Efficacy of Ethanolic Extract of Malapapaya (Polyscias nodosa) and Atis (Annona squamosa) as a Natural Larvicide Against Culex tritaeniorhynchus Mosquito Larvae

Authors

DOI:

https://doi.org/10.5281/zenodo.19353422

Keywords:

annona squamosa, culex tritaeniorhynchus, polyscias nodosa, plant-based larvicide, mosquito control.

Abstract

Mosquito-borne diseases remain a significant public health concern, particularly in tropical regions where environmental conditions favor mosquito breeding and rapid population growth. The increasing resistance of mosquitoes to synthetic insecticides, along with the environmental and health risks associated with chemical larvicides, has intensified the search for eco-friendly, sustainable, and locally available alternatives. This study evaluated the larvicidal efficacy of combined plant extracts from Malapapaya (Polyscias nodosa) leaves and Atis (Annona squamosa) seeds against Culex tritaeniorhynchus mosquito larvae. Ethanolic extracts of both plant materials were prepared through maceration and tested at five concentrations: 0% (control), 25%, 50%, 75%, and 100%, using a controlled larvicidal bioassay under laboratory conditions. A total of 20 larvae were exposed per treatment group, and larval mortality was recorded after 24 and 48 hours of exposure. The collected data were analyzed using descriptive statistics to determine the effectiveness of each concentration. Results showed complete (100%) larval mortality in all treatment concentrations within 24 hours, while no mortality was observed in the control group. No additional mortality was recorded at 48 hours, indicating a rapid larvicidal effect immediately upon exposure to the extracts. The strong larvicidal activity observed across all tested concentrations suggests that the bioactive compounds present in P. nodosa and A. squamosa may effectively disrupt essential physiological processes in mosquito larvae. The consistency of mortality across different concentrations further indicates that even lower concentrations may be sufficient for effective mosquito control. These findings highlight the potential of combined Malapapaya and Atis extracts as eco-friendly, sustainable, and cost-effective botanical larvicides, offering a promising alternative to conventional chemical mosquito control strategies, particularly in resource-limited communities and tropical settings.

References

Azwanida, N. N. (2015). A review on the extraction methods use in medicinal plants, principle, strength and limitation. Medicinal & Aromatic Plants, 4(3), 1–6. https://doi.org/10.4172/2167-0412.1000196

Bhatt, S., Gething, P. W., Brady, O. J., Messina, J. P., Farlow, A. W., Moyes, C. L., & Hay, S. I. (2013). The global distribution and burden of dengue. Nature, 496(7446), 504–507. https://doi.org/10.1038/nature12060

De Silva, L. L. S., Fernandes, K. M., Miranda, F. R., Silva, S. C. C., Coelho, L. C. B. B., Navarro, D. M. A. F., & Napoleão, T. H. (2019). Exposure of mosquito (Aedes aegypti) larvae to the water extract and lectin-rich fraction of Moringa oleifera seeds impairs their development and future fecundity. Ecotoxicology and Environmental Safety, 183, 109583. https://doi.org/10.1016/j.ecoenv.2019.109583

Engdahl, C., Knudsen, J. T., Christensen, S. B., & Jørgensen, L. (2022). Discovery of novel natural products for mosquito control. Scientific Reports, 12, 19834. https://doi.org/10.1038/s41598-022-24104-y

GMA News. (2025, January 16). Above-normal rainfall floods parts of Mindanao; CDO among affected cities. GMA Integrated News. https://www.gmanetwork.com/news/

Hellhammer, F., Heinig-Hartberger, M., Neuhof, P., Teitge, F., Jung-Schroers, V., & Becker, S. C. (2023). Impact of different diets on the survival, pupation, and adult emergence of Culex pipiens biotype molestus larvae, and infectability with the insect-specific Culex Y virus. Frontiers in Tropical Diseases, 4, Article 1107857. https://www.frontiersin.org/articles/10.3389/fitd.2023.1107857

Kamaraj, C., Rahuman, A. A., Bagavan, A., & Elango, G. (2011). Larvicidal activity of medicinal plant extracts against Anopheles stephensi and Culex quinquefasciatus. Asian Pacific Journal of Tropical Medicine, 4(12), 948–953. https://doi.org/10.1016/S1995-7645(11)60223-9

Lawler, S. P. (2017). Environmental safety review of methoprene and bacterially-derived pesticides commonly used for sustained mosquito control. Ecotoxicology and Environmental Safety, 139, 335–343. https://doi.org/10.1016/j.ecoenv.2017.01.004

Lessard, B. D., Kurucz, N., Rodriguez, J., Carter, J., & Hardy, C. M. (2021). Detection of the Japanese encephalitis vector mosquito Culex tritaeniorhynchus in Australia using molecular diagnostics and morphology. Parasites & Vectors, 14, Article 411. https://doi.org/10.1186/s13071-021-04911-2

PAGASA. (2025, January 15). PAGASA says above-normal rainfall expected in Mindanao due to Northeast Monsoon. Philippine Atmospheric, Geophysical and Astronomical Services Administration. https://www.pagasa.dost.gov.ph/

Pavela, R. (2015). Essential oils for the development of eco-friendly mosquito larvicides: A review. Industrial Crops and Products, 76, 174–187. https://doi.org/10.1016/j.indcrop.2015.06.050

Ragasa, C. Y., Ebajo, V. D., De Los Reyes, M. M., Brkljača, R., & Urban, S. (2015). Chemical constituents of Polyscias nodosa. Research Journal of Pharmaceutical, Biological and Chemical Sciences, 6(5), 1210–1214. https://www.rjpbcs.com/

Rawani, A., Ghosh, A., Chandra, G. (2010). Mosquito larvicidal potential of Annona squamosa seed extract against Culex quinquefasciatus. Journal of Mosquito Research, 1(1), 1–6. https://biopublisher.ca/index.php/jmr/article/view/36

Şengül Demirak, E., & Canpolat, S. (2022). Plant-based bioinsecticides for mosquito control: Impact on insecticide resistance and disease transmission. Insects, 13, 702. https://doi.org/10.3390/insects13080702

Downloads

Published

2026-03-31

How to Cite

Efficacy of Ethanolic Extract of Malapapaya (Polyscias nodosa) and Atis (Annona squamosa) as a Natural Larvicide Against Culex tritaeniorhynchus Mosquito Larvae. (2026). The International Review of Multidisciplinary Research, 1(3). https://doi.org/10.5281/zenodo.19353422

Similar Articles

1-10 of 46

You may also start an advanced similarity search for this article.