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Type: Article
Published: 2018-12-03
Page range: 576–588
Abstract views: 68
PDF downloaded: 2

A new species of the genus Eudorylaimus Andrássy, 1959 (Nematoda: (Dorylaimida: Qudsianematidae) associated with Picea crassifolia in China

Lab of Plant Nematology/Research Center of Nematodes of Plant Quarantine, Department of Plant Pathology/Guangdong Province Key Laboratory of Microbial Signals and Disease Control, College of Agriculture, South China Agricultural University, Guangzhou, Guangdong, China Key Laboratory of Vegetation Restoration and Management of Degraded Ecosystems, South China Botanical Garden, Chinese Academy of Sciences, Guangzhou, Guangdong 510160, China
Lab of Plant Nematology/Research Center of Nematodes of Plant Quarantine, Department of Plant Pathology/Guangdong Province Key Laboratory of Microbial Signals and Disease Control, College of Agriculture, South China Agricultural University, Guangzhou, Guangdong, China
Lab of Plant Nematology/Research Center of Nematodes of Plant Quarantine, Department of Plant Pathology/Guangdong Province Key Laboratory of Microbial Signals and Disease Control, College of Agriculture, South China Agricultural University, Guangzhou, Guangdong, China
Lab of Plant Nematology/Research Center of Nematodes of Plant Quarantine, Department of Plant Pathology/Guangdong Province Key Laboratory of Microbial Signals and Disease Control, College of Agriculture, South China Agricultural University, Guangzhou, Guangdong, China
Nematoda morphology phylogeny new characteristics

Abstract

A new species, Eudorylaimus piceae n. sp., extracted from rhizosphere soil of Picea crassifolia from Inner Mongolia, China was identified. The new species is characterized by these combined characters: body length of 1.03–1.27 mm; lip region distinctly offset; odontostyle 20–22 μm and 1.1–1.4 times the lip region diameter in length; odontophore 1.1–1.2 times the odontostyle length; basal expansion of pharynx occupying 42%–50.5% of the total neck length; genital system didelphic-amphidelphic; vulva transverse; vagina extending inwards 32%–43%; V value averaging more than 60; pars refringens vaginae with two trapezoidal sclerotizations and pars distalis vaginae weakly sclerotized; prerectum 72–107 μm long, 2.3–3.3 times the anal body diameter, and rectum 1–1.6 times the anal body diameter in length; tail conoid and bent ventrally, c’ value 1.5–1.8 and males unknown. Phylogenetic analyses based on sequences of 18S small subunit rDNA and the D2-D3 expansion region of 28S rDNA are presented.

 

References

  1. Abebe, E., Decraemer, W. & De Ley, P. (2008) Global diversity of nematodes (Nematoda) in freshwater. Hydrobiologia, 595, 67–78.

    https://doi.org/10.1007/s10750-007-9005-5

    Altherr, E. (1953) Nématodes du sol du Jura vaudois et francais. Bulletin de la Société vaudoise des Sciences naturelles, 65, 429–460.

    Álvarez-Ortega, S. & Peña-Santiago, R. (2016) Aporcella charidemiensis sp. n. (Dorylaimida: Aporcelaimidae) from the southern Iberian Peninsula, with comments on the phylogeny of the genus. Nematology, 18, 811–821.

    https://doi.org/10.1163/15685411-00002995

    Álvarez-Ortega, S., Nguyen T.A.D., Abolafia, J., Vu, T.T.T. & Peña-Santiago, R. (2015) Three new species of the genus Aporcelaimoides Heyns, 1965 from Vietnam (Nematoda, Dorylaimida, Aporcelaimidae), with an updated taxonomy of the genus. ZooKeys, 516, 1–26.

    https://doi.org/10.3897/zookeys.516.10087

    Álvarez-Ortega, S., Subbotin, S.A. & Peña-Santiago, R. (2013) Morphological and molecular characterisation of Aporcelaimellus simplex (Thorne & Swanger, 1936) Loof & Coomans, 1970 and a new concept for Aporcella Andrássy, 2002 (Dorylaimida: Aporcelaimidae). Nematology, 15, 165–178.

    https://doi.org/10.1163/156854112X651320

    Andrássy, I. (1986) The genus Eudorylaimus Andrássy, 1959 and the present status of its species (Nematoda: Qudsianematidae). Opuscula Zoologica Budapestinensis, 22, 3–42.

