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1.
Annu Rev Microbiol ; 75: 673-693, 2021 10 08.
Artigo em Inglês | MEDLINE | ID: mdl-34351790

RESUMO

Ancient enzootic associations between wildlife and their infections allow evolution to innovate mechanisms of pathogenicity that are counterbalanced by host responses. However, erosion of barriers to pathogen dispersal by globalization leads to the infection of hosts that have not evolved effective resistance and the emergence of highly virulent infections. Global amphibian declines driven by the rise of chytrid fungi and chytridiomycosis are emblematic of emerging infections. Here, we review how modern biological methods have been used to understand the adaptations and counteradaptations that these fungi and their amphibian hosts have evolved. We explore the interplay of biotic and abiotic factors that modify the virulence of these infections and dissect the complexity of this disease system. We highlight progress that has led to insights into how we might in the future lessen the impact of these emerging infections.


Assuntos
Quitridiomicetos , Micoses , Anfíbios/microbiologia , Animais , Micoses/microbiologia , Micoses/veterinária , Virulência
2.
Fungal Genet Biol ; 170: 103858, 2024 02.
Artigo em Inglês | MEDLINE | ID: mdl-38101696

RESUMO

The chytrid fungus Batrachochytrium dendrobatidis (Bd) was discovered in 1998 as the cause of chytridiomycosis, an emerging infectious disease causing mass declines in amphibian populations worldwide. The rapid population declines of the 1970s-1990s were likely caused by the spread of a highly virulent lineage belonging to the Bd-GPL clade that was introduced to naïve susceptible populations. Multiple genetically distinct and regional lineages of Bd have since been isolated and sequenced, greatly expanding the known biological diversity within this fungal pathogen. To date, most Bd research has been restricted to the limited number of samples that could be isolated using culturing techniques, potentially causing a selection bias for strains that can grow on media and missing other unculturable or fastidious strains that are also present on amphibians. We thus attempted to characterize potentially non-culturable genetic lineages of Bd from distinct amphibian taxa using sequence capture technology on DNA extracted from host tissue and swabs. We focused our efforts on host taxa from two different regions that likely harbored distinct Bd clades: (1) wild-caught leopard frogs (Rana) from North America, and (2) a Japanese Giant Salamander (Andrias japonicus) at the Smithsonian Institution's National Zoological Park that exhibited signs of disease and tested positive for Bd using qPCR, but multiple attempts failed to isolate and culture the strain for physiological and genetic characterization. We successfully enriched for and sequenced thousands of fungal genes from both host clades, and Bd load was positively associated with number of recovered Bd sequences. Phylogenetic reconstruction placed all the Rana-derived strains in the Bd-GPL clade. In contrast, the A. japonicus strain fell within the Bd-Asia3 clade, expanding the range of this clade and generating additional genomic data to confirm its placement. The retrieved ITS locus matched public barcoding data from wild A. japonicus and Bd infections found on other amphibians in India and China, suggesting that this uncultured clade is widespread across Asia. Our study underscores the importance of recognizing and characterizing the hidden diversity of fastidious strains in order to reconstruct the spatiotemporal and evolutionary history of Bd. The success of the sequence capture approach highlights the utility of directly sequencing pathogen DNA from host tissue to characterize cryptic diversity that is missed by culture-reliant approaches.


Assuntos
Quitridiomicetos , Animais , Filogenia , Quitridiomicetos/genética , Anfíbios/genética , Anfíbios/microbiologia , Evolução Biológica , DNA
3.
Ecol Lett ; 26(2): 313-322, 2023 Feb.
Artigo em Inglês | MEDLINE | ID: mdl-36592335

RESUMO

The sixth mass extinction is a consequence of complex interplay between multiple stressors with negative impact on biodiversity. We here examine the interaction between two globally widespread anthropogenic drivers of amphibian declines: the fungal disease chytridiomycosis and antifungal use in agriculture. Field monitoring of 26 amphibian ponds in an agricultural landscape shows widespread occurrence of triazole fungicides in the water column throughout the amphibian breeding season, together with a negative correlation between early season application of epoxiconazole and the prevalence of chytrid infections in aquatic newts. While triazole concentrations in the ponds remained below those that inhibit growth of Batrachochytrium dendrobatidis, they bioaccumulated in the newts' skin up to tenfold, resulting in cutaneous growth-suppressing concentrations. As such, a concentration of epoxiconazole, 10 times below that needed to inhibit fungal growth, prevented chytrid infection in anuran tadpoles. The widespread presence of triazoles may thus alter chytrid dynamics in agricultural landscapes.


