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1.
Environ Microbiol ; 24(3): 1380-1394, 2022 03.
Artigo em Inglês | MEDLINE | ID: mdl-34897945

RESUMO

Wild birds are common reservoirs of Salmonella enterica. Wild birds carrying resistant S. enterica may pose a risk to public health as they can spread the resistant bacteria across large spatial scales within a short time. Here, we whole-genome sequenced 375 S. enterica strains from wild birds collected in 41 U.S. states during 1978-2019 to examine bacterial resistance to antibiotics and heavy metals. We found that Typhimurium was the dominant S. enterica serovar, accounting for 68.3% (256/375) of the bird isolates. Furthermore, the proportions of the isolates identified as multi-antimicrobial resistant (multi-AMR: resistant to at least three antimicrobial classes) or multi-heavy metal resistant (multi-HMR: resistant to at least three heavy metals) were both 1.87% (7/375). Interestingly, all the multi-resistant S. enterica (n = 12) were isolated from water birds or raptors; none of them was isolated from songbirds. Plasmid profiling demonstrated that 75% (9/12) of the multi-resistant strains carried resistance plasmids. Our study indicates that wild birds do not serve as important reservoirs of multi-resistant S. enterica strains. Nonetheless, continuous surveillance for bacterial resistance in wild birds is necessary because the multi-resistant isolates identified in this study also showed close genetic relatedness with those from humans and domestic animals.


Assuntos
Anti-Infecciosos , Metais Pesados , Salmonelose Animal , Salmonella enterica , Animais , Animais Selvagens/genética , Antibacterianos/farmacologia , Antibacterianos/uso terapêutico , Aves , Farmacorresistência Bacteriana Múltipla/genética , Metais Pesados/farmacologia , Testes de Sensibilidade Microbiana , Plasmídeos , Salmonelose Animal/epidemiologia , Salmonelose Animal/microbiologia , Estados Unidos
2.
PLoS Pathog ; 16(9): e1008758, 2020 09.
Artigo em Inglês | MEDLINE | ID: mdl-32881980

RESUMO

The COVID-19 pandemic highlights the substantial public health, economic, and societal consequences of virus spillover from a wildlife reservoir. Widespread human transmission of severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) also presents a new set of challenges when considering viral spillover from people to naïve wildlife and other animal populations. The establishment of new wildlife reservoirs for SARS-CoV-2 would further complicate public health control measures and could lead to wildlife health and conservation impacts. Given the likely bat origin of SARS-CoV-2 and related beta-coronaviruses (ß-CoVs), free-ranging bats are a key group of concern for spillover from humans back to wildlife. Here, we review the diversity and natural host range of ß-CoVs in bats and examine the risk of humans inadvertently infecting free-ranging bats with SARS-CoV-2. Our review of the global distribution and host range of ß-CoV evolutionary lineages suggests that 40+ species of temperate-zone North American bats could be immunologically naïve and susceptible to infection by SARS-CoV-2. We highlight an urgent need to proactively connect the wellbeing of human and wildlife health during the current pandemic and to implement new tools to continue wildlife research while avoiding potentially severe health and conservation impacts of SARS-CoV-2 "spilling back" into free-ranging bat populations.


Assuntos
Animais Selvagens/virologia , Betacoronavirus/patogenicidade , Infecções por Coronavirus/virologia , Pneumonia Viral/virologia , Animais , COVID-19 , Quirópteros/virologia , Genoma Viral/genética , Especificidade de Hospedeiro/fisiologia , Humanos , Pandemias , SARS-CoV-2
3.
Appl Environ Microbiol ; 88(6): e0197921, 2022 03 22.
Artigo em Inglês | MEDLINE | ID: mdl-35108089

