Molecular characterization of the Plasmodium falciparum k13 gene helix domain in samples from native communities of Condorcanqui, Amazonas, Perú

Julio Sandoval-Bances , Milagros Saavedra-Samillán , Sonia Huyhua-Gutiérrez , Luis M. Rojas , Sonia Tejada-Muñoz , Rafael Tapia-Limonchi , Stella M. Chenet , .

Keywords: Plasmodium falciparum, malaria, drug resistance, Amazonian ecosystem, Perú

Abstract

Introduction. Resistance of Plasmodium falciparum to different antimalarial drugs is an obstacle to disease elimination. The artemisinin-resistant genotype of P. falciparum can be assessed by examining polymorphisms in the helix domain of the Pfk13 gene. The World Health Organization recommends these mutations as molecular markers to detect artemisinin-resistant in countries where P. falciparum malaria is endemic.
Objective. To identify artemisinin resistance-related mutations present in the helix domain of the P. falciparum k13 gene.
Materials and methods. We collected a total of 51 samples through passive case detection, positive for Plasmodium by microscopy, from six communities in the district of Río Santiago in Condorcanqui, Amazonas. Molecular species confirmation was performed by real-time PCR and Pfk13 helix domain was amplified and sequenced by capillary electrophoresis. The obtained sequences were compared with the wild type 3D7 reference strain.
Results. A total of 51 positive samples were confirmed for P. falciparum from the communities of Ayambis, Chapiza, Palometa, Muchinguis, Alianza Progreso and Caterpiza. DNA sequences alignment showed the absence of resistance-associated mutations in the k13 gene of the collected samples.
Discussion. The obtained results are consistent with similar studies conducted in other South American countries, including Perú, so these data provide a baseline for artemisinin-resistance molecular surveillance in the Amazon region and reinforce the efficacy of artemisinin-based combination therapy in this area.

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  • Julio Sandoval-Bances Instituto de Enfermedades Tropicales, Universidad Nacional Toribio Rodríguez de Mendoza de Amazonas, Triunfo, Chachapoyas, Perú https://orcid.org/0000-0003-2780-6103
  • Milagros Saavedra-Samillán Instituto de Enfermedades Tropicales, Universidad Nacional Toribio Rodríguez de Mendoza de Amazonas, Triunfo, Chachapoyas, Perú https://orcid.org/0000-0002-2217-9561
  • Sonia Huyhua-Gutiérrez Instituto de Enfermedades Tropicales, Universidad Nacional Toribio Rodríguez de Mendoza de Amazonas, Triunfo, Chachapoyas, Perú; Facultad de Ciencias de la Salud, Universidad Nacional Toribio Rodríguez de Mendoza de Amazonas, Triunfo, Chachapoyas, Perú https://orcid.org/0000-0003-4823-2778
  • Luis M. Rojas Dirección Regional de Salud de Amazonas, Chachapoyas, Perú https://orcid.org/0000-0001-8453-5501
  • Sonia Tejada-Muñoz Instituto de Enfermedades Tropicales, Universidad Nacional Toribio Rodríguez de Mendoza de Amazonas, Triunfo, Chachapoyas, Perú; Facultad de Ciencias de la Salud, Universidad Nacional Toribio Rodríguez de Mendoza de Amazonas, Triunfo, Chachapoyas, Perú https://orcid.org/0000-0002-1181-8540
  • Rafael Tapia-Limonchi Instituto de Enfermedades Tropicales, Universidad Nacional Toribio Rodríguez de Mendoza de Amazonas, Triunfo, Chachapoyas, Perú; Instituto de Investigaciones en Ciencias Biomédicas, Universidad Ricardo Palma, Lima, Perú https://orcid.org/0000-0001-7483-1729
  • Stella M. Chenet Instituto de Enfermedades Tropicales, Universidad Nacional Toribio Rodríguez de Mendoza de Amazonas, Triunfo, Chachapoyas, Perú; Instituto de Investigaciones en Ciencias Biomédicas, Universidad Ricardo Palma, Lima, Perú https://orcid.org/0000-0002-5305-0664

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How to Cite
1.
Sandoval-Bances J, Saavedra-Samillán M, Huyhua-Gutiérrez S, Rojas LM, Tejada-Muñoz S, Tapia-Limonchi R, et al. Molecular characterization of the Plasmodium falciparum k13 gene helix domain in samples from native communities of Condorcanqui, Amazonas, Perú. biomedica [Internet]. 2023 Sep. 30 [cited 2024 May 19];43(3):352-9. Available from: https://revistabiomedica.org/index.php/biomedica/article/view/6849

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Published
2023-09-30
Section
Original articles

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