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Research Article

Return of the prodigal son: morphology and molecular phylogenetic relationships of a new Antarctic fish leech (Hirudinea: Piscicolidae) imply a bipolar biogeographic pattern

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References

  • Apakupakul, K., Siddall, M. E., & Burreson, E. M. (1999). Higher level relationships of leeches (Annelida: Clitellata: Euhirudinea) based on morphology and gene sequences. Molecular Phylogenetics and Evolution, 12, 350–359. https://doi.org/10.1006/mpev.1999.0639
  • Bolotov, I. N., Klass, A. L., Konopleva, E. S., Bespalaya, Y. V., Gofarov, M. Y., Kondakov, A. V., & Vikhrev, I. V. (2020). First freshwater mussel-associated piscicolid leech from East Asia. Scientific Reports, 10, 19854. https://doi.org/10.1038/s41598-020-76854-0
  • Briggs, J. C. (2003). Marine centres of origin as evolutionary engines. Journal of Biogeography, 30, 1–18. https://doi.org/10.1046/j.1365-2699.2003.00810.x
  • Burreson, E. M. (2020). Marine and estuarine leeches (Hirudinida: Ozobranchidae and Piscicolidae) of Australia and New Zealand with a key to the species. Invertebrate Systematics, 34, 235–259. https://doi.org/10.1071/IS19048
  • Epshtein, V. M. (1973). O sistematicheskom polozhenii, obraze zhizni i rasprostranenii Levinsenia rectangulata. [On the taxonomic position, mode of life and geographic distribution of Levinsenia rectangulata]. Parazitologiya, 7, 286–292.
  • Epshtein, V. M. (1984). Shchetinkonosnye, cherepash’i i ryb’i piyavki mirovoy fauny (sistemnyi podhod k klassifikatsii i filogenii). Avtoreferat dissertatsii na soiskanie uchenoy stepeni doktora biologicheskikh nauk [Chaetiferous, turtle and fish leeches of the world (system approach to classification and phylogeny). Abstract of the Dissertation for the degree of Doctor of Biological Sciences]. Zoologicheskiy Institut AN SSSR.
  • Epshtein, V. M., Utevsky, A. Y., & Utevsky, S. Y. (1994). The system of fish leeches (Hirudinea: Piscicolidae). Genus, 5, 401–409.
  • Guindon, S., Dufayard, J.-F., Lefort, V., Anisimova, M., Hordijk, W., & Gascuel, O. (2010). New algorithms and methods to estimate maximum-likelihood phylogenies: Assessing the performance of PhyML 3.0. Systematic Biology, 59, 307–321. https://doi.org/10.1093/sysbio/syq010
  • Hall, T. A. (1999). BioEdit: A userfriendly biological sequence alignment editor and analysis program for Windows 95/98/NT. Nucleic Acids Symposium Series, 41, 95–98.
  • Kalyaanamoorthy, S., Minh, B. Q., Wong, T. K. F., von Haeseler, A., & Jermiin, L. S. (2017). ModelFinder: Fast model selection for accurate phylogenetic estimates. Nature Methods, 14, 587–589. https://doi.org/10.1038/nmeth.4285
  • Katoh, K., Rozewicki, J., & Yamada, K. D. (2019). MAFFT online service: Multiple sequence alignment, interactive sequence choice and visualization. Briefings in Bioinformatics, 20, 1160–1166. https://doi.org/10.1093/bib/bbx108
  • Light, J. E., & Siddall, M. E. (1999). Phylogeny of the leech family Glossiphoniidae based on mitochondrial gene sequences and morphological data. The Journal of Parasitology, 85, 815–823. https://doi.org/10.2307/3285816
  • Loeza-Quintana, T., & Adamowicz, S. J. (2018). Iterative calibration: A novel approach for calibrating the molecular clock using complex geological events. Journal of Molecular Evolution, 86, 118–137. https://doi.org/10.1007/s00239-018-9831-2
  • Ludt, W. B. (2021). Missing in the middle: A review of equatorially disjunct marine taxa. Frontiers in Marine Science, 8, 660984. https://doi.org/10.3389/fmars.2021.660984
  • Lukin, E. I. (1936). Pro biologichni osoblyvosti rybiachoyi piyavky Piscicola geometra (L.). [The biological peculiarities of the fish leech Piscicola geometra]. Trudy Nauchno-Issledovatelskogo Zoologo-Biologicheskogo Instituta Kharkovskogo Gosudarstvennogo Universiteta, 1, 144–161.