RESUMO

Salmonella enterica serovar Typhimurium is typically considered a host generalist; however, certain isolates are associated with specific hosts and show genetic features of host adaptation. Here, we sequenced 131 S. Typhimurium isolates from wild birds collected in 30 U.S. states during 1978-2019. We found that isolates from broad taxonomic host groups including passerine birds, water birds (Aequornithes), and larids (gulls and terns) represented three distinct lineages and certain S. Typhimurium CRISPR types presented in individual lineages. We also showed that lineages formed by wild bird isolates differed from most isolates originating from domestic animal sources, and that genomes from these lineages substantially improved source attribution of Typhimurium genomes to wild birds by a machine learning classifier. Furthermore, virulence gene signatures that differentiated S. Typhimurium from passerines, water birds, and larids were detected. Passerine isolates tended to lack S. Typhimurium-specific virulence plasmids. Isolates from the passerine, water bird, and larid lineages had close genetic relatedness with human clinical isolates, including those from a 2021 U.S. outbreak linked to passerine birds. These observations indicate that S. Typhimurium from wild birds in the United States are likely host-adapted, and the representative genomic data set examined in this study can improve source prediction and facilitate outbreak investigation. IMPORTANCE Within-host evolution of S. Typhimurium may lead to pathovars adapted to specific hosts. Here, we report the emergence of disparate avian S. Typhimurium lineages with distinct virulence gene signatures. The findings highlight the importance of wild birds as a reservoir for S. Typhimurium and contribute to our understanding of the genetic diversity of S. Typhimurium from wild birds. Our study indicates that S. Typhimurium may have undergone adaptive evolution within wild birds in the United States. The representative S. Typhimurium genomes from wild birds, together with the virulence gene signatures identified in these bird isolates, are valuable for S. Typhimurium source attribution and epidemiological surveillance.


Assuntos
Doenças das Aves , Salmonelose Animal , Salmonella enterica , Animais , Animais Selvagens , Doenças das Aves/epidemiologia , Salmonelose Animal/epidemiologia , Salmonella enterica/genética , Salmonella typhimurium , Sorogrupo , Estados Unidos
4.
Nature ; 480(7377): 376-8, 2011 Oct 26.
Artigo em Inglês | MEDLINE | ID: mdl-22031324

RESUMO

White-nose syndrome (WNS) has caused recent catastrophic declines among multiple species of bats in eastern North America. The disease's name derives from a visually apparent white growth of the newly discovered fungus Geomyces destructans on the skin (including the muzzle) of hibernating bats. Colonization of skin by this fungus is associated with characteristic cutaneous lesions that are the only consistent pathological finding related to WNS. However, the role of G. destructans in WNS remains controversial because evidence to implicate the fungus as the primary cause of this disease is lacking. The debate is fuelled, in part, by the assumption that fungal infections in mammals are most commonly associated with immune system dysfunction. Additionally, the recent discovery that G. destructans commonly colonizes the skin of bats of Europe, where no unusual bat mortality events have been reported, has generated further speculation that the fungus is an opportunistic pathogen and that other unidentified factors are the primary cause of WNS. Here we demonstrate that exposure of healthy little brown bats (Myotis lucifugus) to pure cultures of G. destructans causes WNS. Live G. destructans was subsequently cultured from diseased bats, successfully fulfilling established criteria for the determination of G. destructans as a primary pathogen. We also confirmed that WNS can be transmitted from infected bats to healthy bats through direct contact. Our results provide the first direct evidence that G. destructans is the causal agent of WNS and that the recent emergence of WNS in North America may represent translocation of the fungus to a region with a naive population of animals. Demonstration of causality is an instrumental step in elucidating the pathogenesis and epidemiology of WNS and in guiding management actions to preserve bat populations against the novel threat posed by this devastating infectious disease.


Assuntos
Ascomicetos/patogenicidade , Quirópteros/microbiologia , Micoses/veterinária , Nariz/microbiologia , Nariz/patologia , Animais , Quirópteros/anatomia & histologia , Europa (Continente)/epidemiologia , Micoses/microbiologia , Micoses/mortalidade , Micoses/transmissão , América do Norte/epidemiologia , Análise de Sobrevida , Síndrome , Asas de Animais/microbiologia , Asas de Animais/patologia
5.
BMC Vet Res ; 11: 95, 2015 Apr 15.
Artigo em Inglês | MEDLINE | ID: mdl-25889462

