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1.
PLoS Biol ; 21(10): e3002331, 2023 Oct.
Artigo em Inglês | MEDLINE | ID: mdl-37862360

RESUMO

Arthropod-borne pathogens cause some of the most important human and animal infectious diseases. Many vectors acquire or transmit pathogens through the process of blood feeding. Here, we report adiponectin, the most abundant adipocyte-derived hormone circulating in human blood, directly or indirectly inhibits acquisition of the Lyme disease agent, Borrelia burgdorferi, by Ixodes scapularis ticks. Rather than altering tick feeding or spirochete viability, adiponectin or its associated factors induces host histamine release when the tick feeds, which leads to vascular leakage, infiltration of neutrophils and macrophages, and inflammation at the bite site. Consistent with this, adiponectin-deficient mice have diminished pro-inflammatory responses, including interleukin (IL)-12 and IL-1ß, following a tick bite, compared with wild-type animals. All these factors mediated by adiponectin or associated factors influence B. burgdorferi survival at the tick bite site. These results suggest a host adipocyte-derived hormone modulates pathogen acquisition by a blood-feeding arthropod.


Assuntos
Grupo Borrelia Burgdorferi , Ixodes , Doença de Lyme , Picadas de Carrapatos , Animais , Camundongos , Humanos , Adiponectina , Grupo Borrelia Burgdorferi/fisiologia , Ixodes/fisiologia , Mamíferos
2.
Mol Microbiol ; 121(6): 1262-1272, 2024 06.
Artigo em Inglês | MEDLINE | ID: mdl-38830767

RESUMO

Emerging and re-emerging pathogens often stem from zoonotic origins, cycling between humans and animals, and are frequently vectored and maintained by hematophagous arthropod vectors. The efficiency by which these disease agents are successfully transmitted between vertebrate hosts is influenced by many factors, including the host on which a vector feeds. The Lyme disease bacterium Borrelia burgdorferi sensu lato has adapted to survive in complex host environments, vectored by Ixodes ticks, and maintained in multiple vertebrate hosts. The versatility of Lyme borreliae in disparate host milieus is a compelling platform to investigate mechanisms dictating pathogen transmission through complex networks of vertebrates and ticks. Squamata, one of the most diverse clade of extant reptiles, is comprised primarily of lizards, many of which are readily fed upon by Ixodes ticks. Yet, lizards are one of the least studied taxa at risk of contributing to the transmission and life cycle maintenance of Lyme borreliae. In this review, we summarize the current evidence, spanning from field surveillance to laboratory infection studies, supporting their contributions to Lyme borreliae circulation. We also summarize the current understanding of divergent lizard immune responses that may explain the underlying molecular mechanisms to confer Lyme spirochete survival in vertebrate hosts. This review offers a critical perspective on potential enzootic cycles existing between lizard-tick-Borrelia interactions and highlights the importance of an eco-immunology lens for zoonotic pathogen transmission studies.


Assuntos
Ixodes , Lagartos , Doença de Lyme , Animais , Lagartos/microbiologia , Doença de Lyme/microbiologia , Doença de Lyme/transmissão , Ixodes/microbiologia , Humanos , Grupo Borrelia Burgdorferi/fisiologia , Grupo Borrelia Burgdorferi/genética , Borrelia burgdorferi/genética , Borrelia burgdorferi/fisiologia
3.
Proc Natl Acad Sci U S A ; 119(47): e2208274119, 2022 11 22.
Artigo em Inglês | MEDLINE | ID: mdl-36383602

RESUMO

Lyme spirochetes have coevolved with ticks to optimize transmission to hosts using tick salivary molecules (TSMs) to counteract host defenses. TSMs modulate various molecular events at the tick-host interface. Lymphotoxin-beta receptor (LTßR) is a vital immune receptor and plays protective roles in host immunity against microbial infections. We found that Ltbr knockout mice were more susceptible to Lyme disease spirochetes, suggesting the involvement of LTßR signaling in tick-borne Borrelia infection. Further investigation showed that a 15-kDa TSM protein from Ixodes persulcatus (I. persulcatus salivary protein; IpSAP) functioned as an immunosuppressant to facilitate the transmission and infection of Lyme disease spirochetes. IpSAP directly interacts with LTßR to block its activation, thus inhibiting the downstream signaling and consequently suppressing immunity. IpSAP immunization provided mice with significant protection against I. persulcatus-mediated Borrelia garinii infection. Notably, the immunization showed considerable cross-protection against other Borrelia infections mediated by other ixodid ticks. One of the IpSAP homologs from other ixodid ticks showed similar effects on Lyme spirochete transmission. Together, our findings suggest that LTßR signaling plays an important role in blocking the transmission and pathogenesis of tick-borne Lyme disease spirochetes, and that IpSAP and its homologs are promising candidates for broad-spectrum vaccine development.