Assuntos
Quitridiomicetos , Micoses , Praguicidas , Animais , Melhoramento Vegetal , Micoses/epidemiologia , Micoses/veterinária , Anfíbios/microbiologia , Triazóis/farmacologia
4.
Emerg Infect Dis ; 29(10): 1-7, 2023 10.
Artigo em Inglês | MEDLINE | ID: mdl-37735750

RESUMO

The world's reptiles and amphibians are experiencing dramatic and ongoing losses in biodiversity, changes that can have substantial effects on ecosystems and human health. In 2022, the first Global Amphibian and Reptile Disease Conference was held, using One Health as a guiding principle. The conference showcased knowledge on numerous reptile and amphibian pathogens from several standpoints, including epidemiology, host immune defenses, wild population effects, and mitigation. The conference also provided field experts the opportunity to discuss and identify the most urgent herpetofaunal disease research directions necessary to address current and future threats to reptile and amphibian biodiversity.


Assuntos
Ecossistema , Saúde Única , Humanos , Animais , Anfíbios , Répteis , Biodiversidade
5.
Proc Biol Sci ; 290(2007): 20230510, 2023 09 27.
Artigo em Inglês | MEDLINE | ID: mdl-37752840

RESUMO

Understanding wildlife responses to novel threats is vital in counteracting biodiversity loss. The emerging pathogen Batrachochytrium salamandrivorans (Bsal) causes dramatic declines in European salamander populations, and is considered an imminent threat to global amphibian biodiversity. However, real-life disease outcomes remain largely uncharacterized. We performed a multidisciplinary assessment of the longer-term impacts of Bsal on highly susceptible fire salamander (Salamandra salamandra) populations, by comparing four of the earliest known outbreak sites to uninfected sites. Based on large-scale monitoring efforts, we found population persistence in strongly reduced abundances to over a decade after Bsal invasion, but also the extinction of an initially small-sized population. In turn, we found that host responses varied, and Bsal detection remained low, within surviving populations. Demographic analyses indicated an ongoing scarcity of large reproductive adults with potential for recruitment failure, while spatial comparisons indicated a population remnant persisting within aberrant habitat. Additionally, we detected no early signs of severe genetic deterioration, yet nor of increased host resistance. Beyond offering additional context to Bsal-driven salamander declines, results highlight how the impacts of emerging hypervirulent pathogens can be unpredictable and vary across different levels of biological complexity, and how limited pathogen detectability after population declines may complicate surveillance efforts.


Assuntos
Quitridiomicetos , Urodelos , Animais , Quitridiomicetos/fisiologia , Batrachochytrium , Anfíbios
6.
Nature ; 544(7650): 353-356, 2017 04 19.
Artigo em Inglês | MEDLINE | ID: mdl-28425998

RESUMO

The recent arrival of Batrachochytrium salamandrivorans in Europe was followed by rapid expansion of its geographical distribution and host range, confirming the unprecedented threat that this chytrid fungus poses to western Palaearctic amphibians. Mitigating this hazard requires a thorough understanding of the pathogen's disease ecology that is driving the extinction process. Here, we monitored infection, disease and host population dynamics in a Belgian fire salamander (Salamandra salamandra) population for two years immediately after the first signs of infection. We show that arrival of this chytrid is associated with rapid population collapse without any sign of recovery, largely due to lack of increased resistance in the surviving salamanders and a demographic shift that prevents compensation for mortality. The pathogen adopts a dual transmission strategy, with environmentally resistant non-motile spores in addition to the motile spores identified in its sister species B. dendrobatidis. The fungus retains its virulence not only in water and soil, but also in anurans and less susceptible urodelan species that function as infection reservoirs. The combined characteristics of the disease ecology suggest that further expansion of this fungus will behave as a 'perfect storm' that is able to rapidly extirpate highly susceptible salamander populations across Europe.


Assuntos
Quitridiomicetos/patogenicidade , Urodelos/microbiologia , Animais , Anuros/microbiologia , Bélgica , Quitridiomicetos/imunologia , Quitridiomicetos/isolamento & purificação , Quitridiomicetos/fisiologia , Reservatórios de Doenças/microbiologia , Monitoramento Ambiental , Feminino , Espécies Introduzidas , Masculino , Dinâmica Populacional , Maturidade Sexual , Esporos Fúngicos/crescimento & desenvolvimento , Urodelos/imunologia
7.
Proc Natl Acad Sci U S A ; 116(41): 20382-20387, 2019 10 08.
Artigo em Inglês | MEDLINE | ID: mdl-31548391

