayonii.


Subject(s)
Borrelia burgdorferi Group , Borrelia burgdorferi , Lyme Disease , Animals , Mice , Borrelia burgdorferi/genetics , Mice, Inbred C3H , Plasmids/genetics , Lyme Disease/microbiology , Mammals
2.
PLoS Pathog ; 17(2): e1009256, 2021 02.
Article in English | MEDLINE | ID: mdl-33524035

ABSTRACT

Lyme disease, which is caused by infection with Borrelia burgdorferi and related species, can lead to inflammatory pathologies affecting the joints, heart, and nervous systems including the central nervous system (CNS). Inbred laboratory mice have been used to define the kinetics of B. burgdorferi infection and host immune responses in joints and heart, however similar studies are lacking in the CNS of these animals. A tractable animal model for investigating host-Borrelia interactions in the CNS is key to understanding the mechanisms of CNS pathogenesis. Therefore, we characterized the kinetics of B. burgdorferi colonization and associated immune responses in the CNS of mice during early and subacute infection. Using fluorescence-immunohistochemistry, intravital microscopy, bacterial culture, and quantitative PCR, we found B. burgdorferi routinely colonized the dura mater of C3H mice, with peak spirochete burden at day 7 post-infection. Dura mater colonization was observed for several Lyme disease agents including B. burgdorferi, B. garinii, and B. mayonii. RNA-sequencing and quantitative RT-PCR showed that B. burgdorferi infection was associated with increased expression of inflammatory cytokines and a robust interferon (IFN) response in the dura mater. Histopathologic changes including leukocytic infiltrates and vascular changes were also observed in the meninges of infected animals. In contrast to the meninges, we did not detect B. burgdorferi, infiltrating leukocytes, or large-scale changes in cytokine profiles in the cerebral cortex or hippocampus during infection; however, both brain regions demonstrated similar changes in expression of IFN-stimulated genes as observed in peripheral tissues and meninges. Taken together, B. burgdorferi is capable of colonizing the meninges in laboratory mice, and induces localized inflammation similar to peripheral tissues. A sterile IFN response in the absence of B. burgdorferi or inflammatory cytokines is unique to the brain parenchyma, and provides insight into the potential mechanisms of CNS pathology associated with this important pathogen.


Subject(s)
Borrelia burgdorferi/pathogenicity , Dura Mater/pathology , Encephalomyelitis/microbiology , Lyme Disease/pathology , Animals , B-Lymphocytes/immunology , Cell Adhesion/genetics , Disease Models, Animal , Dura Mater/immunology , Encephalomyelitis/genetics , Encephalomyelitis/immunology , Encephalomyelitis/pathology , Extracellular Matrix/genetics , Extracellular Matrix/immunology , Female , Gene Expression Profiling , Inflammation Mediators/immunology , Leukocytes/immunology , Lyme Disease/immunology , Lyme Disease/microbiology , Mice , T-Lymphocytes/immunology , Wound Healing/genetics
3.
Cell Microbiol ; 21(7): e13029, 2019 07.
Article in English | MEDLINE | ID: mdl-30945408

ABSTRACT

The causative agent of Lyme disease, Borrelia burgdorferi, harbours a single linear chromosome and upwards of 23 linear and circular plasmids. Only a minority of these plasmids, including linear plasmid 17, are maintained with near-absolute fidelity during extended in vitro passage, and characterisation of any putative virulence determinants they encode has only recently begun. In this work, a mutant lacking a ~4.7 kb fragment of lp17 was studied. Colonisation of murine tissues by this lp17 mutant was significantly impaired, as was the ability to induce carditis and arthritis. The deficiency in tissue colonisation was alleviated in severe combined immunodeficient (SCID) mice, implicating a role for this plasmid region in adaptive immune evasion. Through genetic complementation, the mutant phenotype could be fully attributed to a 317 bp intergenic region that corresponds to the discontinued bbd07 ORF and upstream sequence. The intergenic region was found to be transcriptionally active, and mutant spirochetes lacking this region exhibited an overall difference in the antigenic profile during infection of an immunocompetent murine host. Overall, this study is the first to provide evidence for the involvement of lp17 in colonisation of joint and heart tissues, along with the associated pathologies caused by the Lyme disease spirochete.