Assuntos
Grupo Borrelia Burgdorferi , Borrelia burgdorferi , Ixodes , Doença de Lyme , Camundongos , Animais , Borrelia burgdorferi/genética , Saliva , Ixodes/fisiologia , Receptor beta de Linfotoxina
4.
Mol Microbiol ; 119(6): 711-727, 2023 06.
Artigo em Inglês | MEDLINE | ID: mdl-37086029

RESUMO

PlzA is a c-di-GMP-binding protein crucial for adaptation of the Lyme disease spirochete Borrelia (Borreliella) burgdorferi during its enzootic life cycle. Unliganded apo-PlzA is important for vertebrate infection, while liganded holo-PlzA is important for survival in the tick; however, the biological function of PlzA has remained enigmatic. Here, we report that PlzA has RNA chaperone activity that is inhibited by c-di-GMP binding. Holo- and apo-PlzA bind RNA and accelerate RNA annealing, while only apo-PlzA can strand displace and unwind double-stranded RNA. Guided by the crystal structure of PlzA, we identified several key aromatic amino acids protruding from the N- and C-terminal domains that are required for RNA-binding and unwinding activity. Our findings illuminate c-di-GMP as a switch controlling the RNA chaperone activity of PlzA, and we propose that complex RNA-mediated modulatory mechanisms allow PlzA to regulate gene expression during both the vector and host phases of the B. burgdorferi life cycle.


Assuntos
Grupo Borrelia Burgdorferi , Borrelia burgdorferi , Ixodes , Doença de Lyme , Proteínas de Bactérias/metabolismo , Borrelia burgdorferi/metabolismo , Grupo Borrelia Burgdorferi/genética , Doença de Lyme/genética , RNA/metabolismo
5.
PLoS Pathog ; 18(3): e1010385, 2022 03.
Artigo em Inglês | MEDLINE | ID: mdl-35255112

RESUMO

We have identified GpsA, a predicted glycerol-3-phosphate dehydrogenase, as a virulence factor in the Lyme disease spirochete Borrelia (Borreliella) burgdorferi: GpsA is essential for murine infection and crucial for persistence of the spirochete in the tick. B. burgdorferi has a limited biosynthetic and metabolic capacity; the linchpin connecting central carbohydrate and lipid metabolism is at the interconversion of glycerol-3-phosphate and dihydroxyacetone phosphate, catalyzed by GpsA and another glycerol-3-phosphate dehydrogenase, GlpD. Using a broad metabolomics approach, we found that GpsA serves as a dominant regulator of NADH and glycerol-3-phosphate levels in vitro, metabolic intermediates that reflect the cellular redox potential and serve as a precursor for lipid and lipoprotein biosynthesis, respectively. Additionally, GpsA was required for survival under nutrient stress, regulated overall reductase activity and controlled B. burgdorferi morphology in vitro. Furthermore, during in vitro nutrient stress, both glycerol and N-acetylglucosamine were bactericidal to B. burgdorferi in a GlpD-dependent manner. This study is also the first to identify a suppressor mutation in B. burgdorferi: a glpD deletion restored the wild-type phenotype to the pleiotropic gpsA mutant, including murine infectivity by needle inoculation at high doses, survival under nutrient stress, morphological changes and the metabolic imbalance of NADH and glycerol-3-phosphate. These results illustrate how basic metabolic functions that are dispensable for in vitro growth can be essential for in vivo infectivity of B. burgdorferi and may serve as attractive therapeutic targets.