RESUMO

Biodiversity loss is one major outcome of human-mediated ecosystem disturbance. One way that humans have triggered wildlife declines is by transporting disease-causing agents to remote areas of the world. Amphibians have been hit particularly hard by disease due in part to a globally distributed pathogenic chytrid fungus (Batrachochytrium dendrobatidis [Bd]). Prior research has revealed important insights into the biology and distribution of Bd; however, there are still many outstanding questions in this system. Although we know that there are multiple divergent lineages of Bd that differ in pathogenicity, we know little about how these lineages are distributed around the world and where lineages may be coming into contact. Here, we implement a custom genotyping method for a global set of Bd samples. This method is optimized to amplify and sequence degraded DNA from noninvasive skin swab samples. We describe a divergent lineage of Bd, which we call BdASIA3, that appears to be widespread in Southeast Asia. This lineage co-occurs with the global panzootic lineage (BdGPL) in multiple localities. Additionally, we shed light on the global distribution of BdGPL and highlight the expanded range of another lineage, BdCAPE. Finally, we argue that more monitoring needs to take place where Bd lineages are coming into contact and where we know little about Bd lineage diversity. Monitoring need not use expensive or difficult field techniques but can use archived swab samples to further explore the history-and predict the future impacts-of this devastating pathogen.


Assuntos
Anfíbios/microbiologia , Quitridiomicetos , Micoses/veterinária , Animais , Quitridiomicetos/genética , Saúde Global , Micoses/epidemiologia , Micoses/microbiologia
8.
Infect Immun ; 89(12): e0048621, 2021 11 16.
Artigo em Inglês | MEDLINE | ID: mdl-34543117

RESUMO

Brachyspira hyodysenteriae is commonly associated with swine dysentery (SD), a disease that has an economic impact on the swine industry. B. hyodysenteriae infection results in changes to the colonic mucus niche with massive mucus induction, which substantially increases the number of B. hyodysenteriae binding sites in the mucus. We previously determined that a B. hyodysenteriae strain binds to colon mucins in a manner that differs between pigs and mucin types. Here, we investigated if adhesion to mucins is a trait observed across a broad set of B. hyodysenteriae strains and isolates and furthermore at a genus level (B. innocens, B. pilosicoli, B. murdochii, B. hampsonii, and B. intermedia strains). Our results show that binding to mucins appears to be specific to B. hyodysenteriae, and within this species, the binding ability to mucins varies between strains/isolates, increases for mucins from pigs with SD, and is associated with sialic acid epitopes on mucins. Infection with B. hyodysenteriae strain 8dII results in mucin glycosylation changes in the colon, including a shift in sialic acid-containing structures. Thus, we demonstrate through hierarchical cluster analysis and orthogonal projections to latent structures discriminant analysis (OPLS-DA) models of the relative abundances of sialic acid-containing glycans that sialic acid-containing structures in the mucin O-glycome are good predictors of B. hyodysenteriae strain 8dII infection in pigs. The results emphasize the role of sialic acids in governing B. hyodysenteriae interactions with its host, which may open perspectives for therapeutic strategies.


Assuntos
Brachyspira hyodysenteriae , Brachyspira/classificação , Infecções por Bactérias Gram-Negativas/veterinária , Interações Hospedeiro-Patógeno , Mucinas/metabolismo , Doenças dos Suínos/metabolismo , Doenças dos Suínos/microbiologia , Animais , Aderência Bacteriana , Colo/metabolismo , Colo/microbiologia , Suscetibilidade a Doenças , Glicosilação , Ácido N-Acetilneuramínico/metabolismo , Especificidade da Espécie , Suínos
9.
Ecol Lett ; 24(1): 27-37, 2021 Jan.
Artigo em Inglês | MEDLINE | ID: mdl-33022129

RESUMO

While epizootics increasingly affect wildlife, it remains poorly understood how the environment shapes most host-pathogen systems. Here, we employ a three-step framework to study microclimate influence on ectotherm host thermal behaviour, focusing on amphibian chytridiomycosis in fire salamanders (Salamandra salamandra) infected with the fungal pathogen Batrachochytrium salamandrivorans (Bsal). Laboratory trials reveal that innate variation in thermal preference, rather than behavioural fever, can inhibit infection and facilitate salamander recovery under humidity-saturated conditions. Yet, a 3-year field study and a mesocosm experiment close to the invasive Bsal range show that microclimate constraints suppress host thermal behaviour favourable to disease control. A final mechanistic model, that estimates range-wide, year-round host body temperature relative to microclimate, suggests that these constraints are rule rather than exception. Our results demonstrate how innate host defences against epizootics may remain constrained in the wild, which predisposes to range-wide disease outbreaks and population declines.


