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1.
Aquaculture ; 541: 736772, 2021 Aug 30.
Article in English | MEDLINE | ID: mdl-34471330

ABSTRACT

Mycoplasmas are the smallest autonomously self-replicating life form on the planet. Members of this bacterial genus are known to parasitise a wide array of metazoans including vertebrates. Whilst much research has been significant targeted at parasitic mammalian mycoplasmas, very little is known about their role in other vertebrates. In the current study, we aim to explore the biology of mycoplasmas in Atlantic Salmon, a species of major significance for aquaculture, including cellular niche, genome size structure and gene content. Using fluorescent in-situ hybridisation (FISH), mycoplasmas were targeted in epithelial tissues across the digestive tract (stomach, pyloric caecum and midgut) from different development stages (eggs, parr, subadult) of farmed Atlantic salmon (Salmo salar), and we present evidence for an intracellular niche for some of the microbes visualised. Via shotgun metagenomic sequencing, a nearly complete, albeit small, genome (~0.57 MB) as assembled from a farmed Atlantic salmon subadult. Phylogenetic analysis of the recovered genome revealed taxonomic proximity to other salmon derived mycoplasmas, as well as to the human pathogen Mycoplasma penetrans (~1.36 Mb). We annotated coding sequences and identified riboflavin pathway encoding genes and sugar transporters, the former potentially consistent with micronutrient provisioning in salmonid development. Our study provides insights into mucosal adherence, the cellular niche and gene catalog of Mycoplasma in the gut ecosystem of the Atlantic salmon, suggesting a high dependency of this minimalist bacterium on its host. Further study is required to explore and functional role of Mycoplasma in the nutrition and development of its salmonid host.

2.
Appl Environ Microbiol ; 86(8)2020 04 01.
Article in English | MEDLINE | ID: mdl-32033945

ABSTRACT

In recent years, a wealth of studies has examined the relationships between a host and its microbiome across diverse taxa. Many studies characterize the host microbiome without considering the ecological processes that underpin microbiome assembly. In this study, the intestinal microbiota of Atlantic salmon, Salmo salar, sampled from farmed and wild environments was first characterized using 16S rRNA gene MiSeq sequencing analysis. We used neutral community models to determine the balance of stochastic and deterministic processes that underpin microbial community assembly and transfer across life cycle stage and between gut compartments. Across gut compartments in farmed fish, neutral models suggest that most microbes are transient with no evidence of adaptation to their environment. In wild fish, we found declining taxonomic and functional microbial community richness as fish mature through different life cycle stages. Alongside neutral community models applied to wild fish, we suggest that declining richness demonstrates an increasing role for the host in filtering microbial communities that is correlated with age. We found a limited subset of gut microflora adapted to the farmed and wild host environment among which Mycoplasma spp. are prominent. Our study reveals the ecological drivers underpinning community assembly in both farmed and wild Atlantic salmon and underlines the importance of understanding the role of stochastic processes, such as random drift and small migration rates in microbial community assembly, before considering any functional role of the gut microbes encountered.IMPORTANCE A growing number of studies have examined variation in the microbiome to determine the role in modulating host health, physiology, and ecology. However, the ecology of host microbial colonization is not fully understood and rarely tested. The continued increase in production of farmed Atlantic salmon, coupled with increased farmed-wild salmon interactions, has accentuated the need to unravel the potential adaptive function of the microbiome and to distinguish resident from transient gut microbes. Between gut compartments in a farmed system, we found a majority of operational taxonomic units (OTUs) that fit the neutral model, with Mycoplasma species among the key exceptions. In wild fish, deterministic processes account for more OTU differences across life stages than those observed across gut compartments. Unlike previous studies, our results make detailed comparisons between fish from wild and farmed environments, while also providing insight into the ecological processes underpinning microbial community assembly in this ecologically and economically important species.


