Process optimization for green synthesis of silver nanoparticles by Sclerotinia sclerotiorum MTCC 8785 and evaluation of its antibacterial properties

Juhi Saxena1, Prashant Kumar Sharma2, Madan Mohan Sharma1, Abhijeet Singh1
1Department of Biosciences, Manipal University Jaipur, Dehmi Kalan, Near GVK Toll Plaza, Jaipur-Ajmer Express Highway, Jaipur, Rajasthan, 303007, India
2Dr. M.P.S. College, Agra, India

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Ahmad A, Mukherjee P, Senapati S, Mandal D, Khan MI, Kumar R, Sastry M (2003) Extracellular biosynthesis of silver nanoparticles using the fungus Fusarium oxysporum. Colloids Surf B Biointerfaces 28:313–318

Albrecht M, Evans C, Raston C (2006) Green chemistry and the health implications of nanoparticles. Green Chem 8:417

Banu A, Rathod V, Ranganath E (2011) Silver nanoparticle production by Rhizopus stolonifer and its antibacterial activity against extended spectrum β-lactamase producing (ESBL) strains of Enterobacteriaceae. Mater Res Bull 46:1417–1423

Basavaraja S, Balaji S, Lagashetty A, Rajasab A, Venkataraman A (2008) Extracellular biosynthesis of silver nanoparticles using the fungus Fusarium semitectum. Mater Res Bull 43:1164–1170

Birla S, Gaikwad S, Gade A, Rai M (2013) Rapid synthesis of silver nanoparticles from fusarium oxysporum by optimizing physicocultural conditions. Sci World J 2013:1–12

Busi S, Rajkumari J, Karuganti S, Ranjan B (2014) Green rapid biogenic synthesis of bioactive silver nanoparticles (AgNPs) using Pseudomonas aeruginosa. IET Nanobiotechnol 8:267–274

Chitra K, Annadurai G (2013) Bioengineered silver nanobowls using Trichoderma viride and its antibacterial activity against Gram-positive and Gram-negative bacteria. J Nanostruct Chem 3:9

Chowdhury S, Basu A, Kundu S (2014) Green synthesis of protein capped silver nanoparticles from phytopathogenic fungus Macrophomina phaseolina (Tassi) Goid with antimicrobial properties against multidrug-resistant bacteria. Nanoscale Res Lett 9:365

Daima H, Selvakannan P, Shukla R, Bhargava S, Bansal V (2013) Fine-tuning the antimicrobial profile of biocompatible gold nanoparticles by sequential surface functionalization using polyoxometalates and lysine. PLoS One 8:e79676

Duran N, Duran M, de Jesus MB, Seabra AB, Favaro WJ, Nakazato G (2015) Silver nanoparticles: a new view on mechanistic aspects on antimicrobial activity. Nanomed Nanotechnol Biol Med 12:789–799

Gajbhiye M, Kesharwani J, Ingle A, Gade A, Rai M (2009) Fungus-mediated synthesis of silver nanoparticles and their activity against pathogenic fungi in combination with fluconazole. Nanomed Nanotechnol Biol Med 5:382–386

Holmes AH, Moore LS, Sundsfjord A, Steinbakk M, Regmi S, Karkey A, Guerin PJ, Piddock LJ (2016) Understanding the mechanisms and drivers of antimicrobial resistance. Lancet 387:176–187

Jain N, Bhargava A, Majumdar S, Tarafdar J, Panwar J (2011) Extracellular biosynthesis and characterization of silver nanoparticles using Aspergillus flavus NJP08: a mechanism perspective. Nanoscale 3:635–641

Kaler A, Jain S, Banerjee U (2013) Green and rapid synthesis of anticancerous silver nanoparticles by Saccharomyces boulardii and insight into mechanism of nanoparticle synthesis. BioMed Res Int 2013:1–8

Karbasian M, Atyabi SM, Siadat SD, Momen SB, Norouzian D (2008) Optimizing nano-silver formation by Fusarium oxysporum ptcc 5115 employing response surface methodology. Am J Agric Biol Sci 3:433–437

Markowska K, Grudniak AM, Wolska KI (2013) Silver nanoparticles as an alternative strategy against bacterial biofilms. Acta Biochim Pol 60:523–530

Morsy Fatthy M (2015) Toward revealing the controversy of bacterial biosynthesis versus bactericidal properties of silver nanoparticles (AgNPs): bacteria and other microorganisms do not per se viably synthesize AgNPs. Arch Microbiol 197:645–655

Muller A, Behsnilian D, Walz E, Graf V, Hogekamp L, Greiner R (2016) Effect of culture medium on the extracellular synthesis of silver nanoparticles using Klebsiella pneumoniae, Escherichia coli and Pseudomonas jessinii. Biocatal Agric Biotechnol 6:107–115

Narayanan K (2013) Biosynthesis of silver nanoparticles by phytopathogen Xanthomonas oryzae pv. oryzae strain BXO8. J Microbiol Biotechnol 23:1287–1292

Nayak R, Pradhan N, Behera D, Pradhan K, Mishra S, Sukla L, Mishra B (2011) Green synthesis of silver nanoparticle by Penicillium purpurogenum NPMF: the process and optimization. J Nanopart Res 13:3129–3137

Pooja B, Joginder S, Suresh K (2014) Biogenesis of nanoparticles: a review. Afr J Biotechnol 13:2778–2785

Prabhu S, Poulose E (2012) Silver nanoparticles: mechanism of antimicrobial action, synthesis, medical applications, and toxicity effects. Int Nano Lett 2:32

Ruparelia Jayesh J, Chatterjee Arup K, Duttagupta Siddhartha P, Mukherji S (2008) Strain specificity in antimicrobial activity of silver and copper nanoparticles. Acta Biomater 4:707–716

Sarkar S, Jana A, Samanta S, Mostafa G (2007) Facile synthesis of silver nano particles with highly efficient anti-microbial property. Polyhedron 26:4419–4426

Shaligram N, Bule M, Bhambure R, Singhal R, Singh S, Szakacs G, Pandey A (2009) Biosynthesis of silver nanoparticles using aqueous extract from the compactin producing fungal strain. Process Biochem 44:939–943

Singh D, Rathod V, Ninganagouda S, Hiremath J, Singh A, Mathew J (2014) Optimization and characterization of silver nanoparticle by endophytic fungi Penicillium sp. isolated from Curcuma longa (turmeric) and application studies against MDR E. coli and S. aureus. Bioinorg Chem Appl 2014:1–8

Taheri Otaqsara S (2011) Biosynthesis of quasi-spherical Ag nanoparticle by Pseudomonas aeruginosa as a bioreducing agent. Eur Phys J Appl Phys 56:30402

Venkatesan B, Subramanian V, Tumala A, Vellaichamy E (2014) Rapid synthesis of biocompatible silver nanoparticles using aqueous extract of Rosa damascena petals and evaluation of their anticancer activity. Asian Pac J Trop Med 7:S294–S300

Zhang Y, Cheng X, Zhang Y, Xue X, Fu Y (2013) Biosynthesis of silver nanoparticles at room temperature using aqueous aloe leaf extract and antibacterial properties. Colloids Surf A 423:63–68