Assuntos
Quitridiomicetos , Micoses , Anfíbios , Animais , Microclima , Micoses/prevenção & controle , Micoses/veterinária , Urodelos
10.
Emerg Infect Dis ; 27(10): 2686-2690, 2021 10.
Artigo em Inglês | MEDLINE | ID: mdl-34545798

RESUMO

Toxin-producing Corynebacterium ulcerans, a causative agent of diphtheria in humans, was isolated from 53 hedgehogs in Belgium during the spring of 2020. Isolates showed low levels of acquired antimicrobial drug resistance. Strain diversity suggests emergence from an endemic situation. These findings stress the need for raising public awareness and improved wildlife disease surveillance.


Assuntos
Infecções por Corynebacterium , Ouriços , Animais , Corynebacterium/genética , Infecções por Corynebacterium/diagnóstico , Infecções por Corynebacterium/epidemiologia , Toxina Diftérica , Humanos
11.
J Virol ; 94(8)2020 03 31.
Artigo em Inglês | MEDLINE | ID: mdl-31996426

RESUMO

ß-Defensins protect the respiratory tract against the myriad of microbial pathogens entering the airways with each breath. However, this potentially hostile environment is known to serve as a portal of entry for herpesviruses. The lack of suitable respiratory model systems has precluded understanding of how herpesvirus virions overcome the abundant mucosal ß-defensins during host invasion. We demonstrate how a central alphaherpesvirus, equine herpesvirus type 1 (EHV1), actually exploits ß-defensins to invade its host and initiate viral spread. The equine ß-defensins (eBDs) eBD1, -2, and -3 were produced and secreted along the upper respiratory tract. Despite the marked antimicrobial action of eBD2 and -3 against many bacterial and viral pathogens, EHV1 virions were resistant to eBDs through the action of the viral glycoprotein M envelope protein. Pretreatment of EHV1 virions with eBD2 and -3 increased the subsequent infection of rabbit kidney (RK13) cells, which was dependent on viral N-linked glycans. eBD2 and -3 also caused the aggregation of EHV1 virions on the cell surface of RK13 cells. Pretreatment of primary equine respiratory epithelial cells (EREC) with eBD1, -2, and -3 resulted in increased EHV1 virion binding to and infection of these cells. EHV1-infected EREC, in turn, showed an increased production of eBD2 and -3 compared to that seen in mock- and influenza virus-infected EREC. In addition, these eBDs attracted leukocytes, which are essential for EHV1 dissemination and which serve as latent infection reservoirs. These novel mechanisms provide new insights into herpesvirus respiratory tract infection and pathogenesis.IMPORTANCE How herpesviruses circumvent mucosal defenses to promote infection of new hosts through the respiratory tract remains unknown due to a lack of host-specific model systems. We used the alphaherpesvirus equine herpesvirus type 1 (EHV1) and equine respiratory tissues to decipher this key event in general alphaherpesvirus pathogenesis. In contrast to several respiratory viruses and bacteria, EHV1 resisted potent antimicrobial equine ß-defensins (eBDs) eBD2 and eBD3 by the action of glycoprotein M. Instead, eBD2 and -3 facilitated EHV1 particle aggregation and infection of rabbit kidney (RK13) cells. In addition, virion binding to and subsequent infection of respiratory epithelial cells were increased upon preincubation of these cells with eBD1, -2, and -3. Infected cells synthesized eBD2 and -3, promoting further host cell invasion by EHV1. Finally, eBD1, -2, and -3 recruited leukocytes, which are well-known EHV1 dissemination and latency vessels. The exploitation of host innate defenses by herpesviruses during the early phase of host colonization indicates that highly specialized strategies have developed during host-pathogen coevolution.


Assuntos
Alphaherpesvirinae/fisiologia , Anti-Infecciosos/farmacologia , Infecções Respiratórias/imunologia , Infecções Respiratórias/virologia , beta-Defensinas/farmacologia , Animais , Anti-Infecciosos/efeitos adversos , Linhagem Celular , Células Epiteliais/virologia , Infecções por Herpesviridae/virologia , Herpesvirus Equídeo 1 , Doenças dos Cavalos/virologia , Cavalos , Interações Hospedeiro-Patógeno/fisiologia , Evasão da Resposta Imune , Coelhos , Infecções Respiratórias/tratamento farmacológico , Proteínas do Envelope Viral , beta-Defensinas/efeitos adversos
12.
Mol Phylogenet Evol ; 155: 106967, 2021 02.
Artigo em Inglês | MEDLINE | ID: mdl-33031928