Subject(s)
Aquaculture , Bacteria/genetics , Salmo salar/microbiology , Animals , Gastrointestinal Microbiome , RNA, Bacterial/analysis , RNA, Ribosomal, 16S/analysis , Salmo salar/growth & development , Stochastic Processes
3.
Sci Rep ; 8(1): 1203, 2018 01 19.
Article in English | MEDLINE | ID: mdl-29352185

ABSTRACT

Caligid sea lice represent a significant threat to salmonid aquaculture worldwide. Population genetic analyses have consistently shown minimal population genetic structure in North Atlantic Lepeophtheirus salmonis, frustrating efforts to track louse populations and improve targeted control measures. The aim of this study was to test the power of reduced representation library sequencing (IIb-RAD sequencing) coupled with random forest machine learning algorithms to define markers for fine-scale discrimination of louse populations. We identified 1286 robustly supported SNPs among four L. salmonis populations from Ireland, Scotland and Northern Norway. Only weak global structure was observed based on the full SNP dataset. The application of a random forest machine-learning algorithm identified 98 discriminatory SNPs that dramatically improved population assignment, increased global genetic structure and resulted in significant genetic population differentiation. A large proportion of SNPs found to be under directional selection were also identified to be highly discriminatory. Our data suggest that it is possible to discriminate between nearby L. salmonis populations given suitable marker selection approaches, and that such differences might have an adaptive basis. We discuss these data in light of sea lice adaption to anthropogenic and environmental pressures as well as novel approaches to track and predict sea louse dispersal.


Subject(s)
DNA Fingerprinting , Salmon/classification , Salmon/genetics , Animals , Atlantic Ocean , Computational Biology/methods , DNA Fingerprinting/methods , Databases, Genetic , Genetic Variation , Genetics, Population , Machine Learning , Molecular Sequence Annotation , Polymorphism, Single Nucleotide , Reproducibility of Results , Seasons , Selection, Genetic
4.
Sci Rep ; 7: 43465, 2017 03 07.
Article in English | MEDLINE | ID: mdl-28266549

ABSTRACT

Interactions between parasite, host and host-associated microbiota are increasingly understood as important determinants of disease progression and morbidity. Salmon lice, including the parasitic copepod Lepeophtheirus salmonis and related species, are perhaps the most important problem facing Atlantic Salmon aquaculture after feed sustainability. Salmon lice parasitize the surface of the fish, feeding off mucus, scales and underlying tissue. Secondary bacterial infections are a major source of associated morbidity. In this study we tracked the diversity and composition of Salmo salar skin surface microbiota throughout a complete L. salmonis infection cycle among 800 post-smolts as compared to healthy controls. Among infected fish we observed a significant reduction in microbial richness (Chao1, P = 0.0136), raised diversity (Shannon, P < 7.86e-06) as well as highly significant destabilisation of microbial community composition (Pairwise Unifrac, beta-diversity, P < 1.86e-05; P = 0.0132) by comparison to controls. While undetectable on an individual level, network analysis of microbial taxa on infected fish revealed the association of multiple pathogenic genera (Vibrio, Flavobacterium, Tenacibaculum, Pseudomonas) with high louse burdens. We discuss our findings in the context of ecological theory and colonisation resistance, in addition to the role microbiota in driving primary and secondary pathology in the host.


Subject(s)
Copepoda/pathogenicity , Fish Diseases/parasitology , Host-Parasite Interactions , Host-Pathogen Interactions , Mucous Membrane/parasitology , Salmo salar/parasitology , Animals , Aquaculture , Copepoda/physiology , Fish Diseases/microbiology , Flavobacterium/genetics , Flavobacterium/growth & development , Flavobacterium/pathogenicity , Genetic Variation , Humans , Microbiota/genetics , Mucous Membrane/microbiology , Pseudomonas/genetics , Pseudomonas/growth & development , Pseudomonas/pathogenicity , Salmo salar/microbiology , Skin/microbiology , Skin/parasitology , Tenacibaculum/genetics , Tenacibaculum/growth & development , Tenacibaculum/pathogenicity , Vibrio/genetics , Vibrio/growth & development , Vibrio/pathogenicity
5.
Mol Ecol ; 24(23): 5782-4, 2015 Dec.
Article in English | MEDLINE | ID: mdl-26607215

ABSTRACT

Tibayrenc and Ayala raised several interesting objections to an opinion piece we recently published in Molecular Ecology (Ramirez & Llewellyn 2014). Our piece examined the value of an alternative perspective to their theory of predominant clonal evolution (PCE) on the prevalence and importance of genetic exchange in parasitic protozoa. In particular, our aim was to establish whether population genetic signatures of clonality in parasites were representative of true biological/evolutionary processes or artefacts of inadequate tools and inappropriate or inadequate sampling. We address Tibayrenc and Ayala's criticisms and make a detailed response. In doing so, we deny the consensus that Tibayrenc and Ayala claim around their views and dismiss much of the language which Tibayrenc and Ayala have introduced to this debate as either arbitrary or inaccurate. We strongly reject accusations that we misunderstood and misquoted the work of others. We do not think the PCE provides a useful framework for understanding existing parasite population structures. Furthermore, on the eve of the population genomic era, we strongly urge Tibayrenc and Ayala to wait for the forthcoming wealth of high-resolution data before considering whether it is appropriate to refine or re-iterate their PCE hypothesis.


