Distribution and Genetic Divergence of Deep-Sea Hydrothermal Vent Copepods (Dirivultidae: Siphonostomatoida: Copepoda) in the Northwestern Pacific.

DNA barcoding Izu–Bonin–Mariana Arc Okinawa Trough chemosynthesis-based community mitochondrial COI

Journal

Zoological science
ISSN: 0289-0003
Titre abrégé: Zoolog Sci
Pays: Japan
ID NLM: 8702287

Informations de publication

Date de publication:
Jun 2021
Historique:
received: 12 10 2020
accepted: 17 01 2021
entrez: 31 5 2021
pubmed: 1 6 2021
medline: 8 6 2021
Statut: ppublish

Résumé

Copepods in the family Dirivultidae are one of the most successful meiofauna in deep-sea hydrothermal vent fields and are abundant near venting fluid. Although vents are spatially limited ocean habitats, they are distributed widely in the Atlantic, Pacific, and Indian Oceans. However, knowledge of dirivultid biogeography and phylogeography remains limited, especially in the northwestern Pacific. Here, we obtained partial mitochondrial COI gene sequences of three dirivultids from the northwestern Pacific-

Identifiants

pubmed: 34057346
doi: 10.2108/zs200153
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

223-230

Références

Boschen RE, Rowden AA, Clark MR, Gardner J (2015) Limitations in the use of archived vent mussel samples to assess genetic connectivity among seafloor massive sulfide deposits: A case study with implications for environmental management. Front Mar Sci 2: 105
Chen C, Watanabe HK, Nagai Y, Toyofuku T, Xu T, Sun J, et al. (2019) Complex factors shape phenotypic variation in deep-sea limpets. Biol Lett 15: 20190504
Gage JD, Tyler PA (1991) Deep-Sea Biology: A Natural History of Organisms at the Deep-Sea Floor. Cambridge University Press, London
Giere O (2009) Meiobenthology. The Microscopic Motile Fauna of Aquatic Sediments. 2nd ed, Universität Hamburg, Hamburg
Gollner S, Ivanenko VN, Arbizu PM, Bright M (2010) Advances in taxonomy, ecology, and biogeography of Dirivultidae (Copepoda) associated with chemosynthetic environments in the deep sea. PLOS ONE 5: e9801
Gollner S, Fontaneto D, Arbizu PM (2011) Molecular taxonomy confirms morphological classification of deep-sea hydrothermal vent copepods (Dirivultidae) and suggests broad physiological tolerance of species and frequent dispersal along ridges. Mar Biol 158: 221–231
Gollner S, Stuckas H, Kihara TC, Laurent S, Kodami S, Arbizu PM (2016) Mitochondrial DNA analyses indicate high diversity, expansive population growth and high genetic connectivity of vent copepods (Dirivultidae) across different oceans. PLOS ONE 11: e0163776
Humes AG (1990) Copepods (Siphonostomatoida) from a deep-sea hydrothermal vent at the Mariana Back-Arc Basin in the Pacific, including a new genus and species. J Nat Hist 24: 289–304
Humes AG, Segonzac M (1998) Copepoda from deep-sea hydrothermal sites and cold seeps: description of a new species of
Ivanenko VN, Ferrari FD (2013) New species of
Ivanenko VN, Martínez Arbizu P, Stecher J (2006) Copepods of the family Dirivultidae (Siphonostomatoida) from deep-sea hydrothermal vent fields on the Mid-Atlantic Ridge at 14°N and 5°S. Zootaxa 1277: 1–21
Ivanenko VN, Defaye D, Segonzac M, Khripounoff A, Sarrazin J, Ferrari FD (2011) A new species of
Johnson SB, Waren A, Tunnicliffe V, Van Dover C, Wheat CG, Schultz TF, et al. (2014) Molecular taxonomy and naming of five cryptic species of
Kim SJ, Kim IH (2013) A new species of
Kobayashi G, Miura T, Kojima S (2015)
Kojima S, Segawa R, Fujiwara Y, Fujikura K, Ohta S, Hashimoto J (2001) Phylogeny of hydrothermal-vent-endemic gastropods
Kojima S, Murakami S, Nemoto S, Watanabe H, Miyake H, Tsuchida S (2012) Genetic diversity and population structure of a vestimentiferan annelid
Kumar S, Stecher G, Tamura K (2016) MEGA7: Molecular Evolutionary Genetics Analysis version 7.0 for bigger datasets. Mol Biol Evol 33: 1870–1874
Laming SR, Hourdez S, Cambon-Bonavita M-A, Pradillon F (2020) Classical and computed tomographic anatomical analyses in a not-so-cryptic
Lee J, Kim D, Kim I-H (2020) Copepoda (Siphonostomatoida: Dirivultidae) from hydrothermal vent fields on the Central Indian Ridge, Indian Ocean. Zootaxa 4759: 301–337
Linse K, Roterman CN, Chen C (2019) A new vent limpet in the genus
Lutz RA, Shank TM, Fornari DJ, Haymon RM, Lilley MD, Von Damm KL, et al. (1994) Rapid growth at deep-sea vents. Nature 371: 663–664
Ma L, Wang M-X, Li X-Z (2020) A new species of
Nomaki H, Uejima Y, Ogawa NO, Yamane M, Watanabe HK, Senokuchi R, et al. (2019) Nutritional sources of meio- and macrofauna at hydrothermal vents and adjacent areas: natural-abundance radiocarbon and stable isotope analyses. Mar Ecol Prog Ser 622: 49–65
Ronquist F, Teslenko M, van der Mark P, Ayres DL, Darling A, Höhna S, et al. (2012) MRBAYES 3.2: Efficient Bayesian phylogenetic inference and model selection across a large model space. Syst Biol 61: 539–542
Senokuchi R, Nomaki H, Watanabe HK, Kitahashi T, Ogawa NO, Shimanaga M (2018) Chemoautotrophic food availability influences copepod assemblage composition at deep hydrothermal vent sites within sea knoll calderas in the northwestern Pacific. Mar Ecol Prog Ser 607: 37–51
Senokuchi R, Nomaki H, Uyeno D, Watanabe HK, Kitahashi T, Shimanaga M (2020) Sex ratio of
Tunnicliffe V, McArthur AG, McHugh D (1998) A biogeographical perspective of the deep-sea hydrothermal vent fauna. Adv Mar Biol 34: 353–442
Uejima Y, Nomaki H, Senokuchi R, Setoguchi Y, Kitahashi T, Watanabe HK, et al. (2017) Meiofaunal communities in hydrothermal vent and proximate non-vent habitats around neighboring seamounts on the Izu-Ogasawara Arc, western North Pacific Ocean. Mar Biol 164: 183
Uyeno D, Watanabe HK, Shimanaga M (2018) A new dirivultid copepod (Siphonostomatoida) from hydrothermal vent fields of the Izu-Bonin Arc in the North Pacific Ocean. Zootaxa 4415: 381–389
Uyeno D, Kakui K, Watanabe HK, Fujiwara Y (2020) Dirivultidae (Copepoda: Siphonostomatoida) from hydrothermal vent fields in the Okinawa Trough, North Pacific Ocean, with description of one new species. J Mar Biol Assoc UK https://doi.org/10.1017/S0025315420001101
Van Dover CL (2014) Impacts of anthropogenic disturbances at deep-sea hydrothermal vent ecosystems: A review. Mar Environ Res 102: 59–72
Watanabe HK, Senokuchi R, Shimanaga M, Yamamoto H (2016) Comparison of the efficiency of three methods of DNA extraction and amplification for deep-sea benthic copepods. JAMSTEC Rep Res Dev 23: 52–59
Xia X (2018) DAMBE7: New and improved tools for data analysis in molecular biology and evolution. Mol Biol Evol 35: 1550–1552
Zeppilli D, Sarrazin J, Leduc D, Arbizu PM, Fontaneto D, Fontanier C, et al. (2015) Is the meiofauna a good indicator for climate change and anthropogenic impacts? Mar Biodivers 45: 505–535