  • Lukin, E. I. (1976). Piyavki presnykh i solonovatykh vod [Leeches of fresh and brackish waters] Fauna of the USSR: Leeches. Nauka.
  • Martinot, C., Bolton, C. T., Sarr, A.-C., Donnadieu, Y., Garcia, M., Gray, E., & Tachikawa, K. (2022). Drivers of late Miocene tropical sea surface cooling: A new perspective from the equatorial Indian Ocean. Paleoceanography and Paleoclimatology, 37, e2021PA004407. https://doi.org/10.1029/2021PA004407
  • Mattiucci, S., Cipriani, P., Paoletti, M., Nardi, V., Santoro, M., Bellisario, B., & Nascetti, G. (2015). Temporal stability of parasite distribution and genetic variability values of Contracaecum osculatum sp. D and C. osculatum sp. E (Nematoda: Anisakidae) from fish of the Ross Sea (Antarctica). International Journal for Parasitology. Parasites and Wildlife, 4, 356–367. https://doi.org/10.1016/j.ijppaw.2015.10.004
  • Meyer, M. C., & Burreson, E. M. (1990). Some leeches (Hirudinea: Piscicolidae) of the Southern oceans. Biology of the Antarctic Seas. Antarctic Research Series, 52, 219–226.
  • Minh, B. Q., Nguyen, M. A. T., & von Haeseler, A. (2013). Ultrafast approximation for phylogenetic bootstrap. Molecular Biology and Evolution, 30, 1188–1195. https://doi.org/10.1093/molbev/mst024
  • Moreau, C., Danis, B., Jossart, Q., Eléaume, M., Sands, C., Achaz, G., Agüera, A., & Saucède, T. (2019). Is reproductive strategy a key factor in understanding the evolutionary history of Southern Ocean Asteroidea (Echinodermata)? Ecology and Evolution, 9, 8465–8478. https://doi.org/10.1002/ece3.5280
  • Nagasawa, K. (1988). A rare heavy infestation of Levinsenia rectangulata (Hirudinea) on a Walleye Pollock Theragra chalcogramma in Hokkaido waters. Nippon Suisan Gakkaishi, 54, 319–319. https://doi.org/10.2331/suisan.54.319
  • Nei, M., & Kumar, S. (2000). Molecular evolution and phylogenetics. Oxford University Press.
  • Nguyen, L. T., Schmidt, H. A., von Haeseler, A., & Minh, B. Q. (2015). IQ-TREE: A fast and effective stochastic algorithm for estimating maximum likelihood phylogenies. Molecular Biology and Evolution, 32, 268–274. https://doi.org/10.1093/molbev/msu300
  • Phillips, A. J., Govedich, F. R., & Moser, W. E. (2020). Leeches in the extreme: Morphological, physiological, and behavioral adaptations to inhospitable habitats. International Journal for Parasitology: Parasites and Wildlife, 12, 318–325. https://doi.org/10.1016/j.ijppaw.2020.09.003
  • Rogers, A. D. (2007). Evolution and biodiversity of Antarctic organisms: A molecular perspective. Philosophical Transactions of the Royal Society of London. Series B, Biological Sciences, 362, 2191–2214. https://doi.org/10.1098/rstb.2006.1948
  • Santoro, M., Mattiucci, S., Work, T., Cimmaruta, R., Nardi, V., Cipriani, P., Bellisario, B., & Nascetti, G. (2013). Parasitic infection by larval helminths in Antarctic fishes: Pathological changes and impact on the host body condition index. Diseases of Aquatic Organisms, 105, 139–148. https://doi.org/10.3354/dao02626
  • Santoro, M., Mattiucci, S., Cipriani, P., Bellisario, B., Romanelli, F., Cimmaruta, R., & Nascetti, G. (2014). Parasite communities of icefish (Chionodraco hamatus) in the Ross Sea (Antarctica): Influence of the host sex on the helminth infracommunity structure. PloS One, 9, e88876. https://doi.org/10.1371/journal.pone.0088876
  • Santoro, M., Cipriani, P., Pankov, P., & Lawton, S. P. (2015). Aporocotyle michaudi n. sp. (Digenea: Aporocotylidae) from the emerald rock cod, Trematomus bernacchii (Teleostei: Perciformes) in Antarctica. Parasitology International, 64, 324–329. https://doi.org/10.1016/j.parint.2015.05.003
  • Sawyer, R. T. (1986). Leech biology and behaviour. Oxford University Press, Clarendon Press.