RESUMO

Hybridization can leave genealogical signatures in an organism's genome, originating from the parental lineages and persisting over time. This potentially confounds phylogenetic inference methods that aim to represent evolution as a strictly bifurcating tree. We apply a phylotranscriptomic approach to study the evolutionary history of, and test for inter-lineage introgression in the Salamandridae, a Holarctic salamanders group of interest in studies of toxicity and aposematism, courtship behavior, and molecular evolution. Although the relationships between the 21 currently recognized salamandrid genera have been the subject of numerous molecular phylogenetic studies, some branches have remained controversial and sometimes affected by discordances between mitochondrial vs. nuclear trees. To resolve the phylogeny of this family, and understand the source of mito-nuclear discordance, we generated new transcriptomic (RNAseq) data for 20 salamandrids and used these along with published data, including 28 mitochondrial genomes, to obtain a comprehensive nuclear and mitochondrial perspective on salamandrid evolution. Our final phylotranscriptomic data set included 5455 gene alignments for 40 species representing 17 of the 21 salamandrid genera. Using concatenation and species-tree phylogenetic methods, we find (1) Salamandrina sister to the clade of the "True Salamanders" (consisting of Chioglossa, Mertensiella, Lyciasalamandra, and Salamandra), (2) Ichthyosaura sister to the Near Eastern genera Neurergus and Ommatotriton, (3) Triturus sister to Lissotriton, and (4) Cynops paraphyletic with respect to Paramesotriton and Pachytriton. Combining introgression tests and phylogenetic networks, we find evidence for introgression among taxa within the clades of "Modern Asian Newts" and "Modern European Newts". However, we could not unambiguously identify the number, position, and direction of introgressive events. Combining evidence from nuclear gene analysis with the observed mito-nuclear phylogenetic discordances, we hypothesize a scenario with hybridization and mitochondrial capture among ancestral lineages of (1) Lissotriton into Ichthyosaura and (2) Triturus into Calotriton, plus introgression of nuclear genes from Triturus into Lissotriton. Furthermore, both mitochondrial capture and nuclear introgression may have occurred among lineages assigned to Cynops. More comprehensive genomic data will, in the future, allow testing this against alternative scenarios involving hybridization with other, extinct lineages of newts.


Assuntos
Hibridização Genética , Filogenia , Urodelos/classificação , Urodelos/genética , Animais , Núcleo Celular/genética , DNA Mitocondrial/genética , Genoma Mitocondrial , Mitocôndrias/genética , Transcriptoma/genética
13.
Ecol Appl ; 31(5): e02342, 2021 07.
Artigo em Inglês | MEDLINE | ID: mdl-33817953

RESUMO

Starting in 2010, rapid fire salamander (Salamandra salamandra) population declines in northwestern Europe heralded the emergence of Batrachochytrium salamandrivorans (Bsal), a salamander-pathogenic chytrid fungus. Bsal poses an imminent threat to global salamander diversity owing to its wide host range, high pathogenicity, and long-term persistence in ecosystems. While there is a pressing need to develop further research and conservation actions, data limitations inherent to recent pathogen emergence obscure necessary insights into Bsal disease ecology. Here, we use a hierarchical modeling framework to describe Bsal landscape epidemiology of outbreak sites in light of these methodological challenges. Using model selection and machine learning, we find that Bsal presence is associated with humid and relatively cool, stable climates. Outbreaks are generally located in areas characterized by low landscape heterogeneity and low steepness of slope. We further find an association between Bsal presence and high trail density, suggesting that human-mediated spread may increase risk for spillover between populations. We then use distribution modeling to show that favorable conditions occur in lowlands influenced by the North Sea, where increased survey effort is needed to determine how Bsal impacts local newt populations, but also in hill- and mountain ranges in northeastern France and the lower half of Germany. Finally, connectivity analyses suggest that these hill- and mountain ranges may act as stepping stones for further spread southward. Our results provide initial insight into regional environmental conditions underlying Bsal epizootics, present updated invasibility predictions for northwestern Europe, and lead us to discuss a wide variety of potential survey and research actions needed to advance future conservation and mitigation efforts.


