Antiparasitic Activity of Copper and Calcium Oxides Loaded with Synadenium grantii Nanocomposites Against Waterborne Protozoan Pathogens: Giardia lamblia Cysts and Cryptosporidium parvum Oocysts

Bibliographic Information
Authors: Hanafy R.A.; Saad A.H.A.; Mostafa B.B.; Aly I.R.B.; Khalil M.T.; Azzam A.M.
Journal: Egyptian Journal of Aquatic Biology and Fisheries
Publisher: Egyptian Society for the Development of Fisheries and Human Health
Publication Date: 1 May 2026
Volume / Issue: Volume 30 / Issue 3
Pages: 4061–4079
ISSN: 11106131
DOI: 10.21608/ejabf.2026.504418.8212
Scopus: View on Scopus
Document Type: Article
Access: All Open Access; Gold Open Access
Authors and Affiliations
Hanafy R.A., Environmental Research Department, Theodor Bilharz Research Institute, Egypt; Saad A.H.A., Zoology Department, Faculty of Science, Ain-Shams University, Egypt; Mostafa B.B., Environmental Research Department, Theodor Bilharz Research Institute, Egypt; Aly I.R.B., Parasitology Department, Theodor Bilharz Research Institute, Egypt; Khalil M.T., Zoology Department, Faculty of Science, Ain-Shams University, Egypt; Azzam A.M., Environmental Research Department, Theodor Bilharz Research Institute, Egypt
Abstract
Waterborne protozoan pathogens, particularly Giardia lamblia and Cryptosporidium parvum, pose a severe risk to public health due to their high resilience to conventional water disinfection. This study investigates the synthesis, characterization, and antiparasitic efficacy of novel, eco-friendly nanocomposites fabricated by loading a Synadenium grantii (S) methanolic plant extract onto copper oxide (CuO) and calcium oxide (CaO) nanoparticles (S@CuO and S@CaO NCs). The synthesized materials were characterized using SEM, TEM, and FTIR. Cysts of G. lamblia and oocysts of C. parvum were exposed to various concentrations (0.5 to 4.0 mg/ml) of both NCs over exposure times ranging from 30 to 180 minutes. Furthermore, the environmental safety of these nanocomposites was evaluated via acute toxicity testing against the bioindicator Daphnia magna over 24 hours. Both S@CuO and S@CaO NCs demonstrated robust, time-and dose-dependent parasiticidal activity (p < 0.05). G. lamblia cysts showed higher sensitivity to S@CuO NCs (LC50-3h= 0.17 mg/ml), whereas C. parvum oocysts were more susceptible to S@CaO NCs (LC50-3h= 0.28 mg/ml). Mechanistically, pathogen elimination was driven by nanocomposite diffusion through membrane pores, cellular component leakage, and intracellular reactive oxygen species (ROS) generation, leading to cell wall disintegration. Crucially, ecotoxicity assays confirmed that the tested parasiticidal concentrations showed a favorable safety profile for D. magna, inducing negligible mortality (≤ 8%). These findings demonstrate that biogenic S@CuO and S@CaO nanocomposites are highly effective, rapid, and ecologically sustainable candidates for advanced wastewater treatment and parasite control. © 2026, Egyptian Society for the Development of Fisheries and Human Health. All rights reserved.
Keywords
CaO; Cryptosporidium parvum; CuO; Giardia lamblia; Nanocomposites; Synadenium grantii
Citation Information
Scopus Citations: 0
For comprehensive information about the Theodor Bilharz Research Institute (TBRI), its institutional activities, scientific and research achievements, clinical and hospital services, and the diverse expertise offered through its 22 specialized research and clinical departments, as well as opportunities for professional training, specialized workshops, and scientific conferences, readers are invited to visit the Institute’s official website.
The website provides regularly updated information on the Institute’s latest news, research activities, scientific initiatives, clinical services, institutional programs, and academic and professional opportunities.
English Website: https://www.tbri.sci.eg/en/
Arabic Website: https://www.tbri.sci.eg/ar/
Prepared and Uploaded by:
Abdalla F. Abdalla
Electronic Portal Unit
