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Journal Abstract Search


117 related items for PubMed ID: 36197732

  • 1. PHYLOGENETIC ANALYSIS OF THE LUNGWORMS (NEMATODA: METASTRONGYLOIDEA) INFERRED USING NUCLEAR RIBOSOMAL AND MITOCHONDRIAL DNA SEQUENCES.
    Carreno RA, Nadler SA.
    J Parasitol; 2022 Sep 01; 108(5):441-452. PubMed ID: 36197732
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  • 2. Phylogenetic analysis of the Metastrongyloidea (Nematoda: Strongylida) inferred from ribosomal RNA gene sequences.
    Carreno RA, Nadler SA.
    J Parasitol; 2003 Oct 01; 89(5):965-73. PubMed ID: 14627145
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  • 3. Molecular phylogeny of the Pseudaliidae (Nematoda) and the origin of associations between lungworms and marine mammals.
    Pool R, Shiozaki A, Raga JA, Fernández M, Aznar FJ.
    Int J Parasitol Parasites Wildl; 2023 Apr 01; 20():192-202. PubMed ID: 36969083
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  • 4. Molecular phylogeny of the carnivora (mammalia): assessing the impact of increased sampling on resolving enigmatic relationships.
    Flynn JJ, Finarelli JA, Zehr S, Hsu J, Nedbal MA.
    Syst Biol; 2005 Apr 01; 54(2):317-37. PubMed ID: 16012099
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  • 5. Morphology and genetic characterization of Physaloptera sibirica Petrow & Gorbunov, 1931 (Spirurida: Physalopteridae), from the hog-badger Arctonyx collaris Cuvier (Carnivora: Mustelidae), with molecular phylogeny of Physalopteridae.
    Chen HX, Zeng JL, Gao YY, Zhang D, Li Y, Li L.
    Parasit Vectors; 2023 Jul 07; 16(1):227. PubMed ID: 37420256
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  • 6. Monophyly of clade III nematodes is not supported by phylogenetic analysis of complete mitochondrial genome sequences.
    Park JK, Sultana T, Lee SH, Kang S, Kim HK, Min GS, Eom KS, Nadler SA.
    BMC Genomics; 2011 Aug 03; 12():392. PubMed ID: 21813000
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  • 7. Phylogenetics and systematics of Angiostrongylus lungworms and related taxa (Nematoda: Metastrongyloidea) inferred from the nuclear small subunit (SSU) ribosomal DNA sequences.
    Eamsobhana P, Lim PE, Yong HS.
    J Helminthol; 2015 May 03; 89(3):317-25. PubMed ID: 24622302
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  • 8. Evaluation and utility of mitochondrial ribosomal genes for molecular systematics of parasitic nematodes.
    Chan AHE, Chaisiri K, Morand S, Saralamba N, Thaenkham U.
    Parasit Vectors; 2020 Jul 20; 13(1):364. PubMed ID: 32690073
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  • 11. Phylogenetic relationships of Steinernema Travassos, 1927 (Nematoda: Cephalobina: Steinernematidae) based on nuclear, mitochondrial and morphological data.
    Nadler SA, Bolotin E, Stock SP.
    Syst Parasitol; 2006 Mar 20; 63(3):161-81. PubMed ID: 16541298
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  • 12. New insights into polychaete phylogeny (Annelida) inferred from 18S rDNA sequences.
    Bleidorn C, Vogt L, Bartolomaeus T.
    Mol Phylogenet Evol; 2003 Nov 20; 29(2):279-88. PubMed ID: 13678683
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  • 13. Phylogenetic relationships of artiodactyls and cetaceans as deduced from the comparison of cytochrome b and 12S rRNA mitochondrial sequences.
    Montgelard C, Catzeflis FM, Douzery E.
    Mol Biol Evol; 1997 May 20; 14(5):550-9. PubMed ID: 9159933
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  • 14. Molecular characterization and phylogeny of whipworm nematodes inferred from DNA sequences of cox1 mtDNA and 18S rDNA.
    Callejón R, Nadler S, De Rojas M, Zurita A, Petrášová J, Cutillas C.
    Parasitol Res; 2013 Nov 20; 112(11):3933-49. PubMed ID: 24018707
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  • 15. Phylogeny of Tubificidae (Annelida, Clitellata) based on mitochondrial and nuclear sequence data.
    Sjölin E, Erséus C, Källersjö M.
    Mol Phylogenet Evol; 2005 May 20; 35(2):431-41. PubMed ID: 15804413
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  • 20. Evolutionary relationships among the protostrongylidae (Nematoda: Metastrongyloidea) as inferred from morphological characters, with consideration of parasite-host coevolution.
    Carreno RA, Hoberg EP.
    J Parasitol; 1999 Aug 20; 85(4):638-48. PubMed ID: 10461943
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