Assuntos
Quitridiomicetos , Anfíbios , Animais , Batrachochytrium , Ecossistema , Humanos , Urodelos
14.
Molecules ; 25(4)2020 Feb 18.
Artigo em Inglês | MEDLINE | ID: mdl-32085597

RESUMO

A wide range of frogs produce skin poisons composed of bioactive peptides for defence against pathogens, parasites and predators. While several frog families have been thoroughly screened for skin-secreted peptides, others, like the Microhylidae, have remained mostly unexplored. Previous studies of microhylids found no evidence of peptide secretion, suggesting that this defence adaptation was evolutionarily lost. We conducted transcriptome analyses of the skins of Phrynomantis bifasciatus and Phrynomantis microps, two African microhylid species long suspected to be poisonous. Our analyses reveal 17 evolutionary related transcripts that diversified from to those of cytolytic peptides found in other frog families. The 19 peptides predicted to be processed from these transcripts, named phrynomantins, show a striking structural diversity that is distinct from any previously identified frog skin peptide. Functional analyses of five phrynomantins confirm the loss of a cytolytic function and the absence of insecticidal or proinflammatory activity, suggesting that they represent an evolutionary transition to a new, yet unknown function. Our study shows that peptides have been retained in the defence poison of at least one microhylid lineage and encourages research on similarly understudied taxa to further elucidate the diversity and evolution of skin defence molecules.


Assuntos
Peptídeos Catiônicos Antimicrobianos/farmacologia , Anuros/metabolismo , Pele/química , Sequência de Aminoácidos , Animais , Anti-Inflamatórios/química , Anti-Inflamatórios/farmacologia , Peptídeos Catiônicos Antimicrobianos/química , Células CACO-2 , Evolução Molecular , Feminino , Humanos , Inseticidas/toxicidade , Camundongos Endogâmicos C57BL , Testes de Sensibilidade Microbiana , Mariposas/efeitos dos fármacos , Filogenia , Proteínas/química , Proteínas/genética , Proteínas/metabolismo , RNA Mensageiro/genética , RNA Mensageiro/metabolismo , Transcriptoma/genética
15.
Conserv Biol ; 33(5): 1131-1140, 2019 10.
Artigo em Inglês | MEDLINE | ID: mdl-30868671

RESUMO

Mitigation of infectious wildlife diseases is especially challenging where pathogens affect communities of multiple host species. Although most ecological studies recognize the challenge posed by multiple-species pathogens, the implications for management are typically assessed only qualitatively. Translating the intuitive understanding that multiple host species are important into practice requires a quantitative assessment of whether and how secondary host species should also be targeted by management and the effort this will require. Using a multiple-species compartmental model, we determined analytically whether and how intensively secondary host species should be managed to prevent outbreaks in focal hosts based on the reproduction number of individual host species and between-species transmission rates. We applied the model to the invasive pathogenic fungus Batrachochytrium salamandrivorans in a 2-host system in northern Europe. Avoiding a disease outbreak in the focal host (fire salamanders [Salamandra salamandra]) was impossible unless management also heavily targeted the secondary host (alpine newts [Ichthyosaura alpestris]). Preventing an outbreak in the community required targeted removal of at least 80% of each species. This proportion increased to 90% in the presence of an environmental reservoir of B. salamandrivorans and when the proportion of individuals removed could not be adjusted for different host species (e.g., when using traps that are not species specific). We recommend the focus of disease-mitigation plans should shift from focal species to the community level and calculate explicitly the management efforts required on secondary host species to move beyond the simple intuitive understanding that multiple host species may all influence the system. Failure to do so may lead to underestimating the magnitude of the effort required and ultimately to suboptimal or futile management attempts.


Cuantificación de la Carga que Representa el Manejo de Enfermedades de Fauna Silvestre en Múltiples Especies Hospederas Resumen La mitigación de enfermedades infecciosas en fauna silvestre representa un reto especial cuando los patógenos afectan a comunidades de múltiples especies hospederas. Aunque la mayoría de los estudios ecológicos reconocen el reto que plantean los patógenos de múltiples especies, las implicaciones para el manejo comúnmente sólo se evalúan en el aspecto cualitativo. La traducción del entendimiento intuitivo hacia la práctica de que las múltiples especies hospederas son importantes requiere una valoración cuantitativa sobre si y cuán intensivamente se deberían considerar en el manejo las especies hospederas secundarias y los esfuerzos que esto requerirá. Determinamos analíticamente con un modelo compartimentado de múltiples especies si y cuán intensivamente se deberían manejar las especies hospederas secundarias para prevenir brotes en los hospederos focales con base en el número de reproducción de las especies hospederas individuales y en las tasas de transmisión entre especies. Aplicamos el modelo al hongo patógeno invasivo Batrachochytrium salamandrivorans en un sistema de dos hospederos al norte de Europa. Fue imposible evitar un brote de enfermedad en el hospedero focal (la salamandra de fuego [Salamandra salamandra]) a menos que el manejo también se enfocara considerablemente en el hospedero secundario (el tritón alpino [Ichthyosaura alpestris]). Para prevenir un brote dentro de la comunidad se requirió de la extirpación de al menos el 80% de cada especie. Esta proporción incrementó al 90% con la presencia de un reservorio ambiental de B. salamandrivorans y cuando la proporción de individuos removidos no pudo ajustarse para diferentes especies (p. ej.: el uso de trampas que nos son específicas para una especie) Recomendamos que el foco de los planes para la mitigación de enfermedades cambie de una especie focal al nivel de comunidad y que calculen explícitamente los esfuerzos de manejo requeridos sobre las especies hospederas secundarias para avanzar más allá del simple entendimiento intuitivo de que múltiples especies hospederas pueden todas influir sobre el sistema. Si se falla en esto, se podría subestimar la magnitud del esfuerzo requerido y finalmente podría resultar en intentos de manejo sub-óptimos o inútiles.