Assuntos
Grupo Borrelia Burgdorferi , Borrelia burgdorferi , Doença de Lyme , Carrapatos , Animais , Proteínas de Bactérias/genética , Proteínas de Bactérias/metabolismo , Glicerol/metabolismo , Glicerolfosfato Desidrogenase/genética , Glicerolfosfato Desidrogenase/metabolismo , Camundongos , NAD/metabolismo , Oxirredução , Fosfatos/metabolismo
6.
BMC Infect Dis ; 24(1): 337, 2024 Mar 21.
Artigo em Inglês | MEDLINE | ID: mdl-38515037

RESUMO

BACKGROUND: Genetic variation underly inter-individual variation in host immune responses to infectious diseases, and may affect susceptibility or the course of signs and symptoms. METHODS: We performed genome-wide association studies in a prospective cohort of 1138 patients with physician-confirmed Lyme borreliosis (LB), the most common tick-borne disease in the Northern hemisphere caused by the bacterium Borrelia burgdorferi sensu lato. Genome-wide variants in LB patients-divided into a discovery and validation cohort-were compared to two healthy cohorts. Additionally, ex vivo monocyte-derived cytokine responses of peripheral blood mononuclear cells to several stimuli including Borrelia burgdorferi were performed in both LB patient and healthy control samples, as were stimulation experiments using mechanistic/mammalian target of rapamycin (mTOR) inhibitors. In addition, for LB patients, anti-Borrelia antibody responses were measured. Finally, in a subset of LB patients, gene expression was analysed using RNA-sequencing data from the ex vivo stimulation experiments. RESULTS: We identified a previously unknown genetic variant, rs1061632, that was associated with enhanced LB susceptibility. This polymorphism was an eQTL for KCTD20 and ETV7 genes, and its major risk allele was associated with upregulation of the mTOR pathway and cytokine responses, and lower anti-Borrelia antibody production. In addition, we replicated the recently reported SCGB1D2 locus that was suggested to have a protective effect on B. burgdorferi infection, and associated this locus with higher Borrelia burgdorferi antibody indexes and lower IL-10 responses. CONCLUSIONS: Susceptibility for LB was associated with higher anti-inflammatory responses and reduced anti-Borrelia antibody production, which in turn may negatively impact bacterial clearance. These findings provide important insights into the immunogenetic susceptibility for LB and may guide future studies on development of preventive or therapeutic measures. TRIAL REGISTRATION: The LymeProspect study was registered with the International Clinical Trials Registry Platform (NTR4998, registration date 2015-02-13).


Assuntos
Grupo Borrelia Burgdorferi , Borrelia burgdorferi , Borrelia , Doença de Lyme , Humanos , Estudo de Associação Genômica Ampla , Estudos Prospectivos , Leucócitos Mononucleares , Suscetibilidade a Doenças , Doença de Lyme/genética , Doença de Lyme/diagnóstico , Borrelia burgdorferi/genética , Citocinas/genética , Serina-Treonina Quinases TOR/genética , Serina-Treonina Quinases TOR/uso terapêutico , Grupo Borrelia Burgdorferi/genética , Secretoglobinas/genética
7.
Clin Microbiol Rev ; 35(4): e0007422, 2022 12 21.
Artigo em Inglês | MEDLINE | ID: mdl-36222707

RESUMO

Lyme borreliosis is caused by spirochetes belonging to the Borrelia burgdorferi sensu lato group, which are transmitted by Ixodes tick species living in the temperate climate zones of the Northern Hemisphere. The clinical manifestations of Lyme borreliosis are diverse and treated with oral or intravenous antibiotics. In some patients, long-lasting and debilitating symptoms can persist after the recommended antibiotic treatment. The etiology of such persisting symptoms is under debate, and one hypothesis entails persistent infection by a subset of spirochetes after antibiotic therapy. Here, we review and appraise the experimental evidence from in vivo animal studies on the persistence of B. burgdorferi sensu lato infection after antibiotic treatment, focusing on the antimicrobial agents doxycycline and ceftriaxone. Our review indicates that some in vivo animal studies found sporadic positive cultures after antibiotic treatment. However, this culture positivity often seemed to be related to inadequate antibiotic treatment, and the few positive cultures in some studies could not be reproduced in other studies. Overall, current results from animal studies provide insufficient evidence for the persistence of viable and infectious spirochetes after adequate antibiotic treatment. Borrelial nucleic acids, on the contrary, were frequently detected in these animal studies and may thus persist after antibiotic treatment. We put forward that research into the pathogenesis of persisting complaints after antibiotic treatment for Lyme borreliosis in humans should be a top priority, but future studies should most definitely also focus on explanations other than persistent B. burgdorferi sensu lato infection after antibiotic treatment.


