Genomic analysis on broiler-associated Clostridium perfringens strains and exploratory caecal microbiome investigation reveals key factors linked to poultry necrotic enteritis

被引:30
作者
Kiu, Raymond [1 ]
Brown, Joseph [2 ]
Bedwell, Harley [1 ]
Leclaire, Charlotte [1 ]
Caim, Shabhonam [1 ]
Pickard, Derek [3 ]
Dougan, Gordon [3 ]
Dixon, Ronald A. [2 ]
Hall, Lindsay J. [1 ]
机构
[1] Quadram Inst Biosci, Gut Microbes & Hlth, Norwich, Norfolk, England
[2] Univ Lincoln, Lincoln, England
[3] Univ Cambridge, Dept Med, Cambridge, England
基金
英国生物技术与生命科学研究理事会; 英国惠康基金;
关键词
Clostridium perfringens; Toxin; Phylogenomics; Necrotic enteritis; Poultry; Caecal microbiome; 16S rRNA analysis; ENTEROCOCCUS-FAECIUM; PREDISPOSING FACTORS; GENETIC DIVERSITY; BETA2; TOXIN; LACTOBACILLUS; CHICKENS; MICROFLORA; HEALTHY; GROWTH; NETB;
D O I
10.1186/s42523-019-0015-1
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Background Clostridium perfringens is a key pathogen in poultry-associated necrotic enteritis (NE). To date there are limited Whole Genome Sequencing based studies describing broiler-associated C. perfringens in healthy and diseased birds. Moreover, changes in the caecal microbiome during NE is currently not well characterised. Thus, the aim of this present study was to investigate C. perfringens virulence factors linked to health and diseased chickens, including identifying putative caecal microbiota signatures associated with NE. Results We analysed 88 broiler chicken C. perfringens genomes (representing 66 publicly available genomes and 22 newly sequenced genomes) using different phylogenomics approaches and identified a potential hypervirulent and globally-distributed clone spanning 20-year time-frame (1993-2013). These isolates harbored a greater number of virulence genes (including toxin and collagen adhesin genes) when compared to other isolates. Further genomic analysis indicated exclusive and overabundant presence of important NE-linked toxin genes including netB and tpeL in NE-associated broiler isolates. Secondary virulence genes including pfoA, cpb2, and collagen adhesin genes cna, cnaA and cnaD were also enriched in the NE-linked C. perfringens genomes. Moreover, an environmental isolate obtained from farm animal feeds was found to encode netB, suggesting potential reservoirs of NetB-positive C. perfringens strains (toxinotype G). We also analysed caecal samples from a small sub-set of 11 diseased and healthy broilers for exploratory microbiome investigation using 16S rRNA amplicon sequencing, which indicated a significant and positive correlation in genus Clostridium within the wider microbiota of those broilers diagnosed with NE, alongside reductions in beneficial microbiota members. Conclusions These data indicate a positive association of virulence genes including netB, pfoA, cpb2, tpeL and cna variants linked to NE-linked isolates. Potential global dissemination of specific hypervirulent lineage, coupled with distinctive microbiome profiles, highlights the need for further investigations, which will require a large worldwide sample collection from healthy and NE-associated birds.
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页数:14
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共 73 条
  • [1] In vitro production of necrotic enteritis toxin B, NetB, by netB-positive and netB-negative Clostridium perfringens originating from healthy and diseased broiler chickens
    Abildgaard, Lone
    Sondergaard, Teis E.
    Engberg, Ricarda M.
    Schramm, Andreas
    Hojberg, Ole
    [J]. VETERINARY MICROBIOLOGY, 2010, 144 (1-2) : 231 - 235
  • [2] Optimisation of 16S rRNA gut microbiota profiling of extremely low birth weight infants
    Alcon-Giner, Cristina
    Caim, Shabhonam
    Mitra, Suparna
    Ketskemety, Jennifer
    Wegmann, Udo
    Wain, John
    Belteki, Gusztav
    Clarke, Paul
    Hall, Lindsay J.
    [J]. BMC GENOMICS, 2017, 18
  • [3] [Anonymous], CHICKENS
  • [4] On the (im)possibility of reconstructing plasmids from whole-genome short-read sequencing data
    Arredondo-Alonso, Sergio
    Willems, Rob J.
    van Schaik, Willem
    Schurch, Anita C.
    [J]. MICROBIAL GENOMICS, 2017, 3 (10):
  • [5] Age-Related Differences in the Luminal and Mucosa-Associated Gut Microbiome of Broiler Chickens and Shifts Associated with Campylobacter jejuni Infection
    Awad, Wageha A.
    Mann, Evelyne
    Dzieciol, Monika
    Hess, Claudia
    Schmitz-Esser, Stephan
    Wagner, Martin
    Hess, Michael
    [J]. FRONTIERS IN CELLULAR AND INFECTION MICROBIOLOGY, 2016, 6
  • [6] Low Prevalence of netB and tpeL in Historical Clostridium perfringens Isolates from Broiler Farms in Alabama
    Bailey, M. A.
    Macklin, K. S.
    Krehling, J. T.
    [J]. AVIAN DISEASES, 2015, 59 (01) : 46 - 51
  • [7] Rapid scoring of genes in microbial pan-genome-wide association studies with Scoary
    Brynildsrud, Ola
    Bohlin, Jon
    Scheffer, Lonneke
    Eldholm, Vegard
    [J]. GENOME BIOLOGY, 2016, 17
  • [8] Effects of a probiotic, Enterococcus faecium, on growth performance, intestinal morphology, immune response, and cecal microflora in broiler chickens challenged with Escherichia coli K88
    Cao, G. T.
    Zeng, X. F.
    Chen, A. G.
    Zhou, L.
    Zhang, L.
    Xiao, Y. P.
    Yang, C. M.
    [J]. POULTRY SCIENCE, 2013, 92 (11) : 2949 - 2955
  • [9] QIIME allows analysis of high-throughput community sequencing data
    Caporaso, J. Gregory
    Kuczynski, Justin
    Stombaugh, Jesse
    Bittinger, Kyle
    Bushman, Frederic D.
    Costello, Elizabeth K.
    Fierer, Noah
    Pena, Antonio Gonzalez
    Goodrich, Julia K.
    Gordon, Jeffrey I.
    Huttley, Gavin A.
    Kelley, Scott T.
    Knights, Dan
    Koenig, Jeremy E.
    Ley, Ruth E.
    Lozupone, Catherine A.
    McDonald, Daniel
    Muegge, Brian D.
    Pirrung, Meg
    Reeder, Jens
    Sevinsky, Joel R.
    Tumbaugh, Peter J.
    Walters, William A.
    Widmann, Jeremy
    Yatsunenko, Tanya
    Zaneveld, Jesse
    Knight, Rob
    [J]. NATURE METHODS, 2010, 7 (05) : 335 - 336
  • [10] Genetic diversity of Clostridium perfringens isolated from healthy broiler chickens at a commercial farm
    Chalmers, G.
    Martin, S. W.
    Hunter, D. B.
    Prescott, J. F.
    Weber, L. J.
    Boerlin, P.
    [J]. VETERINARY MICROBIOLOGY, 2008, 127 (1-2) : 116 - 127