    Andrássy, I. (1991) The superfamily Dorylaimoidea (Nematoda)—a review family Qudsianematidae, II. Opuscula Zoologica Budapestinensis, 24, 3–55.

    Andrássy, I. (2009) Free-living nematodes of Hungary (Nematoda errantia). III. Pedozoologica Hungarica 5. Hungarian Natural History Museum and Systematic Research Group of the Hungarian Academy of Sciences, Budapest, 608 pp.

    Bongers, T. & Bongers, M. (1998) Functional diversity of nematodes. Applied Soil Ecology, 10, 239–251.

    https://doi.org/10.1016/S0929-1393(98)00123-1

    Bongers, T. & Ferris, H. (1999) Nematode community structure as a bioindicator in environmental monitoring. Trends in Ecological Evolution, 14, 224–228.

    https://doi.org/10.1016/S0169-5347(98)01583-3

    De Ley, P., Félix, M.A., Frisse, L.M., Nadler, S.A., Sternberg, P.W. & Thomas, W.K. (1999) Molecular and morphological characterisation of two reproductively isolated species with mirror-image anatomy (Nematoda: Cephalobidae). Nematology, 1, 591–612.

    https://doi.org/10.1163/156854199508559

    De Ley, P., Loof, P.A.A. & Coomans, A. (1993) Terrestrial nematodes from the Galápagos Archipelago II: Redescription of Aporcelaimellus obtusicaudatus (Bastian, 1865) Altherr, 1968, with review of similar species and a nomenclature for the vagina in Dorylaimida (Nematoda). Bulletin de l'Institut Royal des Sciences Naturelles de Belgique Biologie, 63, 13–34.

    Holterman, M., van der Wurff, A., van den Elsen, S., van Megen, H., Bongers, T., Holovachov, O., Bakker, J. & Helder, J. (2006) Phylum-wide analysis of SSU rDNA reveals deep phylogenetic relationships among nematodes and accelerated evolution toward crown clades. Molecular Biology and Evolution, 23, 1792–1800.

    https://doi.org/10.1093/molbev/msl044

    Kishino, H. & Hasegawa, M. (1989) Evaluation of the maximum likelihood estimate of the evolutionary tree topologies from DNA sequence data, and the branching order in Hominoidea. Journal of Molecular Evolution, 29, 170–179.

    https://doi.org/10.1007/BF02100115

    Moslehi, S., Niknam, G. & Ashrafi, M. (2012) One new and four known species of the genus Eudorylaimus Andrássy, 1959 (Dorylaimida: Qudsianematidae) from Iran. International Journal of Nematology, 22, 30–40.

    Nedelchev, S., Elshishka, M., Lazarova, S., Radoslavov, G., Hristov, P. & Peneva, V. (2014) Calcaridorylaimus castaneae sp. n. (Nematoda, Dorylaimidae) from Bulgaria with an identification key to the species of the genus. ZooKeys, 12, 41–61.

    Peña-Santiago, R. & Ciobanu, M. (2008) The genus Crassolabium Yeates, 1967 (Dorylaimida: Qudsianematidae): diagnosis, list and compendium of species, and key to their identification. Russian Journal of Nematology, 16, 77–95.

