A New Species of Plasmodium of the Subgenus Novyella Infecting White-Shouldered Fire-Eyes (Pyriglena leucoptera) (Aves: Thamnophilidae) in Brazil

Luiz Gustavo Magalhães Alves , Pedro Henrique Oliveira Pereira , Vitória Loiola Batista , Leonardo Esteves Lopes , Érika Martins Braga

Integrative Zoology ›› 2026, Vol. 21 ›› Issue (1) : 192 -202.

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Integrative Zoology ›› 2026, Vol. 21 ›› Issue (1) :192 -202. DOI: 10.1111/1749-4877.70002
ORIGINAL ARTICLE
A New Species of Plasmodium of the Subgenus Novyella Infecting White-Shouldered Fire-Eyes (Pyriglena leucoptera) (Aves: Thamnophilidae) in Brazil
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Abstract

Bird parasites belonging to the genus Plasmodium (Haemosporida: Plasmodiidae) are found worldwide, with over 50 described species categorized into five subgenera. The subgenus Novyella comprises 22 morphologically identified species, of which 59% are genetically associated with at least one haplotype. In the Americas, only three morphospecies have their microscopic characteristics linked to a molecular signature. In this study, we described a new species of Plasmodium (Novyella) infecting a white-shouldered fire-eye (Pyriglena leucoptera) in Brazil. Molecular analysis reveals that the new species, associated with the lineage PYLEU01, is closely genetically related to Plasmodium (Novyella) homopolare, exhibiting a genetic divergence of 4.18%. However, it differs from P. homopolare due to the presence of many mature amoeboid trophozoites and some young meronts located laterally in relation to the erythrocyte nuclei and the smaller average number of merozoites in mature erythrocytic meronts. Morphology of blood stages of new species is most similar to Plasmodium vaughani and Plasmodium rouxi, but is different from these parasites due to the presence of predominantly 4 merozoites in mature erythrocytic meronts (not characteristic of P. vaughani) and the presence of 5–6 merozoites in some mature erythrocytic meronts (not characteristic of P. rouxi). Our integrative analyses reveal that the newly described species represents a distinct Plasmodium parasite from other Novyella morphospecies.

Keywords

avian haemosporidians / bird parasites / Brazil / integrative taxonomy / Plasmodium

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Luiz Gustavo Magalhães Alves, Pedro Henrique Oliveira Pereira, Vitória Loiola Batista, Leonardo Esteves Lopes, Érika Martins Braga. A New Species of Plasmodium of the Subgenus Novyella Infecting White-Shouldered Fire-Eyes (Pyriglena leucoptera) (Aves: Thamnophilidae) in Brazil. Integrative Zoology, 2026, 21(1): 192-202 DOI:10.1111/1749-4877.70002

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References

[1]

Arriero, E., and A. P. Møller. 2008. “Host Ecology and Life-History Traits Associated with Blood Parasite Species Richness in Birds.” Journal of Evolutionary Biology 21: 1504–1513.

[2]

Bennett, G. F., and A. G. Campbell. 1972. “Avian Haemoproteidae. I. Description of Haemoproteus fallisi n. sp. and a Review of the Haemoproteids of the Family Turdidae.” Canadian Journal of Zoology 50: 1269–1275.

[3]

Bensch, S., O. Hellgren, and J. Pérez-Tris. 2009. “MalAvi: A Public Database of Malaria Parasites and Related Haemosporidians in Avian Hosts Based on Mitochondrial Cytochrome b Lineages.” Molecular Ecology Resources 9: 1353–1358.

[4]

Bensch, S., J. Pérez-Tris, J. Waldenström, and O. Hellgren. 2004. “Linkage Between Nuclear and Mitochondrial DNA Sequences in Avian Malaria Parasites: Multiple Cases of Cryptic Speciation?.” Evolution; International Journal of Organic Evolution 58: 1617–1621.

[5]

Clark, N. J., S. M. Clegg, and M. R. Lima. 2014. “A Review of Global Diversity in Avian Haemosporidians (Plasmodium and Haemoproteus: Haemosporida): New Insights from Molecular Data.” International Journal for Parasitology 44: 329–338.

[6]

Fecchio, A., C. R. Chagas, J. A. Bell, and K. Kirchgatter. 2020. “Evolutionary Ecology, Taxonomy, and Systematics of Avian Malaria and Related Parasites.” Acta Tropica 204: 105364.

[7]

Fecchio, A., M. R. Lima, J. A. Bell, et al. 2021. “Loss of Forest Cover and Host Functional Diversity Increases Prevalence of Avian Malaria Parasites in the Atlantic Forest.” International Journal for Parasitology 51: 719–728.

