Diatomaceous earth/zinc oxide micro-composite assisted antibiotics in fungal therapy
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Published:2021-10-25
Issue:1
Volume:8
Page:
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ISSN:2196-5404
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Container-title:Nano Convergence
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language:en
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Short-container-title:Nano Convergence
Author:
Liu Huifang, Qiao Zhen, Jang Yoon Ok, Kim Myoung Gyu, Zou Qingshuang, Lee Hyo Joo, Koo Bonhan, Kim Sung-Han, Yun Kyusik, Kim Hyun-Soo, Shin YongORCID
Abstract
AbstractAs the second wave of COVID-19 hits South Asia, an increasing deadly complication ‘fungal infections (such as Mycosis, Candida and Aspergillus) outbreak’ has been raised concern about the insufficient technologies and medicals for its diagnosis and therapy. Biosilica based nano-therapy can be used for therapeutic efficacy, yet their direct role as antibiotic agent with biocompatibility and stability remains unclear. Here, we report that a diatomaceous earth (DE) framework semiconductor composite conjugated DE and in-house synthesized zinc oxide (DE-ZnO), as an antibiotic agent for the enhancement of antibiotic efficacy and persistence. We found that the DE-ZnO composite had enhanced antibiotic activity against fungi (A. fumigatus) and Gram-negative bacteria (E. coli, S. enterica). The DE-ZnO composite provides enhancing large surface areas for enhancement of target pathogen binding affinity, as well as produces active ions including reactive oxygen species and metal ion for breaking the cellular network of fungi and Gram-negative bacteria. Additionally, the toxicity of DE-ZnO with 3 time less amount of dosage is 6 times lower than the commercial SiO2-ZnO. Finally, a synergistic effect of DE-ZnO and existing antifungal agents (Itraconazole and Amphotericin B) showed a better antifungal activity, which could be reduced the side effects due to the antifungal agents overdose, than a single antibiotic agent use. We envision that this DE-ZnO composite can be used to enhance antibiotic activity and its persistence, with less-toxicity, biocompatibility and high stability against fungi and Gram-negative bacteria which could be a valuable candidate in medical science and industrial engineering.
Publisher
Springer Science and Business Media LLC
Subject
General Engineering,General Materials Science
Reference41 articles.
1. P. Koehler, M. Bassetti, A. Chakrabarti, S.C. Chen, A.L. Colombo, M. Hoenigl, N. Klimko, C. Lass-Flörl, R.O. Oladele, D.C. Vinh, Defining and managing COVID-19-associated pulmonary aspergillosis: the 2020 ECMM/ISHAM consensus criteria for research and clinical guidance. Lancet. Infect. Dis 21, e149–e162 (2020) 2. H. Liu, Q. Zou, Z. Qiao, Y.O. Jang, B. Koo, M.G. Kim, H.J. Lee, S.-H. Kim, Y. Shin, facile homobifunctional imidoester modification of advanced nanomaterials for enhanced antibiotic synergistic effect. ACS Appl. Mater. Interfaces 13, 40401 (2021) 3. O.A. Cornely, A. Alastruey-Izquierdo, D. Arenz, S.C. Chen, E. Dannaoui, B. Hochhegger, M. Hoenigl, H.E. Jensen, K. Lagrou, R.E. Lewis, Global guideline for the diagnosis and management of mucormycosis: an initiative of the European Confederation of Medical Mycology in cooperation with the Mycoses Study Group Education and Research Consortium. Lancet. Infect. Dis 19(12), e405–e421 (2019) 4. J.A. Edson, Y.J. Kwon, Design, challenge, and promise of stimuli-responsive nanoantibiotics. Nano Convergence 3(1), 1–13 (2016) 5. J.L. Steenwyk, M.E. Mead, P.A. Castro, C. Valero, A. Damasio, R.A. Santos, A.L. Labella, Y. Li, S.L. Knowles, H.A. Raja, Genomic and phenotypic analysis of COVID-19-associated pulmonary aspergillosis isolates of Aspergillus fumigatus. BioRxiv 9(1), e00010-21 (2020)
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