Assuntos
Grupo Borrelia Burgdorferi , Ixodes , Doença de Lyme , Animais , Humanos , Antibacterianos/uso terapêutico , Doença de Lyme/diagnóstico , Doença de Lyme/tratamento farmacológico , Modelos Animais
8.
Infect Immun ; 91(3): e0006123, 2023 03 15.
Artigo em Inglês | MEDLINE | ID: mdl-36853005

RESUMO

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.


Assuntos
Grupo Borrelia Burgdorferi , Borrelia burgdorferi , Doença de Lyme , Animais , Camundongos , Borrelia burgdorferi/genética , Camundongos Endogâmicos C3H , Plasmídeos/genética , Doença de Lyme/microbiologia , Mamíferos
9.
BMC Genomics ; 24(1): 401, 2023 Jul 17.
Artigo em Inglês | MEDLINE | ID: mdl-37460975

RESUMO

BACKGROUND: Bacteria of the Borrelia burgdorferi sensu lato (s.l.) complex can cause Lyme borreliosis. Different B. burgdorferi s.l. genospecies vary in their host and vector associations and human pathogenicity but the genetic basis for these adaptations is unresolved and requires completed and reliable genomes for comparative analyses. The de novo assembly of a complete Borrelia genome is challenging due to the high levels of complexity, represented by a high number of circular and linear plasmids that are dynamic, showing mosaic structure and sequence homology. Previous work demonstrated that even advanced approaches, such as a combination of short-read and long-read data, might lead to incomplete plasmid reconstruction. Here, using recently developed high-fidelity (HiFi) PacBio sequencing, we explored strategies to obtain gap-free, complete and high quality Borrelia genome assemblies. Optimizing genome assembly, quality control and refinement steps, we critically appraised existing techniques to create a workflow that lead to improved genome reconstruction. RESULTS: Despite the latest available technologies, stand-alone sequencing and assembly methods are insufficient for the generation of complete and high quality Borrelia genome assemblies. We developed a workflow pipeline for the de novo genome assembly for Borrelia using several types of sequence data and incorporating multiple assemblers to recover the complete genome including both circular and linear plasmid sequences. CONCLUSION: Our study demonstrates that, with HiFi data and an ensemble reconstruction pipeline with refinement steps, chromosomal and plasmid sequences can be fully resolved, even for complex genomes such as Borrelia. The presented pipeline may be of interest for the assembly of further complex microbial genomes.


Assuntos
Grupo Borrelia Burgdorferi , Borrelia burgdorferi , Borrelia , Doença de Lyme , Humanos , Borrelia/genética , Genoma Bacteriano , Filogenia , Borrelia burgdorferi/genética , Doença de Lyme/microbiologia , Grupo Borrelia Burgdorferi/genética
10.
Emerg Infect Dis ; 29(1): 64-69, 2023 01.
Artigo em Inglês | MEDLINE | ID: mdl-36573553

RESUMO

Lyme disease is a multisystem disorder primarily caused by Borrelia burgdorferi sensu lato. However, B. garinii, which has been identified on islands off the coast of Newfoundland and Labrador, Canada, is a cause of Lyme disease in Eurasia. We report isolation and whole-genome nucleotide sequencing of a B. garinii isolate from a cotton mouse (Peromyscus gossypinus) in South Carolina, USA. We identified a second B. garinii isolate from the same repository. Phylogenetic analysis does not associate these isolates with the previously described isolates of B. garinii from Canada.