[8]

Galen, S. C., J. Borner, E. S. Martinsen, et al. 2018. “The Polyphyly of Plasmodium: Comprehensive Phylogenetic Analyses of the Malaria Parasites (Order Haemosporida) Reveal Widespread Taxonomic Conflict.” Royal Society Open Science 5: 171780.

[9]

Godfrey, R. D. Jr, A. M. Fedynich, and D. B. Pence. 1987. “Quantification of Hematozoa in Blood Smears.” Journal of Wildlife Diseases 23: 558–565.

[10]

Harvey, M. G., G. A. Bravo, S. Claramunt, et al. 2020. “The Evolution of a Tropical Biodiversity Hotspot.” Science 370: 1343–1348. https://doi.org/10.1126/science.aaz6970.

[11]

Hellgren, O., A. Križanauskienė, G. Valkiūnas, and S. Bensch. 2007. “Diversity and Phylogeny of Mitochondrial Cytochrome B Lineages from Six Morphospecies of Avian Haemoproteus (Haemosporida, Haemoproteidae).” Journal of Parasitology 93: 889–896.

[12]

Hellgren, O., J. Waldenström, and S. Bensch. 2004. “A PCR Assay for Simultaneous Studies of Leucocytozoon, Plasmodium, and Haemoproteus from Avian Blood.” Journal of Parasitology 90: 797–802. https://doi.org/10.1645/GE-184R1.

[13]

Huff, C. G. 1935. “Plasmodium hexamerium, n. sp. from the Bluebird, Inoculable to Canaries.” American Journal of Hygiene 22: 274–277.

[14]

Lacorte, G. A., G. M. Felix, R. R. Pinheiro, et al. 2013. “Exploring the Diversity and Distribution of Neotropical Avian Malaria Parasites—A Molecular Survey from Southeast Brazil.” PLoS ONE 8: e57770.

[15]

Mantilla, J. S., A. D. González, G. Valkiūnas, L. I. Moncada, and N. E. Matta. 2013. “Description and Molecular Characterization of Plasmodium (Novyella) unalis sp. nov. from the Great Thrush (Turdus fuscater) in Highland of Colombia.” Parasitology Research 112: 4193–4204.

[16]

Manwell, R. D. 1935. “How Many Species of Avian Malaria Parasites Are There?” The American Journal of Tropical Medicine and Hygiene 15: 265–283. https://doi.org/10.4269/ajtmh.1935.s1-15.265.

[17]

Martínez-de la Puente, J., S. Merino, G. Tomás, J. Moreno, et al. 2010. “The Blood Parasite Haemoproteus Reduces Survival in a Wild Bird: A Medication Experiment.” Biology Letters 6: 663–665.

[18]

Marzal, A., F. D. Lope, C. Navarro, and A. P. Møller. 2005. “Malarial Parasites Decrease Reproductive Success: An Experimental Study in a Passerine Bird.” Oecologia 142: 541–545.

[19]

Minh, B. Q., H. A. Schmidt, O. Chernomor, et al. 2020. “IQ-TREE 2: New Models and Efficient Methods for Phylogenetic Inference in the Genomic Era.” Molecular Biology Evolution 37: 1530–1534. https://doi.org/10.1093/molbev/msaa015.

[20]

Mohammed, A. H. 1958. Systematic and Experimental Studies on Protozoal Blood Parasites of Egyptian Birds. Vols. I & II. Cairo University Press.

[21]

Motta, R. O. C., M. V. R. Marques, F. C. F. Junior, et al. 2013. “Does Haemosporidian Infection Affect Hematological and Biochemical Profiles of the Endangered Black-Fronted Piping-Guan (Aburria jacutinga)?” PeerJ 1: e45.

[22]

Novy, F. G., and W. J. MacNeal. 1904. “Trypanosomes and Bird Malaria.” Proceedings of the Society for Experimental Biology and Medicine 2: 23–28.

[23]

Pacheco, M. A., A. S. Cepeda, R. Bernotienė, et al. 2018. “Primers Targeting Mitochondrial Genes of Avian Haemosporidians: PCR Detection and Differential DNA Amplification of Parasites Belonging to Different Genera.” International Journal for Parasitology 48: 657–670.

[24]

Pacheco, M. A., and A. A. Escalante. 2023. “Origin and Diversity of Malaria Parasites and Other Haemosporida.” Trends in Parasitology 39: 501–516.

[25]

Palinauskas, V., J. Martínez-de-la-Puente, S. R. Hernández-Soto, and A. Marzal. 2020. “Experimental Parasitology and Ecoimmunology: Concepts and Opportunities in Avian Haemosporidian Studies.” In Avian Malaria and Related Parasites in the Tropics: Ecology, Evolution and Systematics, edited by D. Santiago-Alarcon and A. Marzal, 527–558. Springer.