RESUMO

BACKGROUND: Fungal skin infections associated with Ophidiomyces ophiodiicola, a member of the Chrysosporium anamorph of Nannizziopsis vriesii (CANV) complex, have been linked to an increasing number of cases of snake fungal disease (SFD) in captive snakes around the world and in wild snake populations in eastern North America. The emergence of SFD in both captive and wild situations has led to an increased need for tools to better diagnose and study the disease. RESULTS: We developed two TaqMan real-time polymerase chain reaction (PCR) assays to rapidly detect O. ophiodiicola in clinical samples. One assay targets the internal transcribed spacer region (ITS) of the fungal genome while the other targets the more variable intergenic spacer region (IGS). The PCR assays were qualified using skin samples collected from 50 snakes for which O. ophiodiicola had been previously detected by culture, 20 snakes with gross skin lesions suggestive of SFD but which were culture-negative for O. ophiodiicola, and 16 snakes with no clinical signs of infection. Both assays performed equivalently and proved to be more sensitive than traditional culture methods, detecting O. ophiodiicola in 98% of the culture-positive samples and in 40% of the culture-negative snakes that had clinical signs of SFD. In addition, the assays did not cross-react with a panel of 28 fungal species that are closely related to O. ophiodiicola or that commonly occur on the skin of snakes. The assays did, however, indicate that some asymptomatic snakes (~6%) may harbor low levels of the fungus, and that PCR should be paired with histology when a definitive diagnosis is required. CONCLUSIONS: These assays represent the first published methods to detect O. ophiodiicola by real-time PCR. The ITS assay has great utility for assisting with SFD diagnoses whereas the IGS assay offers a valuable tool for research-based applications.


Assuntos
Chrysosporium/isolamento & purificação , Reação em Cadeia da Polimerase em Tempo Real/métodos , Serpentes/microbiologia , Animais , Sequência de Bases , Chrysosporium/genética , DNA Fúngico/genética , Sensibilidade e Especificidade
6.
Proc Natl Acad Sci U S A ; 109(18): 6999-7003, 2012 May 01.
Artigo em Inglês | MEDLINE | ID: mdl-22493237

RESUMO

White-nose syndrome (WNS) is an emerging disease of hibernating bats associated with cutaneous infection by the fungus Geomyces destructans (Gd), and responsible for devastating declines of bat populations in eastern North America. Affected bats appear emaciated and one hypothesis is that they spend too much time out of torpor during hibernation, depleting vital fat reserves required to survive the winter. The fungus has also been found at low levels on bats throughout Europe but without mass mortality. This finding suggests that Gd is either native to both continents but has been rendered more pathogenic in North America by mutation or environmental change, or that it recently arrived in North America as an invader from Europe. Thus, a causal link between Gd and mortality has not been established and the reason for its high pathogenicity in North America is unknown. Here we show that experimental inoculation with either North American or European isolates of Gd causes WNS and mortality in the North American bat, Myotis lucifugus. In contrast to control bats, individuals inoculated with either isolate of Gd developed cutaneous infections diagnostic of WNS, exhibited a progressive increase in the frequency of arousals from torpor during hibernation, and were emaciated after 3-4 mo. Our results demonstrate that altered torpor-arousal cycles underlie mortality from WNS and provide direct evidence that Gd is a novel pathogen to North America from Europe.


Assuntos
Ascomicetos/patogenicidade , Quirópteros/microbiologia , Dermatomicoses/veterinária , Nariz/microbiologia , Animais , Ascomicetos/isolamento & purificação , Quirópteros/fisiologia , Dermatomicoses/etiologia , Dermatomicoses/microbiologia , Dermatomicoses/fisiopatologia , Europa (Continente) , Hibernação , Masculino , América do Norte , Pele/microbiologia , Pele/patologia , Síndrome , Virulência
7.
BMC Physiol ; 14: 10, 2014 Dec 09.
Artigo em Inglês | MEDLINE | ID: mdl-25487871

RESUMO

BACKGROUND: The physiological effects of white-nose syndrome (WNS) in hibernating bats and ultimate causes of mortality from infection with Pseudogymnoascus (formerly Geomyces) destructans are not fully understood. Increased frequency of arousal from torpor described among hibernating bats with late-stage WNS is thought to accelerate depletion of fat reserves, but the physiological mechanisms that lead to these alterations in hibernation behavior have not been elucidated. We used the doubly labeled water (DLW) method and clinical chemistry to evaluate energy use, body composition changes, and blood chemistry perturbations in hibernating little brown bats (Myotis lucifugus) experimentally infected with P. destructans to better understand the physiological processes that underlie mortality from WNS. RESULTS: These data indicated that fat energy utilization, as demonstrated by changes in body composition, was two-fold higher for bats with WNS compared to negative controls. These differences were apparent in early stages of infection when torpor-arousal patterns were equivalent between infected and non-infected animals, suggesting that P. destructans has complex physiological impacts on its host prior to onset of clinical signs indicative of late-stage infections. Additionally, bats with mild to moderate skin lesions associated with early-stage WNS demonstrated a chronic respiratory acidosis characterized by significantly elevated dissolved carbon dioxide, acidemia, and elevated bicarbonate. Potassium concentrations were also significantly higher among infected bats, but sodium, chloride, and other hydration parameters were equivalent to controls. CONCLUSIONS: Integrating these novel findings on the physiological changes that occur in early-stage WNS with those previously documented in late-stage infections, we propose a multi-stage disease progression model that mechanistically describes the pathologic and physiologic effects underlying mortality of WNS in hibernating bats. This model identifies testable hypotheses for better understanding this disease, knowledge that will be critical for defining effective disease mitigation strategies aimed at reducing morbidity and mortality that results from WNS.