Assuntos
Grupo Borrelia Burgdorferi , Borrelia burgdorferi , Doença de Lyme , Animais , Estados Unidos/epidemiologia , Grupo Borrelia Burgdorferi/genética , Filogenia , Doença de Lyme/epidemiologia , Peromyscus , Genômica
11.
Mol Ecol ; 32(4): 786-799, 2023 02.
Artigo em Inglês | MEDLINE | ID: mdl-36461660

RESUMO

Vector-borne pathogens exist in obligate transmission cycles between vector and reservoir host species. Host and vector shifts can lead to geographic expansion of infectious agents and the emergence of new diseases in susceptible individuals. Three bacterial genospecies (Borrelia afzelii, Borrelia bavariensis, and Borrelia garinii) predominantly utilize two distinct tick species as vectors in Asia (Ixodes persulcatus) and Europe (Ixodes ricinus). Through these vectors, the bacteria can infect various vertebrate groups (e.g., rodents, birds) including humans where they cause Lyme borreliosis, the most common vector-borne disease in the Northern hemisphere. Yet, how and in which order the three Borrelia genospecies colonized each continent remains unclear including the evolutionary consequences of this geographic expansion. Here, by reconstructing the evolutionary history of 142 Eurasian isolates, we found evidence that the ancestors of each of the three genospecies probably have an Asian origin. Even so, each genospecies studied displayed a unique substructuring and evolutionary response to the colonization of Europe. The pattern of allele sharing between continents is consistent with the dispersal rate of the respective vertebrate hosts, supporting the concept that adaptation of Borrelia genospecies to the host is important for pathogen dispersal. Our results highlight that Eurasian Lyme borreliosis agents are all capable of geographic expansion with host association influencing their dispersal; further displaying the importance of host and vector association to the geographic expansion of vector-borne pathogens and potentially conditioning their capacity as emergent pathogens.


Assuntos
Distribuição Animal , Vetores Aracnídeos , Borrelia , Ixodes , Doença de Lyme , Animais , Humanos , Ásia , Borrelia/genética , Borrelia/fisiologia , Grupo Borrelia Burgdorferi/genética , Grupo Borrelia Burgdorferi/fisiologia , Ixodes/microbiologia , Ixodes/fisiologia , Doença de Lyme/microbiologia , Doença de Lyme/transmissão , Europa (Continente) , Vetores Aracnídeos/microbiologia , Vetores Aracnídeos/fisiologia , Distribuição Animal/fisiologia , Adaptação Biológica/genética , Adaptação Biológica/fisiologia
12.
Pediatr Emerg Care ; 39(5): 351-354, 2023 May 01.
Artigo em Inglês | MEDLINE | ID: mdl-37115992

RESUMO

ABSTRACT: Lyme disease, also called Lyme borreliosis, is caused by the spirochete Borrelia burgdorferi sensu stricto (B burgdorferi) in the Upper Atlantic Coast and Borrelia mayonii in the Upper Midwest and West Coast. It can cause a range of manifestations including erythema migrans, cranial nerve palsies, meningitis, carditis, and arthritis. Recent guidelines advocate for outpatient treatment for many of these conditions. Scenarios will be presented that outline treatment of these manifestations.


Assuntos
Grupo Borrelia Burgdorferi , Borrelia burgdorferi , Doença de Lyme , Humanos , Pacientes Ambulatoriais , Doença de Lyme/diagnóstico , Doença de Lyme/tratamento farmacológico
13.
Int J Mol Sci ; 24(23)2023 Nov 29.
Artigo em Inglês | MEDLINE | ID: mdl-38069228

RESUMO

Lyme disease (LD) spirochetes are well known to be able to disseminate into the tissues of infected hosts, including humans. The diverse strategies used by spirochetes to avoid the host immune system and persist in the host include active immune suppression, induction of immune tolerance, phase and antigenic variation, intracellular seclusion, changing of morphological and physiological state in varying environments, formation of biofilms and persistent forms, and, importantly, incursion into immune-privileged sites such as the brain. Invasion of immune-privileged sites allows the spirochetes to not only escape from the host immune system but can also reduce the efficacy of antibiotic therapy. Here we present a case of the detection of spirochetal DNA in multiple loci in a LD patient's post-mortem brain. The presence of co-infection with Borrelia burgdorferi sensu stricto and Borrelia garinii in this LD patient's brain was confirmed by PCR. Even though both spirochete species were simultaneously present in human brain tissue, the brain regions where the two species were detected were different and non-overlapping. The presence of atypical spirochete morphology was noted by immunohistochemistry of the brain samples. Atypical morphology was also found in the tissues of experimentally infected mice, which were used as a control.


