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Published on: September 19, 2019
Zinc Oxide Nanoconjugates against Brain-Eating Amoebae
Ruqaiyyah Siddiqui1, Anania Boghossian1, Noor Akbar2
1College of Arts and Sciences, American University of Sharjah, University City, Sharjah 26666, United Arab Emirates.
Abstract:
Naegleria fowleri and Balamuthia mandrillaris are opportunistic protists, responsible for fatal central nervous system infections such as primary amoebic meningoencephalitis (PAM) and granulomatous amoebic encephalitis (GAE) with mortality rates higher than 90%. Threatening a rise in cases is the increase in temperature due to global warming. No effective treatment is currently available. Herein, nanotechnology was used to conjugate Zinc oxide with Ampicillin, Ceftrixon, Naringin, Amphotericin B, and Quericitin, and the amoebicidal activity and host cell cytotoxicity of these resulting compounds were investigated. The compounds ZnO-CD-AMPi, ZnO-CD-CFT, ZnO-CD-Nar, ZnO-CD-AMB, and ZnO-CD-QT were found to reduce N. fowleri viability to 35.5%, 39.6%, 52.0%, 50.8%, 35.9%, and 69.9%, respectively, and B. mandrillaris viability to 40.9%, 48.2%, 51.6%, 43.8%, and 62.4%, respectively, when compared with their corresponding controls. Furthermore, the compounds reduced N. fowleri-mediated and B. mandrillaris-mediated host cell death significantly. Additionally, the compounds showed limited cytotoxicity against human cells; cell toxicity was 35.5%, 36.4%, 30.9%, 36.6%, and 35.6%, respectively, for the compounds ZnO-CD-AMPi, ZnO-CD-CFT, ZnO-CD-Nar, ZnO-CD-AMB, and ZnO-CD-QT. Furthermore, the minimum inhibitory concentrations to inhibit amoeba growth by 50% were determined for N. fowleri and B. mandrillaris. The MIC50 for N. fowleri were determined to be 69.52 µg/mL, 82.05 µg/mL, 88.16 µg/mL, 95.61 µg/mL, and 85.69 µg/mL, respectively; the MIC50 of the compounds for B. mandrillaris were determined to be 113.9 µg/mL, 102.3 µg/mL, 106.9 µg/mL, 146.4 µg/mL, and 129.6 µg/mL, respectively. Translational research to further develop therapies based on these compounds is urgently warranted, given the lack of effective therapies currently available against these devastating infections.
Insights
Nanotechnology-conjugated zinc oxide compounds show promise in reducing fatal amoebic infections caused by Naegleria fowleri and Balamuthia mandrillaris. These novel treatments exhibit significant amoebicidal activity with limited human cell toxicity, offering hope against these devastating diseases.
Area of Science:
- Nanotechnology
- Infectious Diseases
- Amoebiasis
Background:
- Naegleria fowleri and Balamuthia mandrillaris cause fatal CNS infections (PAM, GAE) with >90% mortality.
- Global warming may increase the incidence of these infections.
- Currently, no effective treatments are available for these amoebic infections.
Purpose of the Study:
- To investigate the amoebicidal activity and host cell cytotoxicity of zinc oxide (ZnO) conjugated with various compounds.
- To evaluate the potential of these novel nano-conjugates as therapeutic agents against N. fowleri and B. mandrillaris.
Main Methods:
- Zinc oxide nanoparticles were conjugated with Ampicillin, Ceftriaxone, Naringin, Amphotericin B, and Quercetin.
- Amoebicidal activity was assessed by measuring the viability of N. fowleri and B. mandrillaris exposed to the nano-conjugates.
- Host cell cytotoxicity was evaluated on human cells, and minimum inhibitory concentrations (MIC50) were determined.
Main Results:
- The ZnO nano-conjugates significantly reduced the viability of both N. fowleri and B. mandrillaris.
- Compounds like ZnO-CD-AMPi and ZnO-CD-AMB showed substantial reduction in amoeba viability.
- The nano-conjugates demonstrated limited cytotoxicity against human cells and effectively reduced amoeba-mediated host cell death.
Conclusions:
- Zinc oxide nano-conjugates exhibit potent amoebicidal activity against N. fowleri and B. mandrillaris.
- These compounds present a promising therapeutic avenue with a favorable safety profile.
- Further translational research is crucial to develop these nano-conjugates into effective treatments for devastating amoebic infections.