Assuntos
Quirópteros/fisiologia , Metabolismo Energético , Hibernação , Micoses/veterinária , Ruído/efeitos adversos , Estresse Fisiológico , Animais , Composição Corporal , Quirópteros/sangue , Quirópteros/microbiologia , Feminino , Humanos , Masculino , Micoses/microbiologia , Micoses/mortalidade
8.
Front Vet Sci ; 11: 1462280, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-39234178

RESUMO

There is an increasing need for robust wildlife health programs that provide surveillance and management for diseases in wildlife and wild aquatic populations to manage associated risks. This paper illustrates the value of a systematic method to enhancing wildlife health programs. The U.S. Geological Survey and Mahidol University, Faculty of Veterinary Science, Thailand National Wildlife Health Center formally twinned under the auspices of the World Organisation for Animal Health to enhance wildlife health capacity in Thailand and the Southeast Asia Region. We used a system-wide approach to holistically and interdependently enhance capacity. The project commenced with a wildlife health program needs assessment, and capacity enhancement focused on strengthening the general wildlife health surveillance network and improving wildlife health information management. Activities included partner surveys, interactive and didactic workshops, and individual personnel training. Topics included development of wildlife health information management systems, analysis of the current surveillance network, development of a Theory of Change for a strengthened surveillance network, planning workshops to create a wildlife health network, training on wildlife disease outbreak investigation and field sample collection, leading networks, and individual training on bioinformatics and laboratory techniques. Engagement of stakeholders at all levels, continuous communication throughout the project, use of both strategic planning tools and pedagogical methods, and using iterative and adaptive approaches, were key factors to the success of this project.

9.
Appl Environ Microbiol ; 79(4): 1293-301, 2013 Feb.
Artigo em Inglês | MEDLINE | ID: mdl-23241985

RESUMO

White-nose syndrome (WNS) is an emerging disease of hibernating bats caused by the recently described fungus Geomyces destructans. First isolated in 2008, the origins of this fungus in North America and its ability to persist in the environment remain undefined. To investigate the correlation between manifestation of WNS and distribution of G. destructans in the United States, we analyzed sediment samples collected from 55 bat hibernacula (caves and mines) both within and outside the known range of WNS using a newly developed real-time PCR assay. Geomyces destructans was detected in 17 of 21 sites within the known range of WNS at the time when the samples were collected; the fungus was not found in 28 sites beyond the known range of the disease at the time when environmental samples were collected. These data indicate that the distribution of G. destructans is correlated with disease in hibernating bats and support the hypothesis that the fungus is likely an exotic species in North America. Additionally, we examined whether G. destructans persists in infested bat hibernacula when bats are absent. Sediment samples were collected from 14 WNS-positive hibernacula, and the samples were screened for viable fungus by using a culture technique. Viable G. destructans was cultivated from 7 of the 14 sites sampled during late summer, when bats were no longer in hibernation, suggesting that the fungus can persist in the environment in the absence of bat hosts for long periods of time.


Assuntos
Ascomicetos/isolamento & purificação , Quirópteros/microbiologia , Micoses/veterinária , Animais , Ascomicetos/patogenicidade , DNA Fúngico/genética , DNA Fúngico/isolamento & purificação , Microbiologia Ambiental , Micoses/epidemiologia , Micoses/microbiologia , Reação em Cadeia da Polimerase em Tempo Real , Topografia Médica , Estados Unidos/epidemiologia
10.
Biol Lett ; 9(4): 20130177, 2013 Aug 23.
Artigo em Inglês | MEDLINE | ID: mdl-23720520

RESUMO

White-nose syndrome is devastating North American bat populations but we lack basic information on disease mechanisms. Altered blood physiology owing to epidermal invasion by the fungal pathogen Geomyces destructans (Gd) has been hypothesized as a cause of disrupted torpor patterns of affected hibernating bats, leading to mortality. Here, we present data on blood electrolyte concentration, haematology and acid-base balance of hibernating little brown bats, Myotis lucifugus, following experimental inoculation with Gd. Compared with controls, infected bats showed electrolyte depletion (i.e. lower plasma sodium), changes in haematology (i.e. increased haematocrit and decreased glucose) and disrupted acid-base balance (i.e. lower CO2 partial pressure and bicarbonate). These findings indicate hypotonic dehydration, hypovolaemia and metabolic acidosis. We propose a mechanistic model linking tissue damage to altered homeostasis and morbidity/mortality.