Assuntos
Grupo Borrelia Burgdorferi , Borrelia burgdorferi , Borrelia , Doença de Lyme , Humanos , Borrelia/genética , Borrelia burgdorferi/genética , Grupo Borrelia Burgdorferi/genética , Encéfalo
14.
Rozhl Chir ; 102(2): 88-90, 2023.
Artigo em Inglês | MEDLINE | ID: mdl-37185032

RESUMO

Borrelial pseudolymphoma, more commonly known as Borrelia lymphocytoma and previously also as lymphadenosis benigna cutis, is a rare manifestation of Lyme borreliosis, which occurs nearly always in children after an infection caused by Borrelia afzelii; this pathogen is transmitted exclusively by the Ixodes ricinus tick in our region. The most common body locations of this lymphocytoma include the earlobe, scrotum, nipples and the areomamillary complex. Therefore, the case of our patient was unexpected and quite rare. The aim of this article is to point out the high incidence of Lyme disease and its atypical manifestations which can be cured without surgical intervention in most cases. The authors describe the case of a 58-year-old healthy female patient with a very rare manifestation of Lyme disease.


Assuntos
Grupo Borrelia Burgdorferi , Borrelia , Doença de Lyme , Pseudolinfoma , Masculino , Criança , Humanos , Adulto , Feminino , Pessoa de Meia-Idade , Pseudolinfoma/diagnóstico , Sobrancelhas/patologia , Doença de Lyme/complicações , Doença de Lyme/diagnóstico , Doença de Lyme/epidemiologia
15.
Infect Immun ; 90(9): e0030622, 2022 09 15.
Artigo em Inglês | MEDLINE | ID: mdl-36000876

RESUMO

Lyme disease vaccines based on recombinant Outer surface protein A (OspA) elicit protective antibodies that interfere with tick-to-host transmission of the disease-causing spirochete Borreliella burgdorferi. Another hallmark of OspA antisera and certain OspA monoclonal antibodies (MAbs) is their capacity to induce B. burgdorferi agglutination in vitro, a phenomenon first reported more than 30 years ago but never studied in molecular detail. In this report, we demonstrate that transmission-blocking OspA MAbs, individually and in combination, promote dose-dependent and epitope-specific agglutination of B. burgdorferi. Agglutination occurred within minutes and persisted for hours. Spirochetes in the core of the aggregates exhibited evidence of outer membrane (OM) stress, revealed by propidium iodide uptake. The most potent agglutinator was the mouse MAb LA-2, which targets the OspA C terminus (ß-strands 18 to 20). Human MAb 319-44, which also targets the OspA C terminus (ß-strand 20), and 857-2, which targets the OspA central ß-sheet (strands 8 to 10), were less potent agglutinators, while MAb 221-7, which targets ß-strands 10 to 11, had little to no measurable agglutinating activity, even though its affinity for OspA exceeded that of LA-2. Remarkably, monovalent Fab fragments derived from LA-2, and to a lesser degree 319-44, retained the capacity to induce B. burgdorferi aggregation and OM stress, a particularly intriguing observation considering that "LA-2-like" Fabs have been shown to experimentally entrap B. burgdorferi within infected ticks and prevent transmission during feeding to a mammalian host. It is therefore tempting to speculate that B. burgdorferi aggregation triggered by OspA-specific antibodies in vitro may in fact reflect an important biological activity in vivo.


Assuntos
Grupo Borrelia Burgdorferi , Borrelia burgdorferi , Doença de Lyme , Carrapatos , Aglutinação , Animais , Anticorpos Antibacterianos , Anticorpos Monoclonais , Antígenos de Superfície , Proteínas da Membrana Bacteriana Externa , Vacinas Bacterianas , Epitopos , Humanos , Soros Imunes , Fragmentos Fab das Imunoglobulinas , Lipoproteínas , Vacinas contra Doença de Lyme , Mamíferos , Camundongos , Propídio
16.
Infect Immun ; 90(7): e0006222, 2022 07 21.
Artigo em Inglês | MEDLINE | ID: mdl-35861564

