Antibacterial effects of ZnONPs produced by Bacillus clausii on growth of Pseudomonas aeruginosa
Keywords:
Zinc oxide nanoparticles ZnONPs, Bacillus clausiiAbstract
Nanotechnology's most recent advancements Nanoparticles of metals and metal oxides have a wide range of uses in a variety of sectors, research institutes, and enterprises. The most frequent metal oxide nanoparticles are zinc oxide nanoparticles. (ZnO NPs) Because of its unique features and applications, zinc-tolerant probiotics of Bacillus spp are capable of tolerating high concentrations of Zinc+2 and creating Zinc Oxide Nanoparticles, These bacteria are gaining popularity as a natural microbial cell nano-factory for a more efficient and ecologically acceptable technique of nanoparticle production. X-ray diffraction was used to determine the morphological and structural properties of ZnO NPs , The produced nanoparticles were crystalline, relatively stable, roughly spherical, and pure, according to transmission electron microscopy (TEM). (ZnONPs) biosynthesized by Bacillus clausii have antibacterial efficacy against Pseudomonas aeruginosa.
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Ravishankar Rai V and Jamuna Bai A. (2011). Nanoparticles andtheir potential application as antimicrobials. In: Mendez-Vilas A, ed. Science against Microbial Pathogens: Communicating Current Research and Technological Advances. Formatex Research Center, 197–209 .
Sau, T. K., Rogach, A. L., Jäckel, F., Klar, T. A., & Feldmann, J. (2010). Properties and applications of colloidal nonspherical noble metal nanoparticles. Advanced Materials, 22(16), 1805-1825.
Upadrasta, A., Pitta, S., & Madempudi, R. S. (2016). Draft genome sequence of Bacillus clausii UBBC07, a spore-forming probiotic strain. Genome Announcements, 4(2), e00235-16.
Duc, L.H.; Hong, H.A.; Barbosa, T.M.; Henriques, A.O.; Cutting, S.M. Characterization of Bacillus probiotics available for human use. Appl. Environ. Microbiol. 2004, 70, 2161–2171.
Lin Z. Zinc oxide nanostructures: growth, properties and applications. J Phys Condens Matter. 2004.
Mohd Yusof H, Mohamad R, Zaidan UH, Abdul Rahman NA. Microbial synthesis of zinc oxide nanoparticles and their potential application as an antimicrobial agent and a feed supplement in animal industry: a review. J Anim Sci Biotechnol. 2019; 10:1–22.
Kalyani G, VG Anil, C Bo-Jung, L Yong- Chien. Preparation and characterization of ZnO nanoparticles coated paper and its antibacterial activity study. J. Green Chem. 2006; 8: 1034-1041.
Hind A, Amr A, Dina E. Biosynthesis and evaluation of TiO2 and ZnO nanoparticles from in vitro stimulation of Lactobacillus johnsonii.2018.
Atewy Abood Alaredhey, A. S., Thewaini, Q. N., & Taj-Aldeen, W. R. (2020). Antibacterial Efficacy of Biosynthetic Zinc Oxide Nanoparticles by Lactobacillus Plantarum Combined with Poly-β-hydroxybutyrate Against Pathogenic Bacteria. Indian Journal of Forensic Medicine & Toxicology, 14(3).
Chandar J, Shanmugan S, Murugan, P. Structural analysis of ZnO nanoparticles reinforced P (3HB- co-15 mol% 3HHx) bioplastic composite. Journal of Polymers and the Environment.2017; 25(4): 1251-1261.
Sabir S, Arshad M, Chaudhari S. Zinc oxide nanoparticles for revolutionizing agriculture: synthesis and applications. Sci. World J.2014 925494 10.1155/2014/925494.
Mudit M, Jeny S, Suneet K. Studies on the inhibitory activity of biologically synthesized and characterized Zinc Oxide nanoparticles using Lactobacillus sporogens against Staphylococcus aureus. J. Pur. App Microb. 2013; 7: 927-931 .