Assuntos
Equilíbrio Ácido-Base , Ascomicetos/patogenicidade , Quirópteros , Micoses/fisiopatologia , Desequilíbrio Hidroeletrolítico/fisiopatologia , Asas de Animais/patologia , Animais , Ascomicetos/fisiologia , Glicemia/análise , Quirópteros/sangue , Desidratação/microbiologia , Desidratação/fisiopatologia , Hematócrito , Hipovolemia/microbiologia , Hipovolemia/fisiopatologia , Manitoba , Micoses/microbiologia , Inanição/microbiologia , Inanição/fisiopatologia , Desequilíbrio Hidroeletrolítico/microbiologia , Asas de Animais/microbiologia
11.
Mycologia ; 105(2): 253-9, 2013.
Artigo em Inglês | MEDLINE | ID: mdl-22962349

RESUMO

The fungus Geomyces destructans is the causative agent of white-nose syndrome (WNS), a disease that has killed millions of North American hibernating bats. We describe a real-time TaqMan PCR test that detects DNA from G. destructans by targeting a portion of the multicopy intergenic spacer region of the rRNA gene complex. The test is highly sensitive, consistently detecting as little as 3.3 fg genomic DNA from G. destructans. The real-time PCR test specifically amplified genomic DNA from G. destructans but did not amplify target sequence from 54 closely related fungal isolates (including 43 Geomyces spp. isolates) associated with bats. The test was qualified further by analyzing DNA extracted from 91 bat wing skin samples, and PCR results matched histopathology findings. These data indicate the real-time TaqMan PCR method described herein is a sensitive, specific and rapid test to detect DNA from G. destructans and provides a valuable tool for WNS diagnostics and research.


Assuntos
Ascomicetos/isolamento & purificação , Quirópteros/microbiologia , Micoses/veterinária , Reação em Cadeia da Polimerase em Tempo Real/veterinária , Animais , Ascomicetos/classificação , Ascomicetos/genética , DNA Fúngico/química , DNA Fúngico/genética , DNA Intergênico , DNA Espaçador Ribossômico/química , DNA Espaçador Ribossômico/genética , Micoses/diagnóstico , Micoses/microbiologia , Filogenia , Sensibilidade e Especificidade , Pele/microbiologia , Especificidade da Espécie , Fatores de Tempo , Estados Unidos
12.
Mycologia ; 105(2): 237-52, 2013.
Artigo em Inglês | MEDLINE | ID: mdl-23074174

RESUMO

The recent emergence of white-nose syndrome (WNS), a fungal disease causing unprecedented mortality among hibernating bats of eastern North America, has revealed a knowledge gap regarding fungal communities associated with bats and their hibernacula. We used culture-based techniques to investigate the diversity of fungi in soil samples collected from 24 bat hibernacula in the eastern United States. Ribosomal RNA regions (internal transcribed spacer and partial intergenic spacer) were sequenced to preliminarily characterize isolates. Geomyces species were one of the most abundant and diverse groups cultured, representing approximately 33% of all isolates. Geomyces destructans was isolated from soil samples from three hibernacula in states where WNS is known to occur, and many of the other cultured Geomyces isolates likely represent undescribed taxa. Further characterization of the diversity of fungi that occur in hibernacula both will facilitate an improved understanding of the ecology of G. destructans within this complex fungal community and provide an opportunity to identify characteristics that differentiate G. destructans from non-pathogenic relatives.