RESUMO

Transmitted by ticks, the bacterium Borrelia burgdorferi sensu lato is the causative agent of Lyme disease (LD), the most common vector-borne disease in the Northern hemisphere. No effective vaccines are currently available. B. burgdorferi sensu lato produces the CspZ protein that binds to the complement inhibitor, factor H (FH), promoting evasion of the host complement system. We previously showed that while vaccination with CspZ did not protect mice from B. burgdorferi infection, mice can be protected after immunization with CspZ-Y207A/Y211A (CspZ-YA), a CspZ mutant protein without FH-binding activity. To further study the mechanism of this protection, herein we evaluated both poly- and monoclonal antibodies recognizing CspZ FH-binding or non-FH-binding sites. We found that the anti-CspZ antibodies that recognize the FH-binding sites (i.e., block FH-binding activity) eliminate B. burgdorferi sensu lato in vitro more efficiently than those that bind to the non-FH-binding sites, and passive inoculation with anti-FH-binding site antibodies eradicated B. burgdorferi sensu lato in vivo. Antibodies against non-FH-binding sites did not have the same effect. These results emphasize the importance of CspZ FH-binding sites in triggering a protective antibody response against B. burgdorferi sensu lato in future LD vaccines.


Assuntos
Grupo Borrelia Burgdorferi , Borrelia , Ixodes , Doença de Lyme , Animais , Anticorpos , Sítios de Ligação , Fator H do Complemento , Epitopos , Ixodes/microbiologia , Doença de Lyme/microbiologia , Camundongos
17.
Clin Infect Dis ; 75(2): 342-346, 2022 08 25.
Artigo em Inglês | MEDLINE | ID: mdl-34849631

RESUMO

The role that microorganisms might have in the development of Alzheimer disease is a topic of considerable interest. In this article, we discuss whether there is credible evidence that Lyme disease is a cause of Alzheimer disease and critically review a recent publication that claimed that Borrelia burgdorferi sensu stricto infection, the primary cause of Lyme disease in the United States, may cause Lewy body dementia. We conclude that no convincing evidence exists that Lyme disease is a cause of either Alzheimer disease or Lewy body dementia.


Assuntos
Doença de Alzheimer , Grupo Borrelia Burgdorferi , Borrelia burgdorferi , Doença por Corpos de Lewy , Doença de Lyme , Doença de Alzheimer/etiologia , Humanos , Doença de Lyme/complicações , Estados Unidos
18.
Mol Microbiol ; 115(6): 1395-1409, 2021 06.
Artigo em Inglês | MEDLINE | ID: mdl-33512032

RESUMO

Lyme borreliosis is a tick-borne disease caused by Borrelia burgdorferi sensu lato spirochetes (Lyme borreliae). When the disease affects the central nervous system, it is referred to as neuroborreliosis. In Europe, neuroborreliosis is most often caused by Borrelia garinii. Although it is known that in the host Lyme borreliae spread from the tick bite site to distant tissues via the blood vasculature, the adherence of Lyme borreliae to human brain microvascular endothelial cells has not been studied before. Decorin binding proteins are adhesins expressed on Lyme borreliae. They mediate the adhesion of Lyme borreliae to decorin and biglycan, and the lysine residues located in the binding site of decorin binding proteins are important to the binding activity. In this study, we show that lysine residues located in the canonical binding site can also be found in decorin binding proteins of Borrelia garinii, and that these lysines contribute to biglycan and decorin binding. Most importantly, we show that the lysine residues are crucial for the binding of Lyme borreliae to decorin and biglycan expressing human brain microvascular endothelial cells, which in turn suggests that they are involved in the pathogenesis of neuroborreliosis.


Assuntos
Adesinas Bacterianas/metabolismo , Aderência Bacteriana/fisiologia , Biglicano/metabolismo , Grupo Borrelia Burgdorferi/metabolismo , Decorina/metabolismo , Neuroborreliose de Lyme/patologia , Adesinas Bacterianas/genética , Sequência de Aminoácidos , Sítios de Ligação/genética , Grupo Borrelia Burgdorferi/genética , Encéfalo/irrigação sanguínea , Células Cultivadas , Células Endoteliais/metabolismo , Humanos , Neuroborreliose de Lyme/microbiologia , Lisina/química , Simulação de Dinâmica Molecular , Alinhamento de Sequência , Doenças Transmitidas por Carrapatos/microbiologia
19.
Proc Biol Sci ; 289(1969): 20212087, 2022 02 23.
Artigo em Inglês | MEDLINE | ID: mdl-35193398