Ashokkumar M, Muthukumaran S. Microstructure, optical and FTIR studies of Ni, Cu Co-Doped ZnO nanoparticles by co-precipitation method. J. Opt. Mat. 2014; 37: 671-678.
Patterson A (1939) The scherrer formula for X-ray particle size determination. Phys Rev 56:978
Zhang Y, Ma D, Juan W. One- step preparation of CNTS/in VO4 hollow nanofibers by electrospinning and its photocatalytic performance under visible light. J.Appl. Surf. Sci. 2015; 353: 1260-1268.
Abdolmaleki, A.; Mallakpour, S.; Borandeh, S. , (2012) . Effect of silane- modified ZnO on morphology and properties of bionano composites based on poly(ester-amide) containing tyrosine linkages. Polym. Bull. 2012, 69, 15–28.
Zhang, Y.; Ma, D.; Juan, W.; Zhang, Q.; Xin, Y. and Bao, N. ,(2015). One- step preparation of CNTS /in VO4 hollow nanofibers by electrospinning and its photocatalytic performance under visible light. J.Appl. Surf. Sci. 353: 1260-1268.
Xiukai, L.; Zhuang, Z.; Li, W. and Pan, H. ,(2012). Photocatalytic reduction of Co2 over noble metal-loaded and nitrogen-doped mesoporous Tio2. J. Appl. Catal. A-Gen. 429-430:31-38.
Siddiqi, K. S., ur Rahman, A., & Husen, A. (2018). Properties of zinc oxide nanoparticles and their activity against microbes. Nanoscale research letters, 13(1), 1-13.
Chandar J, Shanmugan S, Murugan, P. Structural analysis of ZnO nanoparticles reinforced P (3HB- co-15 mol% 3HHx) bioplastic composite. Journal of Polymers and the Environment.2017; 25(4): 1251-1261.
L.B. Shi, P.F. Tang, W. Zhang, Y.P. Zhao, L.C. Zhang, H. Zhang, (2017) . Green synthesis of ZnO nanoparticles using Cassia auriculata leaf extract and in vitro evaluation of their biocompatibility with rheumatoid arthritis macrophages (RAW 264.7), Trop. J. Pharmaceut. Res. 16 185–192.
Nobel surya pandi durai R, Arul D, Aiswarya D, Perumal P.,(2019). Extracellular biosynthesis ,characterization &cytotoxic effects of ZnONPs synthesized from the supernatant of probiotic bacterium, Bacillus Amyloliquefaciens CS4. Periyar University, Salem, Tamil Nadu, India. INTERNATIONAL JOURNAL OF SCIENTIFIC and TECHNOLOGY RESEARCH VOLUME 8, ISSUE 09, SEPTEMBER 2019. ISSN 2277-8616
Tam K, Djurišiæ, A .Antibacterial activity of ZnO nanorods prepared by a hydrothermal method. Thin Solid Films. 2008; 516: 6167–6174.
Yamamoto O., Komatsu M, Sawai J. and Nakagawa ZE.,(2004). Effect of lattice constant of zinc oxide on antibacterial characteristics. J Mater Sci Mater Med.15:847–851.
Kelly SA, Havrilla CM, Brady TC, Abramo KH, Levin ED (1998) Oxidative stress in toxicology: established mammalian and emerging piscine model systems.Environ Health Perspect 106:375–384
Kustina, K.T., Dewi, G.A.A.O., Prena, G.D., Suryasa, W. (2019). Branchless banking, third-party funds, and profitability evidence reference to banking sector in indonesia. Journal of Advanced Research in Dynamical and Control Systems, 11(2), 290-299.
Nyandra, M., Kartiko, B.H., Susanto, P.C., Supriyati, A., Suryasa, W. (2018). Education and training improve quality of life and decrease depression score in elderly population. Eurasian Journal of Analytical Chemistry, 13(2), 371-377.
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