1 Almeria, S., Chacin-Bonilla, L., Maloney, J. G. & Santin, M. Cyclospora cayetanensis: A Perspective (2020–2023) with Emphasis on Epidemiology and Detection Methods. Microorganisms 11, (2023). https://doi.org/10.3390/microorganisms11092171
2 Barratt, J. L. N. et al. Cyclospora cayetanensis comprises at least 3 species that cause human cyclosporiasis. Parasitology 150, 269–285. https://doi.org/10.1017/S003118202200172X (2023).
Totton, S. C., O’Connor, A. M., Naganathan, T., Martinez, B. A. F. & Sargeant, J. M. A review of Cyclospora cayetanensis in animals. Zoonoses Public. Health. 68, 861–867. https://doi.org/10.1111/zph.12872 (2021).
Li, J., Wang, R., Chen, Y., Xiao, L. & Zhang, L. Cyclospora cayetanensis infection in humans: biological characteristics, clinical features, epidemiology, detection method and treatment. Parasitology 147, 160–170. https://doi.org/10.1017/s0031182019001471 (2020).
Almeria, S., Cinar, H. N. & Dubey, J. P. Cyclospora Cayetanensis Cyclosporiasis: Update Microorganisms 7, 317 (2019).
Connor, B. A. Hunter’s Tropical Medicine and Emerging Infectious Diseases (Tenth Edition) (eds Edward Tet al.) 719–721 (Elsevier, 2020). Ryan.
Arafa, F. M. et al. Isatin-1,2,3-triazole derivatives: synthesis, molecular Docking and evaluation against acute experimental toxoplasmosis. Acta Trop. 260, 107471. https://doi.org/10.1016/j.actatropica.2024.107471 (2024).
Tiwari, R. et al. Nanotechnology-Based strategies in parasitic disease management: from prevention to diagnosis and treatment. ACS Omega (2023).
Dubadi, R., Huang, S. D. & Jaroniec, M. Mechanochemical synthesis of nanoparticles for potential antimicrobial applications. Materials 16, 1460 (2023).
Zambonino, M. C. et al. Biogenic selenium nanoparticles in biomedical sciences: properties, current trends, novel opportunities and emerging challenges in theranostic nanomedicine. Nanomaterials (Basel). 13. https://doi.org/10.3390/nano13030424 (2023).
El-Naggar, N. E. A., El-Shall, H., Elyamny, S., Hamouda, R. A. & Eltarahony, M. Novel algae-mediated biosynthesis approach of Chitosan nanoparticles using Ulva fasciata extract, process optimization, characterization and their flocculation performance. Int J. Biol. Macromol, 136925 (2024).
Salem, S. S. & Fouda, A. Green synthesis of metallic nanoparticles and their prospective biotechnological applications: an overview. Biol. Trace Elem. Res. 199, 344–370. https://doi.org/10.1007/s12011-020-02138-3 (2021).
Hezema, N. N., Eltarahony, M. M. & Abdel Salam, S. A. Therapeutic and antioxidant potential of Bionanofactory Ochrobactrum sp.-mediated magnetite and zerovalent iron nanoparticles against acute experimental toxoplasmosis. PLoS Negl. Trop. Dis. 17, e0011655 (2023).
Król, G. et al. Metallic nanoparticles and Core-Shell nanosystems in the treatment, diagnosis, and prevention of parasitic diseases. Pathogens 12, 838 (2023).
Garza-García, J. J. O. et al. The role of selenium nanoparticles in agriculture and food technology. Biol. Trace Elem. Res. 200, 2528–2548. https://doi.org/10.1007/s12011-021-02847-3 (2022).
Zhang, J., Wang, X. & Xu, T. Elemental selenium at nano size (Nano-Se) as a potential chemopreventive agent with reduced risk of selenium toxicity: comparison with se-methylselenocysteine in mice. Toxicol. Sci. 101, 22–31 (2008).
Zhang, T. et al. Recent research progress on the synthesis and biological effects of selenium nanoparticles. Front. Nutr. 10, 1183487 (2023).
Menon, S., Ks, S. D., Santhiya, R., Rajeshkumar, S. & Kumar, V. Selenium nanoparticles: A potent chemotherapeutic agent and an Elucidation of its mechanism. Colloids Surf. B Biointerfaces. 170, 280–292 (2018).
Sonkusre, P. Specificity of biogenic selenium nanoparticles for prostate cancer therapy with reduced risk of toxicity: an in vitro and in vivo study. Front. Oncol. 9, 1541 (2020).
Chen, D. et al. Trends and recent progresses of selenium nanoparticles as novel autophagy regulators for therapeutic development. Front. Nutr. 10, 1116051. https://doi.org/10.3389/fnut.2023.1116051 (2023).
Zambonino, M. C. et al. Green synthesis of selenium and tellurium nanoparticles: current trends, biological properties and biomedical applications. Int. J. Mol. Sci. 22, 989 (2021).