RESUMO

Predicting pathogen emergence and spillover risk requires understanding the determinants of a pathogens' host range and the traits involved in host competence. While host competence is often considered a fixed species-specific trait, it may be variable if pathogens diversify across hosts. Balancing selection can lead to maintenance of pathogen polymorphisms (multiple-niche-polymorphism; MNP). The causative agent of Lyme disease, Borrelia burgdorferi (Bb), provides a model to study the evolution of host adaptation, as some Bb strains defined by their outer surface protein C (ospC) genotype, are widespread in white-footed mice and others are associated with non-rodent vertebrates (e.g. birds). To identify the mechanisms underlying potential strain × host adaptation, we infected American robins and white-footed mice, with three Bb strains of different ospC genotypes. Bb burdens varied by strain in a host-dependent fashion, and strain persistence in hosts largely corresponded to Bb survival at early infection stages and with transmission to larvae (i.e. fitness). Early survival phenotypes are associated with cell adhesion, complement evasion and/or inflammatory and antibody-mediated removal of Bb, suggesting directional selective pressure for host adaptation and the potential role of MNP in maintaining OspC diversity. Our findings will guide future investigations to inform eco-evolutionary models of host adaptation for microparasites.


Assuntos
Grupo Borrelia Burgdorferi , Borrelia burgdorferi , Doença de Lyme , Animais , Borrelia burgdorferi/genética , Grupo Borrelia Burgdorferi/genética , Adaptação ao Hospedeiro , Peromyscus , Fenótipo
20.
Appl Environ Microbiol ; 88(5): e0155521, 2022 03 08.
Artigo em Inglês | MEDLINE | ID: mdl-34986011

RESUMO

Lyme borreliosis is the most common vector-borne disease in the Northern Hemisphere, caused by spirochetes belonging to the Borrelia burgdorferi sensu lato species complex, which are transmitted by ixodid ticks. B. burgdorferi sensu lato species produce a family of proteins on the linear plasmid 54 (PFam54), some of which confer the functions of cell adhesion and inactivation of complement, the first line of host defense. However, the impact of PFam54 in promoting B. burgdorferi sensu lato pathogenesis remains unclear because of the hurdles to simultaneously knock out all PFam54 proteins in a spirochete. Here, we describe two Borrelia bavariensis strains, PBN and PNi, isolated from patients naturally lacking PFam54 but maintaining the rest of the genome with greater than 95% identity to the reference B. bavariensis strain, PBi. We found that PBN and PNi less efficiently survive in human serum than PBi. Such defects were restored by introducing two B. bavariensis PFam54 recombinant proteins, BGA66 and BGA71, confirming the role of these proteins in providing complement evasion of B. bavariensis. Further, we found that all three strains remain detectable in various murine tissues 21 days post-subcutaneous infection, supporting the nonessential role of B. bavariensis PFam54 in promoting spirochete persistence. This study identified and utilized isolates deficient in PFam54 to associate the defects with the absence of these proteins, building the foundation to further study the role of each PFam54 protein in contributing to B. burgdorferi sensu lato pathogenesis. IMPORTANCE To establish infections, Lyme borreliae utilize various means to overcome the host's immune system. Proteins encoded by the PFam54 gene array play a role in spirochete survival in vitro and in vivo. Moreover, this gene array has been described in all currently available Lyme borreliae genomes. By investigating the first two Borrelia bavariensis isolates naturally lacking the entire PFam54 gene array, we showed that both patient isolates display an increased susceptibility to human serum, which can be rescued in the presence of two PFam54 recombinant proteins. However, both isolates remain infectious to mice after intradermal inoculation, suggesting the nonessential role of PFam54 during the long-term, but may differ slightly in the colonization of specific tissues. Furthermore, these isolates show high genomic similarity to type strain PBi (>95%) and could be used in future studies investigating the role of each PFam54 protein in Lyme borreliosis pathogenesis.


Assuntos
Grupo Borrelia Burgdorferi , Borrelia , Ixodes , Doença de Lyme , Animais , Borrelia/genética , Grupo Borrelia Burgdorferi/genética , Humanos , Camundongos , Plasmídeos , Spirochaetales
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