Assuntos
Quirópteros/microbiologia , Fungos/isolamento & purificação , Micoses/veterinária , Microbiologia do Solo , Animais , Ascomicetos/classificação , Ascomicetos/genética , Ascomicetos/isolamento & purificação , Sequência de Bases , Basidiomycota/classificação , Basidiomycota/genética , Basidiomycota/isolamento & purificação , Quirópteros/fisiologia , DNA Fúngico/química , DNA Fúngico/genética , DNA Espaçador Ribossômico/química , DNA Espaçador Ribossômico/genética , Fungos/classificação , Fungos/genética , Hibernação , Dados de Sequência Molecular , Micoses/microbiologia , Filogenia , Análise de Sequência de DNA/veterinária , Estados Unidos
13.
Virology ; 586: 122-129, 2023 09.
Artigo em Inglês | MEDLINE | ID: mdl-37542819

RESUMO

Severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) is believed to have a zoonotic origin with bats suspected as a natural host. In this work, we individually express the ACE2 of seven bat species including, little brown, great roundleaf, Pearson's horseshoe, greater horseshoe, Brazilian free-tailed, Egyptian rousette, and Chinese rufous horseshoe in DF1 cells and determine their ability to support attachment and replication of SARS-CoV-2 viruses. We demonstrate that the ACE2 receptor of all seven species made DF1 cells permissible to SARS-CoV-2. The level of virus replication differed between bat species and variants tested. The Wuhan lineage SARS-CoV-2 virus replicated to higher titers than either variant virus tested. All viruses tested grew to higher titers in cells expressing the human ACE2 gene compared to a bat ACE2. This study provides a practical in vitromethod for further testing of animal species for potential susceptibility to current and emerging SARS-CoV-2 viruses.


Assuntos
COVID-19 , Quirópteros , Animais , Humanos , SARS-CoV-2/genética , Enzima de Conversão de Angiotensina 2/genética , Receptores Virais/genética , Internalização do Vírus , Glicoproteína da Espícula de Coronavírus/genética
14.
Sci Rep ; 13(1): 4615, 2023 03 21.
Artigo em Inglês | MEDLINE | ID: mdl-36944682

RESUMO

Pathogens with persistent environmental stages can have devastating effects on wildlife communities. White-nose syndrome (WNS), caused by the fungus Pseudogymnoascus destructans, has caused widespread declines in bat populations of North America. In 2009, during the early stages of the WNS investigation and before molecular techniques had been developed to readily detect P. destructans in environmental samples, we initiated this study to assess whether P. destructans can persist in the hibernaculum environment in the absence of its conclusive bat host and cause infections in naive bats. We transferred little brown bats (Myotis lucifugus) from an unaffected winter colony in northwest Wisconsin to two P. destructans contaminated hibernacula in Vermont where native bats had been excluded. Infection with P. destructans was apparent on some bats within 8 weeks following the introduction of unexposed bats to these environments, and mortality from WNS was confirmed by histopathology at both sites 14 weeks following introduction. These results indicate that environmental exposure to P. destructans is sufficient to cause the infection and mortality associated with WNS in naive bats, which increases the probability of winter colony extirpation and complicates conservation efforts.


Assuntos
Ascomicetos , Quirópteros , Hibernação , Animais , Quirópteros/microbiologia , Animais Selvagens , Síndrome
15.
Appl Environ Microbiol ; 78(20): 7290-8, 2012 Oct.
Artigo em Inglês | MEDLINE | ID: mdl-22885752

RESUMO

Salmonella enterica subsp. enterica serovar Typhimurium is responsible for the majority of salmonellosis cases worldwide. This Salmonella serovar is also responsible for die-offs in songbird populations. In 2009, there was an S. Typhimurium epizootic reported in pine siskins in the eastern United States. At the time, there was also a human outbreak with this serovar that was associated with contaminated peanuts. As peanuts are also used in wild-bird food, it was hypothesized that the pine siskin epizootic was related to this human outbreak. A comparison of songbird and human S. Typhimurium pulsed-field gel electrophoresis (PFGE) patterns revealed that the epizootic was attributed not to the peanut-associated strain but, rather, to a songbird strain first characterized from an American goldfinch in 1998. This same S. Typhimurium strain (PFGE type A3) was also identified in the PulseNet USA database, accounting for 137 of 77,941 total S. Typhimurium PFGE entries. A second molecular typing method, multiple-locus variable-number tandem-repeat analysis (MLVA), confirmed that the same strain was responsible for the pine siskin epizootic in the eastern United States but was distinct from a genetically related strain isolated from pine siskins in Minnesota. The pine siskin A3 strain was first encountered in May 2008 in an American goldfinch and later in a northern cardinal at the start of the pine siskin epizootic. MLVA also confirmed the clonal nature of S. Typhimurium in songbirds and established that the pine siskin epizootic strain was unique to the finch family. For 2009, the distribution of PFGE type A3 in passerines and humans mirrored the highest population density of pine siskins for the East Coast.