Assuntos
Quitridiomicetos , Urodelos , Animais , Animais Selvagens , Conservação dos Recursos Naturais , Europa (Continente)
16.
Altern Lab Anim ; 47(2): 63-70, 2019 May.
Artigo em Inglês | MEDLINE | ID: mdl-31333044

RESUMO

Quantitative real-time polymerase chain reaction is a widely used technique that relies on reference genes for the normalisation of gene expression. These reference genes are constitutively expressed and must remain stable across all samples and treatments. Stability of housekeeping genes may vary and must be optimised for a specific tissue, sample or cell line. Here we present a study screening for possible reference gene candidates, eef1a1, rpl8, sub1.L, clta, H4 and odc1, in the Xenopus laevis (A6) kidney cell line. Quantification cycle results were analysed using geNorm to calculate the average expression stability and the coefficient of variation (CV) for each candidate reference gene. All of the tested genes met the guidelines for stable reference genes, namely an average expression stability of < 0.5 and a CV value of < 0.2, with eef1a1 > sub1.L > rpl8 > clta > odc1 > H4. By using pairwise variation analysis, the optimal number of reference targets was determined to be 2. As such, we report that the reference genes eef1a1 and sub1.L should be used to achieve optimal normalisation in A6 cells.


Assuntos
Anfíbios , Alternativas aos Testes com Animais , Células Epiteliais , Reação em Cadeia da Polimerase em Tempo Real , Alternativas aos Testes com Animais/métodos , Animais , Linhagem Celular , Células Epiteliais/citologia , Expressão Gênica
17.
Emerg Infect Dis ; 24(12): 2331-2333, 2018 12.
Artigo em Inglês | MEDLINE | ID: mdl-30457548

RESUMO

We isolated Burkholderia pseudomallei, the causative agent of melioidosis, from liver granulomas of a pet green iguana (Iguana iguana) in Belgium. This case highlights a risk for imported green iguanas acting as a reservoir for introduction of this high-threat, zoonotic pathogen into nonendemic regions.


Assuntos
Burkholderia pseudomallei/isolamento & purificação , Iguanas/microbiologia , Melioidose/microbiologia , Animais , Bélgica , Burkholderia pseudomallei/classificação , Burkholderia pseudomallei/genética , Feminino , Granuloma/microbiologia , Granuloma/patologia , Fígado/microbiologia , Fígado/patologia , Melioidose/transmissão
18.
Proc Biol Sci ; 285(1885)2018 08 22.
Artigo em Inglês | MEDLINE | ID: mdl-30135150

RESUMO

Escalating occurrences of emerging infectious diseases underscore the importance of understanding microbiome-pathogen interactions. The amphibian cutaneous microbiome is widely studied for its potential to mitigate disease-mediated amphibian declines. Other microbial interactions in this system, however, have been largely neglected in the context of disease outbreaks. European fire salamanders have suffered dramatic population crashes as a result of the newly emerged Batrachochytrium salamandrivorans (Bsal). In this paper, we investigate microbial interactions on multiple fronts within this system. We show that wild, healthy fire salamanders maintain complex skin microbiotas containing Bsal-inhibitory members, but these community are present at a remarkably low abundance. Through experimentation, we show that increasing bacterial densities of Bsal-inhibiting bacteria via daily addition slowed disease progression in fire salamanders. Additionally, we find that experimental-Bsal infection elicited subtle changes in the skin microbiome, with selected opportunistic bacteria increasing in relative abundance resulting in septicemic events that coincide with extensive destruction of the epidermis. These results suggest that fire salamander skin, in natural settings, maintains bacterial communities at numbers too low to confer sufficient protection against Bsal, and, in fact, the native skin microbiota can constitute a source of opportunistic bacterial pathogens that contribute to pathogenesis. By shedding light on the complex interaction between the microbiome and a lethal pathogen, these data put the interplay between skin microbiomes and a wildlife disease into a new perspective.