Auteurs

Hiromi Kayama Watanabe (HK)

X-STAR, Japan Agency for Marine-Earth Science and Technology (JAMSTEC), Yokosuka, Kanagawa 237-0061, Japan, hwatanabe@jamstec.go.jp.

Reina Senokuchi (R)

Aitsu Marine Station, Kumamoto University, Matsushima, Kami-amakusa, Kumamoto 861-6102, Japan.

Hidetaka Nomaki (H)

X-STAR, Japan Agency for Marine-Earth Science and Technology (JAMSTEC), Yokosuka, Kanagawa 237-0061, Japan.

Tomo Kitahashi (T)

RIGC, Japan Agency for Marine-Earth Science and Technology (JAMSTEC), Yokosuka, Kanagawa 237-0061, Japan.

Daisuke Uyeno (D)

Graduate School of Science and Engineering, Kagoshima University, Kagoshima 980-0065, Japan.

Motohiro Shimanaga (M)

Aitsu Marine Station, Kumamoto University, Matsushima, Kami-amakusa, Kumamoto 861-6102, Japan.

Articles similaires

Genome, Chloroplast Phylogeny Genetic Markers Base Composition High-Throughput Nucleotide Sequencing
Robotic Surgical Procedures Animals Humans Telemedicine Models, Animal

Odour generalisation and detection dog training.

Lyn Caldicott, Thomas W Pike, Helen E Zulch et al.
1.00
Animals Odorants Dogs Generalization, Psychological Smell
Animals TOR Serine-Threonine Kinases Colorectal Neoplasms Colitis Mice

Classifications MeSH