Assuntos
Doenças das Aves/epidemiologia , Doenças das Aves/microbiologia , Surtos de Doenças , Salmonelose Animal/epidemiologia , Salmonelose Animal/microbiologia , Salmonella typhimurium/isolamento & purificação , Aves Canoras/microbiologia , Animais , Análise por Conglomerados , DNA Bacteriano/genética , Eletroforese em Gel de Campo Pulsado , Genótipo , Repetições Minissatélites , Epidemiologia Molecular , Tipagem Molecular , Salmonella typhimurium/classificação , Salmonella typhimurium/genética , Estados Unidos/epidemiologia
16.
G3 (Bethesda) ; 12(5)2022 05 06.
Artigo em Inglês | MEDLINE | ID: mdl-35377435

RESUMO

Birds are highly susceptible to aspergillosis, which can manifest as a primary infection in both domestic and wild birds. Aspergillosis in wild birds causes mortalities ranging in scale from single animals to large-scale epizootic events. However, pathogenicity factors associated with aspergillosis in wild birds have not been examined. Specifically, it is unknown whether wild bird-infecting strains are host-adapted (i.e. phylogenetically related). Similarly, it is unknown whether epizootics are driven by contact with clonal strains that possess unique pathogenic or virulence properties, or by distinct and equally pathogenic strains. Here, we use a diverse collection of Aspergillus fumigatus isolates taken from aspergillosis-associated avian carcasses, representing 24 bird species from a wide geographic range, and representing individual bird mortalities as well as epizootic events. These isolates were sequenced and analyzed along with 130 phylogenetically diverse human clinical isolates to investigate the genetic diversity and phylogenetic placement of avian-associated A. fumigatus, the geographic and host distribution of avian isolates, evidence for clonal outbreaks among wild birds, and the frequency of azole resistance in avian isolates. We found that avian isolates were phylogenetically diverse, with no clear distinction from human clinical isolates, and no sign of host or geographic specificity. Avian isolates from the same epizootic events were diverse and phylogenetically distant, suggesting that avian aspergillosis is not contagious among wild birds and that outbreaks are likely driven by environmental spore loads or host comorbidities. Finally, all avian isolates were susceptible to Voriconazole and none contained the canonical azole resistance gene variants.


Assuntos
Aspergilose , Aspergillus fumigatus , Animais , Antifúngicos/farmacologia , Aspergilose/epidemiologia , Aspergilose/veterinária , Aspergillus fumigatus/genética , Azóis , Aves , Farmacorresistência Fúngica/genética , Proteínas Fúngicas/genética , Genótipo , Especificidade de Hospedeiro , Testes de Sensibilidade Microbiana , Filogenia
17.
G3 (Bethesda) ; 12(11)2022 11 04.
Artigo em Inglês | MEDLINE | ID: mdl-36179219

RESUMO

The fungal kingdom represents an extraordinary diversity of organisms with profound impacts across animal, plant, and ecosystem health. Fungi simultaneously support life, by forming beneficial symbioses with plants and producing life-saving medicines, and bring death, by causing devastating diseases in humans, plants, and animals. With climate change, increased antimicrobial resistance, global trade, environmental degradation, and novel viruses altering the impact of fungi on health and disease, developing new approaches is now more crucial than ever to combat the threats posed by fungi and to harness their extraordinary potential for applications in human health, food supply, and environmental remediation. To address this aim, the Canadian Institute for Advanced Research (CIFAR) and the Burroughs Wellcome Fund convened a workshop to unite leading experts on fungal biology from academia and industry to strategize innovative solutions to global challenges and fungal threats. This report provides recommendations to accelerate fungal research and highlights the major research advances and ideas discussed at the meeting pertaining to 5 major topics: (1) Connections between fungi and climate change and ways to avert climate catastrophe; (2) Fungal threats to humans and ways to mitigate them; (3) Fungal threats to agriculture and food security and approaches to ensure a robust global food supply; (4) Fungal threats to animals and approaches to avoid species collapse and extinction; and (5) Opportunities presented by the fungal kingdom, including novel medicines and enzymes.


