Biofabrication of Zinc Oxide Nanoparticle fromOchradenus baccatusLeaves: Broad-Spectrum Antibiofilm Activity, Protein Binding Studies, andIn VivoToxicity and Stress Studies
Author(s) -
Nasser Abdulatif AlShabib,
Fohad Mabood Husain,
Iftekhar Hassan,
Mohd Shahnawaz Khan,
Faheem Ahmed,
Faizan Abul Qais,
Mohammad Oves,
M. Atiqur Rahman,
Rais Ahmad Khan,
Altaf Khan,
Afzal Hussain,
Ibrahim M. Alhazza,
Shazia Aman,
Saba Noor,
Hossam Ebaid,
Jameel AlTamimi,
Javed Masood Khan,
Abdul Rehman M. Al-Ghadeer,
Md. Khurshid Alam Khan,
Iqbal Ahmad
Publication year - 2018
Publication title -
journal of nanomaterials
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.463
H-Index - 66
eISSN - 1687-4129
pISSN - 1687-4110
DOI - 10.1155/2018/8612158
Subject(s) - biofilm , prodigiosin , microbiology and biotechnology , chromobacterium violaceum , in vivo , food spoilage , serratia marcescens , escherichia coli , materials science , biology , quorum sensing , bacteria , biochemistry , genetics , gene
Biofilms are complex aggregation of cells that are embedded in EPS matrix. These microcolonies are highly resistant to drugs and are associated with various diseases. Biofilms have greatly affected the food safety by causing severe losses due to food contamination and spoilage. Therefore, novel antibiofilm agents are needed. This study investigates the antibiofilm and protein binding activity of zinc nanoparticles (ZnNPs) synthesized from leaf extract of Ochradenus baccatus. Standard physical techniques, including UV-visible spectroscopy Fourier transform infrared spectroscopy and X-ray diffraction and transmission electron microscopy, were used to characterize the synthesized OB-ZnNPs. Synthesized OB-ZnNPs demonstrated significant biofilm inhibition in human and food-borne pathogens (Chromobacterium violaceum, Escherichia coli, P. aeruginosa, Klebsiella pneumoniae, Serratia marcescens, and Listeria monocytogenes) at subinhibitory concentrations. OB-ZnNPs significantly reduced the virulence factors like violacein, prodigiosin, and alginate and impaired swarming migration and EPS production. OB-ZnNPs demonstrated efficient binding with HSA protein and no change in their structure or stability was observed. In addition, in vivo toxicity evaluation confirmed that OB-ZnNPs possessed no serious toxic effect even at higher doses. Moreover, they were found to have excellent antioxidant properties that can be employed in the fields of food safety and medicine. Hence, it is envisaged that the OB-ZnNPs can be used as potential nanomaterials to combat drug resistant bacterial infections and prevent contamination/spoilage of food.
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