  • Selensky, W. D. (1915). Izsledovaniya po Morfologii i Sistematike Hirudinea, I. Organizatsiya Ichthyobdellidae [Studies of the Morphology and Systematics of Hiriudinea, I. Organization of Ichthyobdellidae]. Petrograd.
  • Strugnell, J. M., RogerS, A. D., Prodöhl, P. A., Collins, M. A., & Allcock, A. L. (2008). The thermohaline expressway: The Southern Ocean as a centre of origin for deep-sea octopuses. Cladistics : The International Journal of the Willi Hennig Society, 24, 853–860. https://doi.org/10.1111/j.1096-0031.2008.00234.x
  • Swofford, D. L. (2003). PAUP*. Phylogenetic analysis using parsimony (*and other methods). Version 4. Sinauer Associates.
  • Tao, Q., Tamura, K., Mello, B., & Kumar, S. (2020). Reliable confidence intervals for RelTime estimates of evolutionary divergence times. Molecular Biology and Evolution, 37, 280–290. https://doi.org/10.1093/molbev/msz236
  • Tamura, K., Battistuzzi, F. U., Billing-Ross, P., Murillo, O., Filipski, A., & Kumar, S. (2012). Estimating divergence times in large molecular phylogenies. Proceedings of the National Academy of Sciences of the United States of America, 109, 19333–19338. https://doi.org/10.1073/pnas.1213199109
  • Tamura, K., Qiqing, T., & Kumar, S. (2018). Theoretical foundation of the RelTime method for estimating divergence times from variable evolutionary rates. Molecular Biology and Evolution, 35, 1770–1782. https://doi.org/10.1093/molbev/msy044
  • Tamura, K., Stecher, G., & Kumar, S. (2021). MEGA11: Molecular evolutionary genetics analysis version 11. Molecular Biology and Evolution, 38, 3022–3027. https://doi.org/10.1093/molbev/msab120
  • Trontelj, P., & Utevsky, S. Y. (2005). Celebrity with a neglected taxonomy: Molecular systematics of the medicinal leech (genus Hirudo). Molecular Phylogenetics and Evolution, 34, 616–624. https://doi.org/10.1016/j.ympev.2004.10.012
  • Tessler, M., de Carle, D., Voiklis, M. L., Gresham, O. A., Neumann, J. S., Cios, S., & Siddall, M. E. (2018). Worms that suck: Phylogenetic analysis of Hirudinea solidifies the position of Acanthobdellida and necessitates the dissolution of Rhynchobdellida. Molecular Phylogenetics and Evolution, 127, 129–134. https://doi.org/10.1016/j.ympev.2018.05.001
  • Trontelj, P., & Utevsky, S. Y. (2012). Phylogeny and phylogeography of medicinal leeches (genus Hirudo): fast dispersal and shallow genetic structure. Molecular Phylogenetics and Evolution, 63, 475–485. https://doi.org/10.1016/j.ympev.2012.01.022
  • Utevsky, А. (2007). Antarctic piscicolid leeches. Bonner Zoologische Monographien 54, Zoologisches Forschungsmuseum Alexander Koenig (ZFMK). JF Carthaus.