Khan, H. A. et al. In-depth in-vitro and in-vivo anti-diabetic evaluations of fagonia cretica mediated biosynthesized selenium nanoparticles. Biomed. Pharmacother. 164, 114872. https://doi.org/10.1016/j.biopha.2023.114872 (2023).
Cruz, L. Y., Wang, D. & Liu, J. Biosynthesis of selenium nanoparticles, characterization and X-ray induced radiotherapy for the treatment of lung cancer with interstitial lung disease. J. Photochem. Photobiol B. 191, 123–127. https://doi.org/10.1016/j.jphotobiol.2018.12.008 (2019).
Salaramoli, S., Amiri, H., Joshaghani, H. R., Hosseini, M. & Hashemy, S. I. Bio-synthesized selenium nanoparticles ameliorate brain oxidative stress in Parkinson disease rat models. Metab. Brain Dis. 38, 2055–2064. https://doi.org/10.1007/s11011-023-01222-6 (2023).
Rehman, A., John, P. & Bhatti, A. Biogenic selenium nanoparticles: potential solution to oxidative stress mediated inflammation in rheumatoid arthritis and associated complications. Nanomaterials (Basel). 11 https://doi.org/10.3390/nano11082005 (2021).
Qiao, L., Chen, Y., Song, X., Dou, X. & Xu, C. Selenium Nanoparticles-Enriched Lactobacillus casei ATCC 393 prevents cognitive dysfunction in mice through modulating Microbiota-Gut-Brain axis. Int. J. Nanomed. 17, 4807–4827. https://doi.org/10.2147/ijn.S374024 (2022).
Ghaderi, R. S. et al. Green synthesis of selenium nanoparticle by Abelmoschus esculentus extract and assessment of its antibacterial activity. Mater. Technol. 37, 1289–1297 (2022).
Shakibaie, M., Salari Mohazab, N. & Ayatollahi Mousavi, S. A. Antifungal activity of selenium nanoparticles synthesized by Bacillus species Msh-1 against Aspergillus fumigatus and Candida albicans. Jundishapur J. Microbiol. 8, e26381. https://doi.org/10.5812/jjm.26381 (2015).
Mahmoudvand, H. et al. Scolicidal effects of biogenic selenium nanoparticles against protoscolices of hydatid cysts. Int. J. Surg. 12, 399–403 (2014).
Arafa, F. M., Mogahed, N., Eltarahony, M. M. & Diab, R. G. Biogenic selenium nanoparticles: trace element with promising anti-toxoplasma effect. Pathog Glob Health. 117, 639–654. https://doi.org/10.1080/20477724.2023.2186079 (2023).
Keyhani, A. et al. Biogenic selenium nanoparticles target chronic toxoplasmosis with minimal cytotoxicity in a mouse model. J. Med. Microbiol. 69, 104–110 (2020).
Beheshti, N. et al. Efficacy of biogenic selenium nanoparticles against leishmania major: in vitro and in vivo studies. J. Trace Elem. Med. Biol. 27, 203–207 (2013).
Abdel-Gaber, R. et al. Biosynthesized selenium nanoparticles to rescue coccidiosis-mediated oxidative stress, apoptosis and inflammation in the jejunum of mice. Front. Immunol. 14, 1139899. https://doi.org/10.3389/fimmu.2023.1139899 (2023).
Silva, L., Brandão, G., Pinheiro, B. & Vitor, R. Immunosuppression with cyclophosphamide favors reinfection with Recombinant Toxoplasma gondii strains. Parasite 19, 249 (2012).
Gaafar, M., El-Zawawy, L., El-Temsahy, M., Shalaby, T. I. & Hassan, A. Silver nanoparticles as a therapeutic agent in experimental cyclosporiasis. Exp. Parasitol. 207, 107772 (2019).
Hagras, N. A., Makled, S., Sheta, E., El-Hawary, M. A. & Mogahed, N. M. F. H. Potent efficiency of the novel nitazoxanide-loaded nanostructured lipid carriers against experimental cyclosporiasis. PLoS Negl. Trop. Dis. 17, e0011845 (2023).
Mogahed, N., Gaafar, M., Shalaby, T., Sheta, E. & Arafa, F. Potential efficacy of Curcumin and Curcumin nanoemulsion against experimental cyclosporiasis. PUJ 16, 197–207 (2023).
El-Kerdany, E., Ahmed, S., Gaafar, M., Diab, R. & El-Morsy, E. Simultaneous diagnosis and species identification of microsporidial infection in human stool samples using real-time polymerase chain reaction. J. Adv. Parasitol. 3, 104–116 (2016).
Sarfo, F. S. et al. The clinical features and immunological signature of cyclospora cayetanensis Co-Infection among people living with HIV in Ghana. Microorganisms 10 https://doi.org/10.3390/microorganisms10071407 (2022).
Garcia, L. S. & Procop, G. W. Diagnostic medical parasitology (6th Edition) (eds Allan L. et al.) 284–308 https://doi.org/10.1002/9781119021872 (2016).
Pouri, S., Motamedi, H., Honary, S. & Kazeminezhad, I. Biological synthesis of selenium nanoparticles and evaluation of their bioavailability. Braz Arch. Biol. Technol. 60, e17160452 (2017).