[26]

Palinauskas, V., R. Žiegytė, M. Ilgūnas, et al. 2015. “Description of the First Cryptic Avian Malaria Parasite, Plasmodium homocircumflexum n. sp., With Experimental Data on Its Virulence and Development in Avian Hosts and Mosquitoes.” International Journal for Parasitology 45: 51–62.

[27]

Perkins, S. L. 2000. “Species Concepts and Malaria Parasites: Detecting a Cryptic Species of Plasmodium.” Proceedings of the Royal Society of London B: Biological Sciences 267: 2345–2350.

[28]

Ridgely, R. S., and G. Tudor. 2009. Field Guide to the Songbirds of South America: The Passerines. University of Texas Press.

[29]

Ronquist, F., M. Teslenko, P. van der Mark, et al. 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.

[30]

Sambrook, J., and D. W. Russell. 2001. Molecular Cloning: A Laboratory Manual. 3rd ed. Cold Spring Harbor Laboratory Press.

[31]

Samuel, M. D., B. L. Woodworth, C. T. Atkinson, P. J. Hart, and D. A. LaPointe. 2015. “Avian Malaria in Hawaiian Forest Birds: Infection and Population Impacts Across Species and Elevations.” Ecosphere 6, no. 6: 1–21. https://doi.org/10.1890/ES14-00393.1.

[32]

Santiago-Alarcon, D., A. Marzal, G. Valkiūnas, et al. 2020. Avian Malaria and Related Parasites in the Tropics: Ecology, Evolution, and Systematics. Springer.

[33]

Schneider, C. A., W. S. Rasband, and K. W. Eliceiri. 2012. “NIH Image to ImageJ: 25 Years of Image Analysis.” Nature Methods 9: 671–675. https://doi.org/10.1038/nmeth.2089.

[34]

Sergent, E., E.t Sergent, and A. Catanei. 1928. “A New Malaria Parasite of Birds.” Compte Rendu De L'academie Des Sciences 186: 809–811.

[35]

Tamura, K., G. Stecher, and S. Kumar. 2021. “MEGA11: Molecular Evolutionary Genetics Analysis Version 11.” Molecular Biology and Evolution 38: 3022–3027.

[36]

Valkiūnas, G. 2005. Avian Malaria Parasites and Other Haemosporidia. CRC Press.

[37]

Valkiūnas, G., C. T. Atkinson, S. Bensch, R. N. Sehgal, and R. E. Ricklefs. 2008a. “Parasite Misidentifications in GenBank: How to Minimize Their Number?” Trends in Parasitology 24: 247–248.

[38]

Valkiūnas, G., and T. A. Iezhova. 2018. “Keys to the Avian Malaria Parasites.” Malaria Journal 17: 1–24.

[39]

Valkiūnas, G., T. A. Iezhova, A. Križanauskienė, V. Palinauskas, and S. Bensch. 2008b. “In Vitro Hybridization of Haemoproteus spp.: An Experimental Approach for Direct Investigation of Reproductive Isolation of Parasites.” Journal of Parasitology 94: 1385–1394.

[40]

Valkiūnas, G., T. A. Iezhova, C. Loiseau, T. B. Smith, and R. N. Sehgal. 2009. “New Malaria Parasites of the Subgenus Novyella in African Rainforest Birds, with Remarks on Their High Prevalence, Classification and Diagnostics.” Parasitology Research 104: 1061–1077.

[41]

Valkiūnas, G., M. Ilgūnas, D. Bukauskaitė, et al. 2019. “Molecular Characterization of Six Widespread Avian Haemoproteids, with Description of Three New Haemoproteus Species.” Acta Tropica 197: 105051. https://doi.org/10.1016/j.actatropica.

[42]

Van Riper III, C., S. G. Van Riper, M. L. Goff, and M. Laird. 1986. “The Epizootiology and Ecological Significance of Malaria in Hawaiian Land Birds.” Ecological Monographs 56: 327–344. https://doi.org/10.2307/1942550.

[43]

Walther, E. L., G. Valkiūnas, A. D. González, et al. 2014. “Description, Molecular Characterization, and Patterns of Distribution of a Widespread New World Avian Malaria Parasite (Haemosporida: Plasmodiidae), Plasmodium (Novyella) homopolare sp. nov.” Parasitology Research 113: 3319–3332.

[44]

Zimmer, K., and M. L. Isler. 2020. “White-Shouldered Fire-Eye (Pyriglena leucoptera), Version 1.0.” In Birds of the World, edited by J. Hoyo, A. Elliott, J. Sargatal, D. A. Christie, and E. Juana. Cornell Lab of Ornithology. https://doi.org/10.2173/bow.wsfeye1.01.

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