Subject(s)
Adaptive Immunity/genetics , Borrelia burgdorferi/genetics , DNA, Intergenic/genetics , Lyme Disease/genetics , Animals , Borrelia burgdorferi/immunology , Borrelia burgdorferi/pathogenicity , DNA, Intergenic/immunology , Disease Models, Animal , Humans , Immune Evasion/genetics , Lyme Disease/immunology , Lyme Disease/microbiology , Mice , Mutant Proteins/genetics , Myocarditis/genetics , Myocarditis/microbiology , Myocarditis/pathology , Plasmids/genetics , Spirochaetales/genetics , Virulence Factors/genetics
4.
J Bacteriol ; 200(24)2018 12 15.
Article in English | MEDLINE | ID: mdl-30249703

ABSTRACT

Prokaryote restriction modification (RM) systems serve to protect bacteria from potentially detrimental foreign DNA. Recent evidence suggests that DNA methylation by the methyltransferase (MTase) components of RM systems can also have effects on transcriptome profiles. The type strain of the causative agent of Lyme disease, Borrelia burgdorferi B31, possesses two RM systems with N6-methyladenosine (m6A) MTase activity, which are encoded by the bbe02 gene located on linear plasmid lp25 and bbq67 on lp56. The specific recognition and/or methylation sequences had not been identified for either of these B. burgdorferi MTases, and it was not previously known whether these RM systems influence transcript levels. In the current study, single-molecule real-time sequencing was utilized to map genome-wide m6A sites and to identify consensus modified motifs in wild-type B. burgdorferi as well as MTase mutants lacking either the bbe02 gene alone or both bbe02 and bbq67 genes. Four novel conserved m6A motifs were identified and were fully attributable to the presence of specific MTases. Whole-genome transcriptome changes were observed in conjunction with the loss of MTase enzymes, indicating that DNA methylation by the RM systems has effects on gene expression. Genes with altered transcription in MTase mutants include those involved in vertebrate host colonization (e.g., rpoS regulon) and acquisition by/transmission from the tick vector (e.g., rrp1 and pdeB). The results of this study provide a comprehensive view of the DNA methylation pattern in B. burgdorferi, and the accompanying gene expression profiles add to the emerging body of research on RM systems and gene regulation in bacteria.IMPORTANCE Lyme disease is the most prevalent vector-borne disease in North America and is classified by the Centers for Disease Control and Prevention (CDC) as an emerging infectious disease with an expanding geographical area of occurrence. Previous studies have shown that the causative bacterium, Borrelia burgdorferi, methylates its genome using restriction modification systems that enable the distinction from foreign DNA. Although much research has focused on the regulation of gene expression in B. burgdorferi, the effect of DNA methylation on gene regulation has not been evaluated. The current study characterizes the patterns of DNA methylation by restriction modification systems in B. burgdorferi and evaluates the resulting effects on gene regulation in this important pathogen.


Subject(s)
Borrelia burgdorferi/genetics , DNA Methylation , DNA Restriction-Modification Enzymes/metabolism , Gene Expression Profiling/methods , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , DNA, Bacterial/chemistry , Gene Expression Regulation, Bacterial , Sequence Analysis, RNA , Whole Genome Sequencing
5.
J Bacteriol ; 200(12)2018 06 15.
Article in English | MEDLINE | ID: mdl-29632088

ABSTRACT

The SpoVG protein of Borrelia burgdorferi, the Lyme disease spirochete, binds to specific sites of DNA and RNA. The bacterium regulates transcription of spoVG during the natural tick-mammal infectious cycle and in response to some changes in culture conditions. Bacterial levels of spoVG mRNA and SpoVG protein did not necessarily correlate, suggesting that posttranscriptional mechanisms also control protein levels. Consistent with this, SpoVG binds to its own mRNA, adjacent to the ribosome-binding site. SpoVG also binds to two DNA sites in the glpFKD operon and to two RNA sites in glpFKD mRNA; that operon encodes genes necessary for glycerol catabolism and is important for colonization in ticks. In addition, spirochetes engineered to dysregulate spoVG exhibited physiological alterations.IMPORTANCEB. burgdorferi persists in nature by cycling between ticks and vertebrates. Little is known about how the bacterium senses and adapts to each niche of the cycle. The present studies indicate that B. burgdorferi controls production of SpoVG and that this protein binds to specific sites of DNA and RNA in the genome and transcriptome, respectively. Altered expression of spoVG exerts effects on bacterial replication and other aspects of the spirochete's physiology.