    Pereira, T.L., Santos, U., Schaefer, C.E., Souza, G.O., Paiva, S.R., Malabarba, L.R., Schmidt, E.E. & Dergam, J.A. (2013) Dispersal and vicariance of Hoplias malabaricus (Bloch, 1794) (Teleostei, Erythrinidae) populations of the Brazilian continental margin. Journal of Biogeography, 40, 905–914.

    https://doi.org/10.1111/jbi.12044

    Ritz, K. & Trudgill, D.L. (1999) Utility of nematode community analysis as an integrated measure of functional state of soils: Perspectives and challenges. Plant Soil, 212, 1–11.

    https://doi.org/10.1023/A:1004673027625

    Ronquist, F., Teslenko, M., van der Mark, P., Ayres, D.L., Darling, A., Höhna, S., Larget, B., Liu, L., Suchard, M.A. & Huelsenbeck, J.P. (2012) MrBayes 3.2: efficient Bayesian phylogenetic inference and model choice across a large model space. Systematic Biology, 61, 539–542.

    https://doi.org/10.1093/sysbio/sys029

    Schmidt, H.A., Strimmer, K., Vingron, M. & von Haeseler, A. (2002) TREE-PUZZLE: maximum likelihood phylogenetic analysis using quartets and parallel computing. Bioinformatics, 18, 502–504.

    https://doi.org/10.1093/bioinformatics/18.3.502

    Shimodaira, H. (2002) An approximately unbiased test of phylogenetic tree selection. Systematic Biology, 51, 492–508.

    https://doi.org/10.1080/10635150290069913

    Shimodaira, H. & Hasegawa, M. (1999) Multiple comparisons of log-likelihoods with applications to phylogenetic inference. Molecular Biology and Evolution, 16, 1114–1116.

    https://doi.org/10.1093/oxfordjournals.molbev.a026201

    Shimodaira, H. & Hasegawa, M. (2001) CONSEL: for assessing the confidence of phylogenetic tree selection. Bioinformatics, 17, 1246–1247.

    https://doi.org/10.1093/bioinformatics/17.12.1246

    Tamura, K., Peterson, D., Peterson, N., Stecher, G., Nei, M. & Kumar, S. (2011) MEGA5: molecular evolutionary genetics analysis using maximum likelihood, evolutionary distance, and maximum parsimony methods. Molecular Biology and Evolution, 28, 2731–2739.

    https://doi.org/10.1093/molbev/msr121

    Thorne, G. (1974) Nematodes of the Northern Great Plains. Part II. Dorylaimoidea in part (Nemata: Adenophorea). Technical Bulletin, 41, 1–120.

    Thorne, G. & Swanger, H.H. (1936) A monograph of the nematode genera Dorylaimus Dujardin, Aporcelaimus n. g., Dorylaimoides n. g. and Pungentus n. g. Capita Zoologica, 6, 1–223.

    Tjepkema, J.P., Ferris, V.R. & Ferris, J.M. (1971) Review of the genus Aporcelaimellus Heyns, 1965 and six species groups of the genus Eudorylaimus Andrássy, 1959 (Nematoda: Dorylaimida). Purdue University Agricultural Experiment Station Research Bulletin, 882, 1–52.

    Whitehead, A.G. & Hemming, J.R. (1965) A comparison of some quantitative methods of extracting small vermiform nematodes from soil. Annals of Applied Biology, 55, 25–38.

    https://doi.org/10.1111/j.1744-7348.1965.tb07864.x

    Wu, W.J., Huang, X., Xie, H., Wang, K. & Xu, C.L. (2017) Morphometrics and molecular analysis of the free-living nematode, Belondira bagongshanensis n. sp. (Dorylaimida, Belondiridae) from China. Journal of Helminthology, 91, 7–13.

    https://doi.org/10.1017/S0022149X15001091

    Xie, H. (2005) Taxonomy of plant nematodes. 2nd Edition. Higher Education Press, Beijing, 435 pp.

    Yeates, G.W. (2003) Nematodes as soil indicators: Functional and biodiversity aspects. Biology and Fertility of Soils, 37, 199–210.

    Yeates, G.W. & Bongers, T. (1999) Nematode diversity in agroecosystems. Agriculture, Ecosystems and Environment, 74, 113–135.

    https://doi.org/10.1016/S0167-8809(99)00033-X