Assuntos
Quitridiomicetos/fisiologia , Dermatomicoses/veterinária , Microbiota , Pele/microbiologia , Urodelos , Animais , Dermatomicoses/microbiologia , Alemanha
19.
Med Mycol ; 56(suppl_1): 165-187, 2018 04 01.
Artigo em Inglês | MEDLINE | ID: mdl-29538732

RESUMO

The importance of fungal infections in both human and animals has increased over the last decades. This article represents an overview of the different categories of fungal infections that can be encountered in animals originating from environmental sources without transmission to humans. In addition, the endemic infections with indirect transmission from the environment, the zoophilic fungal pathogens with near-direct transmission, the zoonotic fungi that can be directly transmitted from animals to humans, mycotoxicoses and antifungal resistance in animals will also be discussed. Opportunistic mycoses are responsible for a wide range of diseases from localized infections to fatal disseminated diseases, such as aspergillosis, mucormycosis, candidiasis, cryptococcosis and infections caused by melanized fungi. The amphibian fungal disease chytridiomycosis and the Bat White-nose syndrome are due to obligatory fungal pathogens. Zoonotic agents are naturally transmitted from vertebrate animals to humans and vice versa. The list of zoonotic fungal agents is limited but some species, like Microsporum canis and Sporothrix brasiliensis from cats, have a strong public health impact. Mycotoxins are defined as the chemicals of fungal origin being toxic for warm-blooded vertebrates. Intoxications by aflatoxins and ochratoxins represent a threat for both human and animal health. Resistance to antifungals can occur in different animal species that receive these drugs, although the true epidemiology of resistance in animals is unknown, and options to treat infections caused by resistant infections are limited.


Assuntos
Farmacorresistência Fúngica , Micoses/veterinária , Micotoxicose/veterinária , Animais , Antifúngicos/uso terapêutico , Doenças Endêmicas/veterinária , Humanos , Micoses/tratamento farmacológico , Micoses/microbiologia , Micoses/transmissão , Micotoxinas/toxicidade , Infecções Oportunistas/tratamento farmacológico , Infecções Oportunistas/microbiologia , Infecções Oportunistas/transmissão , Infecções Oportunistas/veterinária , Zoonoses/tratamento farmacológico , Zoonoses/microbiologia , Zoonoses/transmissão
20.
J Proteome Res ; 16(4): 1728-1742, 2017 04 07.
Artigo em Inglês | MEDLINE | ID: mdl-28301166

RESUMO

Brachyspira hyodysenteriae causes swine dysentery (SD), leading to global financial losses to the pig industry. Infection with this pathogen results in an increase in B. hyodysenteriae binding sites on mucins, along with increased colonic mucin secretion. We predict that B. hyodysenteriae modifies the glycosylation pattern of the porcine intestinal mucus layer to optimize its host niche. We characterized the swine colonic mucin O-glycome and identified the differences in glycosylation between B. hyodysenteriae-infected and noninfected pigs. O-Glycans were chemically released from soluble and insoluble mucins isolated from five infected and five healthy colon tissues and analyzed using porous graphitized carbon liquid chromatography tandem mass spectrometry. In total, 94 O-glycans were identified, with healthy pigs having higher interindividual variation, although a larger array of glycan structures was present in infected pigs. This implied that infection induced loss of individual variation and that specific infection-related glycans were induced. The dominating structures shifted from core-4-type O-glycans in noninfected pigs toward core-2-type O-glycans in infected animals, which correlated with increased levels of the C2GnT glycosyl transferase. Overall, glycan chains from infected pigs were shorter and had a higher abundance of structures that were neutral or predominantly contained NeuGc instead of NeuAc, whereas they had a lower abundance of structures that were fucosylated, acidic, or sulfated than those from noninfected pigs. Therefore, we conclude that B. hyodysenteriae plays a major role in regulating colonic mucin glycosylation in pigs during SD. The changes in mucin O-glycosylation thus resulted in a glycan fingerprint in porcine colonic mucus that may provide increased exposure of epitopes important for host-pathogen interactions. The results from this study provide potential therapeutic targets and a platform for investigations of B. hyodysenteriae interactions with the host via mucin glycans.


Assuntos
Brachyspira hyodysenteriae/genética , Disenteria/microbiologia , Mucinas/metabolismo , Polissacarídeos/metabolismo , Animais , Brachyspira hyodysenteriae/patogenicidade , Colo/metabolismo , Colo/patologia , Disenteria/patologia , Disenteria/veterinária , Glicosilação , Interações Hospedeiro-Patógeno/genética , Mucinas/química , Polissacarídeos/química , Suínos
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