Subject(s)
Bacterial Proteins/metabolism , Borrelia burgdorferi/metabolism , DNA, Bacterial/metabolism , Gene Expression Regulation, Bacterial , Lyme Disease/microbiology , RNA, Bacterial/metabolism , RNA-Binding Proteins/metabolism , Animals , Bacterial Proteins/genetics , Borrelia burgdorferi/genetics , Borrelia burgdorferi/growth & development , DNA, Bacterial/genetics , Female , Glycerol/metabolism , Humans , Lyme Disease/transmission , Mice , Mice, Inbred C3H , Operon , RNA, Bacterial/genetics , RNA-Binding Proteins/genetics , Ticks/microbiology , Ticks/physiology
6.
Vector Borne Zoonotic Dis ; 17(9): 619-629, 2017 09.
Article in English | MEDLINE | ID: mdl-28727515

ABSTRACT

Projections around the globe suggest an increase in tick-vectored disease incidence and distribution, and the potential for emergence of novel tick-borne pathogens. Lyme disease is the most common reported tick-borne illness in the Unites States and is prevalent throughout much of central Europe. In recent years, the worldwide burden of Lyme disease has increased and extended into regions and countries where the disease was not previously reported. In this review, we discuss the trends for increasing Lyme disease, and examine the factors driving Lyme disease expansion, including the effect of climate change on the spread of vector Ixodid ticks and reservoir hosts; and the impacts of increased awareness on disease reporting and diagnosis. To understand the growing threat of Lyme disease, we need to study the interplay between vector, reservoir, and pathogen. In addition, we need to understand the contributions of climate conditions to changes in disease risk.


Subject(s)
Lyme Disease/epidemiology , Animals , Arachnid Vectors/microbiology , Climate Change , Humans , Lyme Disease/microbiology , Risk Factors , Ticks/microbiology , Ticks/physiology
7.
PLoS One ; 10(4): e0124268, 2015.
Article in English | MEDLINE | ID: mdl-25893989

ABSTRACT

Efficient acquisition and transmission of Borrelia burgdorferi by the tick vector, and the ability to persistently infect both vector and host, are important elements for the life cycle of the Lyme disease pathogen. Previous work has provided strong evidence implicating the significance of the vls locus for B. burgdorferi persistence. However, studies involving vls mutant clones have thus far only utilized in vitro-grown or host-adapted spirochetes and laboratory strains of mice. Additionally, the effects of vls mutation on tick acquisition and transmission has not yet been tested. Thus, the importance of VlsE antigenic variation for persistent infection of the natural reservoir host, and for the B. burgdorferi enzootic life cycle in general, has not been examined to date. In the current work, Ixodes scapularis and Peromyscus maniculatus were infected with different vls mutant clones to study the importance of the vls locus for the enzootic cycle of the Lyme disease pathogen. The findings highlight the significance of the vls system for long-term infection of the natural reservoir host, and show that VlsE antigenic variability is advantageous for efficient tick acquisition of B. burgdorferi from the mammalian reservoir. The data also indicate that the adaptation state of infecting spirochetes influences B. burgdorferi avoidance from host antibodies, which may be in part due to its respective VlsE expression levels. Overall, the current findings provide the most direct evidence on the importance of VlsE for the enzootic cycle of Lyme disease spirochetes, and underscore the significance of VlsE antigenic variation for maintaining B. burgdorferi in nature.


Subject(s)
Antigens, Bacterial/metabolism , Bacterial Proteins/metabolism , Borrelia burgdorferi/metabolism , Ixodes/microbiology , Lipoproteins/metabolism , Peromyscus/microbiology , Animals , Antigenic Variation , Antigens, Bacterial/immunology , Bacterial Proteins/immunology , Lipoproteins/immunology , Lyme Disease/microbiology , Mice , Mice, Inbred C3H , Mice, SCID , Mutation , Polymerase Chain Reaction
8.
Infect Immun ; 80(5): 1773-82, 2012 May.
Article in English | MEDLINE | ID: mdl-22354033