  • Utevsky, A., & Gordeev, I. (2015). New tentacled leech Ceratobdella quadricornuta n. g., n. sp. (Hirudinida: Piscicolidae) parasitic on the starry skate Raja georgiana Norman from the Scotia Sea. Antarctica. Systematic Parasitology, 3, 203–210. https://doi.org/10.1007/s11230-018-9816-y
  • Utevsky, A., & Utevsky, S. (2018). New Antarctic deep-sea weird leech (Hirudinida: Piscicolidae): Morphological features and phylogenetic relationships. Systematic Parasitology, 95, 849–861. https://doi.org/10.1007/s11230-018-9816-y
  • Utevsky, А., Solod, R., & Utevsky, S. (2021). A new deep-sea fish leech of the bipolar genus Pterobdellina stat. rev. (Hirudinea: Piscicolidae) parasitic on the Antarctic toothfish Dissostichus mawsoni (Perciformes: Nototheniidae). Marine Biodiversity, 51, 15. https://doi.org/10.1007/s12526-020-01140-1
  • Utevsky, S. Y., & Trontelj, P. (2004). Phylogenetic relationships of fish leeches (Hirudinea, Piscicolidae) based on mitochondrial DNA sequences and morphological data. Zoologica Scripta, 33, 375–385. https://doi.org/10.1111/j.0300-3256.2004.00156.x
  • Utevsky, S. Y. (2005). A New Species of Marine Fish Leeches Crangonobdella maculosa sp. n. (Hirudinea, Piscicolidae) from the Tatar Strait and Coastal Waters of the Kuril Islands. Vestnik Zoologii, 39, 15–22. http://dspace.nbuv.gov.ua/handle/123456789/3260
  • Utevsky, S. Y., Utevsky, A. Y., Schiaparelli, S., & Trontelj, P. (2007). Molecular phylogeny of pontobdelline leeches and their place in the descent of fish leeches (Hirudinea, Piscicolidae). Zoologica Scripta, 36, 271–280. https://doi.org/10.1111/j.1463-6409.2007.00279.x
  • Utevsky, S. Y. (2008). Order Hirudinida—Leeches. In: Adrianov, A.V. (Ed.)., Polyclad Turbellarian, Leeches, Oligochaetes, Echiurans. Biota of the Russian Waters of the Sea of Japan. Vol. 6, pp. 112–167.
  • Utevsky, S. Y. (2010). Order Hirudinida – Leeches. In B. I. Sirenko (Ed.) Illustrated keys to free-living invertebrates of Eurasian Arctic seas and adjacent deep waters. Volume 2: Nemertea, Cephalorhyncha, Oligochaeta, Hirudinida, Pogonophora, Echiura, Sipuncula, Phoronida and Brachiopoda (pp. 85–113). KMK Scientific Press.
  • Utevsky, S. Y., & Sorbe, J. C. (2012). First record of the boreal-arctic marine leech Mysidobdella borealis (Hirudinida, Piscicolidae) from the southern Bay of Biscay. Vestnik Zoologii, 46, e.35–e.38. http://dspace.nbuv.gov.ua/bitstream/handle/123456789/109357/11-Utevsky.pdf?sequence=1 https://doi.org/10.2478/v10058-012-0014-0
  • Utevsky, S., Mabrouki, Y., Taybi, A. F., Huseynov, M., Manafov, A., Morhun, H., Shahina, O., Utevsky, G., Kromenko, A., & Utevsky, A. (2021). New records of leeches of the genus Limnatis (Hirudinea, Praobdellidae) from the South Caucasus and Central Asia: Phylogenetic relationships of Eurasian and African populations. Animal Biodiversity and Conservation, 45, 43–52. https://doi.org/10.32800/abc.2022.45.0043
  • Williams, J. I., & Burreson, E. M. (2006). Phylogeny of the fish leeches (Oligochaeta, Hirudinida, Piscicolidae) based on nuclear and mitochondrial genes and morphology. Zoologica Scripta, 35, 627–639. https://doi.org/10.1111/j.14636409.2006.00246.x
  • Yu, Y., Harris, A. J., & He, X. (2010). S-DIVA (Statistical Dispersal-Vicariance Analysis): A tool for inferring biogeographic histories. Molecular Phylogenetics and Evolution, 56, 848–850. https://doi.org/10.1016/j.ympev.2010.04.011
  • Yu, Y., Harris, A. J., Blair, C., & He, X. J. (2015). RASP (Reconstruct Ancestral State in Phylogenies): A tool for historical biogeography. Molecular Phylogenetics and Evolution, 87, 46–49. https://doi.org/10.1016/j.ympev.2015.03.008
  • Zaksek, V., Sket, B., & Trontelj, P. (2007). Phylogeny of the cave shrimp Troglocaris: Evidence of a young connection between Balkans and Caucasus. Molecular Phylogenetics and Evolution, 42, 223–235. https://doi.org/10.1016/j.ympev.2006.07.009

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