Liang, T. et al. Biosynthesis of selenium nanoparticles and their effect on changes in urinary nanocrystallites in calcium oxalate stone formation. 3 Biotech. 10, 1–6 (2020).
El-deeb, B. A., Asem, E. & Mohammed, K. Biosynthesis and optimization of selenium nanoparticles using Streptomyces Sp. Sohag J. Sci. 8, 1–6 (2023).
Ammanagi, A., CT, S., Badiger, A. & Ramaraj, V. in Doklady Biological Sciences. 159–169 (Springer).
Eltarahony, M. et al. Antibacterial, antifungal and antibiofilm activities of silver nanoparticles supported by crude bioactive metabolites of bionanofactories isolated from lake Mariout. Molecules 26, 3027 (2021).
Eltarahony, M., Abu-Serie, M., Hamad, H. & Zaki, S. Abd-El-Haleem, D. Unveiling the role of novel biogenic functionalized CuFe hybrid nanocomposites in boosting anticancer, antimicrobial and biosorption activities. Sci. Rep. 11, 7790 (2021).
Nalbandian, L. et al. Magnetic nanoparticles in medical diagnostic applications: synthesis, characterization and proteins conjugation. Curr. Nanosci. 12, 455–468 (2016).
Tugarova, A. V., Mamchenkova, P. V., Dyatlova, Y. A. & Kamnev, A. A. FTIR and Raman spectroscopic studies of selenium nanoparticles synthesised by the bacterium Azospirillum thiophilum. Spectrochim Acta Mol. Biomol. Spectrosc. 192, 458–463 (2018).
Chaudhari, P. L. & Kale, P. C. Synthesis and characterization of nano zinc peroxide photocatalyst for the removal of brilliant green dye from textile waste water. Int. J. Chem. Tech. Res. 10, 477–486 (2017).
Bharathi, S. et al. Extracellular synthesis of nanoselenium from fresh water bacteria Bacillus sp., and its validation of antibacterial and cytotoxic potential. Biocatal. Agric. Biotechnol. 27, 101655 (2020).
Mosallam, F. M., El-Sayyad, G. S., Fathy, R. M. & El-Batal A. I. Biomolecules-mediated synthesis of selenium nanoparticles using Aspergillus oryzae fermented lupin extract and gamma radiation for hindering the growth of some multidrug-resistant bacteria and pathogenic fungi. Microb. Pathog. 122, 108–116 (2018).
Shakibaie, M. et al. Prophylactic effects of biogenic selenium nanoparticles on acute toxoplasmosis: an in vivo study. Ann. Med. Surg. 54, 85–88 (2020).
Liu, P. et al. Highly-efficient synthesis of biogenic selenium nanoparticles by Bacillus paramycoides and their antibacterial and antioxidant activities. Front. Bioeng. Biotechnol. 11, 1227619 (2023).
Zhang, H. et al. Antibacterial properties and mechanism of selenium nanoparticles synthesized by Providencia sp. DCX. Environ. Res. 194, 110630 (2021).
Yazdi, M. H. et al. Th1 immune response induction by biogenic selenium nanoparticles in mice with breast cancer: preliminary vaccine model. Iran. J. Biotechnol. 13, 1 (2015).
Sabella, S. et al. A general mechanism for intracellular toxicity of metal-containing nanoparticles. Nanoscale 6, 7052–7061. https://doi.org/10.1039/C4NR01234H (2014).
Hussein, E. M. et al. Antiprotozoal activity of magnesium oxide (MgO) nanoparticles against Cyclospora cayetanensis oocysts. Parasitol. Int. 67, 666–674 (2018).
Ifijen, I. H., Atoe, B., Ekun, R. O., Ighodaro, A. & Odiachi, I. J. Treatments of Mycobacterium tuberculosis and Toxoplasma gondii with selenium nanoparticles. Bionanoscience 13, 249–277. https://doi.org/10.1007/s12668-023-01059-4 (2023).
Alkhudhayri, A. A., Dkhil, M. A. & Al-Quraishy, S. Nanoselenium prevents eimeriosis-induced inflammation and regulates mucin gene expression in mice jejunum. Int. J. Nanomed. 13, 1993–2003. https://doi.org/10.2147/ijn.S162355 (2018).
Rashidi, S. et al. Selenium and protozoan parasitic infections: Selenocompounds and selenoproteins potential. Parasitol Res. 121 (1), 49–62 (2022).
Yılmaz, S., Issı, M., Kandemır, F. M. & Gul, Y. Malondialdehyde and total antioxidant levels and hematological parameters of beef cattle with coccidiosis. Van Vet. J. 25, 41–45 (2014).
Hassanin, K. M., El-Kawi, A., Hashem, K. S. & S. H. & The prospective protective effect of selenium nanoparticles against chromium-induced oxidative and cellular damage in rat thyroid. Int. J. Nanomed. 8, 1713–1720. https://doi.org/10.2147/ijn.S42736 (2013).