ABSTRACT

The causative agent of Lyme disease, Borrelia burgdorferi, possesses a segmented genome comprised of a single linear chromosome and upwards of 23 linear and circular plasmids. Much of what is known about plasmid-borne genes comes from studying laboratory clones that have spontaneously lost one or more plasmids during in vitro passage. Some plasmids, including the linear plasmid lp17, are never or rarely reported to be lost during routine culture; therefore, little is known about the requirement of these conserved plasmids for infectivity. In this study, the effects of deleting regions of lp17 were examined both in vitro and in vivo. A mutant strain lacking the genes bbd16 to bbd25 showed no deficiency in the ability to establish infection or disseminate to the bloodstream of mice; however, colonization of peripheral tissues was delayed. Despite the ability to colonize ear, heart, and joint tissues, this mutant exhibited a defect in bladder tissue colonization for up to 56 days postinfection. This phenotype was not observed in immunodeficient mice, suggesting that bladder colonization by the mutant strain was inhibited by an adaptive immune-based mechanism. Moreover, the mutant displayed increased expression of outer surface protein C in vitro, which was correlated with the absence of the gene bbd18. To our knowledge, this is the first report involving genetic manipulation of lp17 in an infectious clone of B. burgdorferi and reveals for the first time the effects of lp17 gene deletion during murine infection by the Lyme disease spirochete.


Subject(s)
Borrelia burgdorferi/genetics , Borrelia burgdorferi/physiology , Gene Deletion , Gene Expression Regulation, Bacterial/physiology , Lyme Disease/microbiology , Plasmids/genetics , Animals , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Ear/microbiology , Genetic Complementation Test , Heart/microbiology , Immunocompromised Host , Joints/microbiology , Mice , Mice, Inbred C3H , Mice, SCID , Urinary Bladder/microbiology
9.
J Biol Chem ; 284(11): 7264-72, 2009 Mar 13.
Article in English | MEDLINE | ID: mdl-19122193

ABSTRACT

The genome of the Lyme disease pathogen Borrelia burgdorferi contains about a dozen linear DNA molecules that carry covalently closed hairpin telomeres as a specialized mechanism for dealing with the end-replication problem. The hairpin telomeres are generated from replicative intermediates through a two-step transesterification promoted by the telomere resolvase ResT. Although the genome of B. burgdorferi has been sequenced, the sequence of most telomeres has remained unknown because of difficulties in recovering and completely sequencing the covalently closed hairpin ends. In this study we report a new approach for the direct sequencing Borrelia telomeres and report the sequence, characterization, and in vitro reaction properties of 19 unique telomeres. Surprisingly, a variation of greater than 160-fold in the initial reaction rates of in vitro ResT-mediated telomere resolution was observed between the most active and least active telomeres. Moreover, three of the hairpin telomeres were completely inactive in vitro, but their in vivo functionality was demonstrated. Our results provide important new information on the structure and function of the B. burgdorferi telomeres and suggest the possibility that factors besides the telomere resolvase ResT may influence the reaction in vivo and rescue those telomeres that are not functional in vitro with ResT alone.


Subject(s)
Borrelia burgdorferi/metabolism , DNA Replication/physiology , DNA, Bacterial/metabolism , Lyme Disease , Plasmids/metabolism , Telomere/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Base Sequence , Borrelia burgdorferi/genetics , Cell-Free System/metabolism , DNA, Bacterial/genetics , Endodeoxyribonucleases/genetics , Endodeoxyribonucleases/metabolism , Genome, Bacterial/physiology , Molecular Sequence Data , Plasmids/genetics , Telomere/genetics
10.
Mol Microbiol ; 64(3): 580-90, 2007 May.
Article in English | MEDLINE | ID: mdl-17462009

ABSTRACT

Borrelia burgdorferi, a causative agent of Lyme disease, has a highly unusual segmented genome composed of both circular molecules and linear DNA replicons terminated by covalently closed hairpin ends or telomeres. Replication intermediates of the linear molecules are processed into hairpin telomeres via the activity of ResT, a telomere resolvase. We report here the results of limited proteolysis and mass spectroscopy to identify two main structural domains in ResT, separated by a chymotrypsin cleavage site between residues 163 and 164 of the 449 amino acid protein. The two domains have been overexpressed and purified. DNA electrophoretic mobility shift assays revealed that the C-terminal domain (ResT(164-449)) displays sequence-specific DNA binding to the box 3,4,5 region of the telomere, while the N-terminal domain (ResT(1-163)) exhibits sequence-independent DNA binding activity. Further analysis by DNase I footprinting supports a model for telomere resolution in which the hairpin binding module of the N-terminal domain is delivered to the box 1,2 region of the telomere through its tethering to ResT(164-449). Conversely, ResT(1-164) may play an important regulatory role by modulating both sequence-specific DNA binding activity and catalysis by the C-terminal domain.


