ArticleBMC genomics2016
Seasonal immunoregulation in a naturally-occurring vertebrate.
Article in BMC genomics, 2016. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 15 papers, 1 of them a synthesis that pooled it.
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Who cites it
15 citing papers in PubMed, 1 synthesis or guideline pooled it, 34 citations in OpenAlex.
- Macroimmunology: The drivers and consequences of spatial patterns in wildlife immune defence.The Journal of animal ecology · 2020Pooled it
- Season affects the estrogen system and the immune response of common carp.Fish physiology and biochemistry · 2024Article
- Lunar-linked biological rhythms in the immune system of freshwater three-spined stickleback.Discovery immunology · 2024Article
- Transmissible cancer influences immune gene expression in an endangered marsupial, the Tasmanian devil (Sarcophilus harrisii).Molecular ecology · 2022Article
- Variations in Rainbow Trout Immune Responses againstBiology · 2022Article
- The amphibian complement system and chytridiomycosis.Journal of experimental zoology. Part A, Ecological and integrative physiology · 2020Review
- Prior exposure to long-day photoperiods alters immune responses and increases susceptibility to parasitic infection in stickleback.Proceedings. Biological sciences · 2020Article
- Not going with the flow: Locomotor activity does not constrain immunity in a wild fish.Ecology and evolution · 2019Article
- Diet in the Driving Seat: Natural Diet-Immunity-Microbiome Interactions in Wild Fish.Frontiers in immunology · 2019Article
- A genetics-based approach confirms immune associations with life history across multiple populations of an aquatic vertebrate (Gasterosteus aculeatus).Molecular ecology · 2018Article
- Characterization of type IV antifreeze gene in Nile tilapia (Oreochromis niloticus) and influence of cold and hot weather on its expression and some immune-related genes.Fish physiology and biochemistry · 2018Article
- Physical Cues Controlling Seasonal Immune Allocation in a Natural Piscine Model.Frontiers in immunology · 2018Article
- Changing expression of vertebrate immunity genes in an anthropogenic environment: a controlled experiment.BMC evolutionary biology · 2016Article
- Altered Immune Cytokine Expression Associated with KoRV B Infection and Season in Captive Koalas.PloS one · 2016Article
- De novo Assembly and Analysis of the Chilean Pencil Catfish Trichomycterus areolatus Transcriptome.Journal of genomics · 2016Article
Corrections and comments
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Authors and funding
7 authors at 4 institutions in 1 country.
Funding
No grant is acknowledged in the PubMed record.
Abstract
backgroundFishes show seasonal patterns of immunity, but such phenomena are imperfectly understood in vertebrates generally, even in humans and mice. As these seasonal patterns may link to infectious disease risk and individual condition, the nature of their control has real practical implications. Here we characterize seasonal dynamics in the expression of conserved vertebrate immunity genes in a naturally-occurring piscine model, the three-spined stickleback.
resultsWe made genome-wide measurements (RNAseq) of whole-fish mRNA pools (n = 36) at the end of summer and winter in contrasting habitats (riverine and lacustrine) and focussed on common trends to filter habitat-specific from overarching temporal responses. We corroborated this analysis with targeted year-round whole-fish gene expression (Q-PCR) studies in a different year (n = 478). We also considered seasonal tissue-specific expression (6 tissues) (n = 15) at a third contrasting (euryhaline) locality by Q-PCR, further validating the generality of the patterns seen in whole fish analyses. Extremes of season were the dominant predictor of immune expression (compared to sex, ontogeny or habitat). Signatures of adaptive immunity were elevated in late summer. In contrast, late winter was accompanied by signatures of innate immunity (including IL-1 signalling and non-classical complement activity) and modulated toll-like receptor signalling. Negative regulators of T-cell activity were prominent amongst winter-biased genes, suggesting that adaptive immunity is actively down-regulated during winter rather than passively tracking ambient temperature. Network analyses identified a small set of immune genes that might lie close to a regulatory axis. These genes acted as hubs linking summer-biased adaptive pathways, winter-biased innate pathways and other organismal processes, including growth, metabolic dynamics and responses to stress and temperature. Seasonal change was most pronounced in the gill, which contains a considerable concentration of T-cell activity in the stickleback.
conclusionsOur results suggest major and predictable seasonal re-adjustments of immunity. Further consideration should be given to the effects of such responses in seasonally-occurring disease.
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