Assuntos
Micoses , Animais , Humanos , Micoses/microbiologia , Fungos , Ecossistema , Canadá , Plantas
18.
Appl Environ Microbiol ; 77(21): 7815-22, 2011 Nov.
Artigo em Inglês | MEDLINE | ID: mdl-21908624

RESUMO

Botulinum neurotoxin serotype E (BoNT/E) outbreaks in the Great Lakes region cause large annual avian mortality events, with an estimated 17,000 bird deaths reported in 2007 alone. During an outbreak investigation, blood collected from bird carcasses is tested for the presence of BoNT/E using the mouse lethality assay. While sensitive, this method is labor-intensive and low throughput and can take up to 7 days to complete. We developed a rapid and sensitive in vitro assay, the BoTest Matrix E assay, that combines immunoprecipitation with high-affinity endopeptidase activity detection by Förster resonance energy transfer (FRET) to rapidly quantify BoNT/E activity in avian blood with detection limits comparable to those of the mouse lethality assay. On the basis of the analysis of archived blood samples (n = 87) collected from bird carcasses during avian mortality investigations, BoTest Matrix E detected picomolar quantities of BoNT/E following a 2-h incubation and femtomolar quantities of BoNT/E following extended incubation (24 h) with 100% diagnostic specificity and 91% diagnostic sensitivity.


Assuntos
Doenças das Aves/diagnóstico , Análise Química do Sangue/métodos , Toxinas Botulínicas/sangue , Botulismo/veterinária , Técnicas de Química Analítica/métodos , Animais , Aves , Botulismo/diagnóstico , Transferência Ressonante de Energia de Fluorescência/métodos , Great Lakes Region , Imunoprecipitação/métodos , Sensibilidade e Especificidade , Fatores de Tempo
19.
Mycologia ; 103(2): 241-6, 2011.
Artigo em Inglês | MEDLINE | ID: mdl-20952799

RESUMO

White-nose syndrome (WNS) is an emerging disease causing unprecedented morbidity and mortality among bats in eastern North America. The disease is characterized by cutaneous infection of hibernating bats by the psychrophilic fungus Geomyces destructans. Detection of G. destructans in environments occupied by bats will be critical for WNS surveillance, management and characterization of the fungal lifecycle. We initiated an rRNA gene region-based molecular survey to characterize the distribution of G. destructans in soil samples collected from bat hibernacula in the eastern United States with an existing PCR test. Although this test did not specifically detect G. destructans in soil samples based on a presence/absence metric, it did favor amplification of DNA from putative Geomyces species. Cloning and sequencing of PCR products amplified from 24 soil samples revealed 74 unique sequence variants representing 12 clades. Clones with exact sequence matches to G. destructans were identified in three of 19 soil samples from hibernacula in states where WNS is known to occur. Geomyces destructans was not identified in an additional five samples collected outside the region where WNS has been documented. This study highlights the diversity of putative Geomyces spp. in soil from bat hibernacula and indicates that further research is needed to better define the taxonomy of this genus and to develop enhanced diagnostic tests for rapid and specific detection of G. destructans in environmental samples.


Assuntos
Ascomicetos/classificação , Ascomicetos/isolamento & purificação , Quirópteros/microbiologia , DNA Fúngico/genética , Micoses/veterinária , Microbiologia do Solo , Animais , Ascomicetos/genética , Quirópteros/fisiologia , Hibernação , Dados de Sequência Molecular , Micoses/microbiologia , Filogenia , Estados Unidos
20.
BMC Biol ; 8: 135, 2010 Nov 11.
Artigo em Inglês | MEDLINE | ID: mdl-21070683

RESUMO

White-nose syndrome (WNS) is causing unprecedented declines in several species of North American bats. The characteristic lesions of WNS are caused by the fungus Geomyces destructans, which erodes and replaces the living skin of bats while they hibernate. It is unknown how this infection kills the bats. We review here the unique physiological importance of wings to hibernating bats in relation to the damage caused by G. destructans and propose that mortality is caused by catastrophic disruption of wing-dependent physiological functions. Mechanisms of disease associated with G. destructans seem specific to hibernating bats and are most analogous to disease caused by chytrid fungus in amphibians.


Assuntos
Ascomicetos , Quirópteros/microbiologia , Hibernação/fisiologia , Homeostase/fisiologia , Micoses/patologia , Micoses/veterinária , Asas de Animais/fisiopatologia , Animais , Regulação da Temperatura Corporal/fisiologia , Desidratação/fisiopatologia , Metabolismo Energético/fisiologia , Fluxo Sanguíneo Regional/fisiologia , Perda Insensível de Água/fisiologia , Asas de Animais/irrigação sanguínea , Asas de Animais/microbiologia
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