Subject(s)
Bacterial Proteins/metabolism , Borrelia burgdorferi/metabolism , Endodeoxyribonucleases/metabolism , Telomere/metabolism , Bacterial Proteins/chemistry , Bacterial Proteins/genetics , Base Sequence , Binding Sites/genetics , Borrelia burgdorferi/enzymology , Borrelia burgdorferi/genetics , Chymotrypsin/metabolism , DNA Replication/genetics , DNA, Bacterial/genetics , DNA, Bacterial/metabolism , Deoxyribonuclease I/metabolism , Endodeoxyribonucleases/chemistry , Endodeoxyribonucleases/genetics , Genome, Bacterial , Models, Genetic , Protein Binding , Recombinases/genetics , Recombinases/metabolism , Telomere/enzymology
11.
J Bacteriol ; 188(21): 7378-86, 2006 Nov.
Article in English | MEDLINE | ID: mdl-16936037

ABSTRACT

Causative agents of Lyme disease and relapsing fever, including Borrelia burgdorferi and Borrelia hermsii, respectively, are unusual among bacteria in that they possess a segmented genome with linear DNA molecules terminated by hairpin ends, known as telomeres. During replication, these telomeres are processed by the essential telomere resolvase, ResT, in a unique biochemical reaction known as telomere resolution. In this study, we report the identification of the B. hermsii resT gene through cross-species hybridization. Sequence comparison of the B. hermsii protein with the B. burgdorferi orthologue revealed 67% identity, including all the regions currently known to be crucial for telomere resolution. In vitro studies, however, indicated that B. hermsii ResT was unable to process a replicated B. burgdorferi type 2 telomere substrate. In contrast, in vivo cross-species complementation in which the native resT gene of B. burgdorferi was replaced with B. hermsii resT had no discernible effect, even though B. burgdorferi strain B31 carries at least two type 2 telomere ends. The B. burgdorferi ResT protein was also able to process two telomere spacing mutants in vivo that were unresolvable in vitro. The unexpected differential telomere processing in vivo versus in vitro by the two telomere resolvases suggests the presence of one or more accessory factors in vivo that are normally involved in the reaction. Our current results are also expected to facilitate further studies into ResT structure and function, including possible interaction with other Borrelia proteins.


Subject(s)
Bacterial Proteins/metabolism , Borrelia/enzymology , DNA, Bacterial/metabolism , Endodeoxyribonucleases/metabolism , Telomere/metabolism , Amino Acid Sequence , Bacterial Proteins/chemistry , Bacterial Proteins/genetics , Borrelia/genetics , Cloning, Molecular , DNA, Bacterial/chemistry , DNA, Bacterial/genetics , Endodeoxyribonucleases/chemistry , Endodeoxyribonucleases/genetics , Gene Deletion , Genetic Complementation Test , Molecular Sequence Data , Nucleic Acid Hybridization , Sequence Analysis, DNA , Sequence Homology, Amino Acid
12.
Mol Microbiol ; 48(4): 901-11, 2003 May.
Article in English | MEDLINE | ID: mdl-12753185

ABSTRACT

An unusual feature of bacteria in the genus Borrelia (causative agents of Lyme disease and relapsing fever) is a segmented genome consisting of multiple linear DNA molecules with covalently closed hairpin ends, known as telomeres. The hairpin telomeres are generated by a DNA breakage and reunion process (telomere resolution) promoted by ResT, an enzyme using an active site related to that of tyrosine recombinases and type IB topoisomerases. In this study, we define the minimal sequence requirements for a functional telomere and identify specific basepairs that appear to be important for telomere resolution. In addition, we show that the two naturally occurring and distinct telomere spacings found in B. burgdorferi can both be efficiently processed by ResT. This flexibility for substrate utilization by ResT supports the argument for a single telomere resolvase in Borrelia. Furthermore, although telomere recognition requires sequence specificity in part of the substrate, DNA cleavage is instead position dependent and occurs at a fixed distance from the axis of symmetry and the conserved sequence of box 3 in the different replicated telomere substrates. This positional dependence for DNA cleavage has not been observed previously for a tyrosine recombinase.


Subject(s)
Borrelia burgdorferi/enzymology , Endodeoxyribonucleases/metabolism , Telomere/metabolism , Bacterial Proteins , Base Sequence , Borrelia burgdorferi/genetics , Molecular Sequence Data , Substrate Specificity , Telomere/genetics
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