Subject(s)
Biological Evolution , Clonal Evolution , Genetic Variation , Giardia/physiology , Toxoplasma/physiology
6.
Infect Genet Evol ; 11(1): 44-51, 2011 Jan.
Article in English | MEDLINE | ID: mdl-21029792

ABSTRACT

Trypanosoma cruzi and Trypanosoma rangeli are human-infective blood parasites, largely restricted to Central and South America. They also infect a wide range of wild and domestic mammals and are transmitted by a numerous species of triatomine bugs. There are significant overlaps in the host and geographical ranges of both species. The two species consist of a number of distinct phylogenetic lineages. A range of PCR-based techniques have been developed to differentiate between these species and to assign their isolates into lineages. However, the existence of at least six and five lineages within T. cruzi and T. rangeli, respectively, makes identification of the full range of isolates difficult and time consuming. Here we have applied fluorescent fragment length barcoding (FFLB) to the problem of identifying and genotyping T. cruzi, T. rangeli and other South American trypanosomes. This technique discriminates species on the basis of length polymorphism of regions of the rDNA locus. FFLB was able to differentiate many trypanosome species known from South American mammals: T. cruzi cruzi, T. cruzi marinkellei, T. dionisii-like, T. evansi, T. lewisi, T. rangeli, T. theileri and T. vivax. Furthermore, all five T. rangeli lineages and many T. cruzi lineages could be identified, except the hybrid lineages TcV and TcVI that could not be distinguished from lineages III and II respectively. This method also allowed identification of mixed infections of T. cruzi and T. rangeli lineages in naturally infected triatomine bugs. The ability of FFLB to genotype multiple lineages of T. cruzi and T. rangeli together with other trypanosome species, using the same primer sets is an advantage over other currently available techniques. Overall, these results demonstrate that FFLB is a useful method for species diagnosis, genotyping and understanding the epidemiology of American trypanosomes.


Subject(s)
Trypanosoma/genetics , Animals , Genotype , Polymerase Chain Reaction , South America , Species Specificity
7.
Parasitology ; 136(12): 1509-28, 2009 Oct.
Article in English | MEDLINE | ID: mdl-19691868

ABSTRACT

Trypanosoma cruzi is the protozoan agent of Chagas disease, and the most important parasitic disease in Latin America. Protozoa of the genus Leishmania are global agents of visceral and cutaneous leishmaniasis, fatal and disfiguring diseases. In the 1970s multilocus enzyme electrophoresis demonstrated that T. cruzi is a heterogeneous complex. Six zymodemes were described, corresponding with currently recognized lineages, TcI and TcIIa-e--now defined by multiple genetic markers. Molecular epidemiology has substantially resolved the phylogeography and ecological niches of the T. cruzi lineages. Genetic hybridization has fundamentally influenced T. cruzi evolution and epidemiology of Chagas disease. Genetic exchange of T. cruzi in vitro involves fusion of diploids and genome erosion, producing aneuploid hybrids. Transgenic fluorescent clones are new tools to elucidate molecular genetics and phenotypic variation. We speculate that pericardial sequestration plays a role in pathogenesis. Multilocus sequence typing, microsatellites and, ultimately, comparative genomics are improving understanding of T. cruzi population genetics. Similarly, in Leishmania, genetic groups have been defined, including epidemiologically important hybrids; genetic exchange can occur in the sand fly vector. We describe the profound impact of this parallel research on genetic diversity of T. cruzi and Leishmania, in the context of epidemiology, taxonomy and disease control.


Subject(s)
Chagas Disease/epidemiology , Leishmania , Leishmaniasis/epidemiology , Molecular Epidemiology , Phylogeny , Trypanosoma cruzi , Animals , Chagas Disease/parasitology , Chagas Disease/transmission , Ecosystem , Leishmania/classification , Leishmania/genetics , Leishmaniasis/parasitology , Leishmaniasis/transmission , South America/epidemiology , Trypanosoma cruzi/classification , Trypanosoma cruzi/genetics
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