280
E. A. Adebayo et al.
and Kashmir) and their efficacy against methicillin-resistant Staphylococcus aureus (MRSA)
Strains. Int J Nanosci 5:1–8
Hietzschold S, Walter A, Davis C, Taylor AA, Sepunaru L (2019) Does nitrate reductase play a role
in silver nanoparticle synthesis? Evidence for NADPH as the sole reducing agent. ACS Sustain
Chem Eng 7(9):8070–8076. https://doi.org/10.1021/acssuschemeng.9b00506
Hoet PHM, Brüske-Hohlfeld I, Salata OV (2004) Nanoparticles—known and unknown health risks.
J Nanobiotechnol 2:12. https://doi.org/10.1186/1477-3155-2-12
Jegadeeswaran P, Shivaraj R, Venckatesh R (2012) Green synthesis of silver nanoparticles from
extract of Padina tetrastromatica leaf. Digest J Nanomater Biostruct 7(3):991–998
Karthikeyan V, Ragunathan R, Jesteena J, Kabesh K (2019) Green synthesis of silver nanoparticles
and application in dye decolorization by Pleurotus ostreatus (MH591763). Global J Bio-Sci
Biotechnol 8:80–86
Karwa A, Gaikwar S, Rai M (2011) Mycosynthesis of silver nanoparticles using Lingzhi or Reishi
medicinal mushroom, Ganoderma lucidum (W. Curt.:Fr.) P. Karst. and their role as antimicrobials
and antibiotic activity enhancers. Int J Med Mushroom 13:483–491. https://doi.org/10.1615/int
jmedmushr.v13.i5.80
Khan S, Rizvi SMD, Avaish M, Arshad M, Bagga P, Khan MS (2015) A novel process for size
controlled biosynthesis of gold nanoparticles using bromelain. Mater Lett 159:373–376. https://
doi.org/10.1016/j.matlet.2015.06.118
Khandel O, Shahi SK (2018) Mycogenic nanoparticles and their bioprospective applications: current
status and future challenges. J Nanostruct Chem 8:369–391. https://doi.org/10.1007/s40097-0180285-2
Kowalczyk B, Lagzi I, Grzybowski BA (2011) Nanoseparations: strategies for size and shape
selective purification of nanoparticles. Curr Opin Colloids Interf Sci 16:135–148. https://doi.org/
10.1016/j.cocis.2011.01.004
Kumar SA, Abyaneh MK, Gosavi SW, Kulkarni SK, Pasricha N, Ahmad A (2007) Nitrate reductasemediated synthesis of silver nanoparticles from AgNO 3 . Biotechnol Lett 29:439–445. https://doi.
org/10.1007/s10529-006-9256-7
Lam CW, James JT, McCluskey R, Hunter RL (2004) Pulmonary toxicity of single-wall carbon
nanotubes in mice 7 and 90 days after intratracheal instillation. Toxicol Sci 77:126–134. https://
doi.org/10.1093/toxsci/kfg243
Lateef A, Adeeyo AO (2015) Green synthesis and antibacterial activities of silver nanoparticles
using extracellular laccase of Lentinus edodes. Not Sci Biol 7(4):405–411. https://doi.org/10.
15835/nsb749643
Lateef A, Adelere IA, Gueguim-Kana EB, Asafa TB, Beukes LS (2015) Green synthesis of silver
nanoparticles using keratinase obtained from a strain of Bacillus safensis LAU 13. Int Nano Lett
5:29–35. https://doi.org/10.1007/s40089-014-0133-4
Lateef A, Ojo SA, Elegbede JA (2016a) The emerging roles of arthropods and their metabolites in
the green synthesis of metallic nanoparticles. Nanotechnol Rev 5(6):601–622. https://doi.org/10.
1515/ntrev-2016-0049
Lateef A, Ojo SA, Oladejo SM (2016b) Anti-candida, anti-coagulant and thrombolytic activities of
biosynthesized silver nanoparticles using cell-free extract of Bacillus safensis LAU 13. Process
Biochem 51(10):1406–1412. https://doi.org/10.1016/j.procbio.2016.06.027
Lateef A, Ojo SA, Folarin BI, Gueguim-Kana EB, Beukes LS (2016c) Kolanut (Cola nitida) mediated synthesis of silver-gold alloy nanoparticles: antifungal, catalytic, larvicidal and thrombolytic
applications. J Clust Sci 27(5):1561–1577. https://doi.org/10.1007/s10876-016-1019-6
Lateef A, Akande MA, Azeez MA, Ojo SA, Folarin BI, Gueguim-Kana EB, Beukes LS (2016d)
Phytosynthesis of silver nanoparticles (AgNPs) using miracle fruit plant (Synsepalum dulcificum) for antimicrobial, catalytic, anti-coagulant and thrombolytic applications. Nanotechnol
Rev 5(6):507–520. https://doi.org/10.1515/ntrev-2016-0039
Lateef A, Akande MA, Ojo SA, Folarin BI, Gueguim-Kana EB, Beukes LS (2016e) Paper wasp
nest-mediated biosynthesis of silver nanoparticles for antimicrobial, catalytic, anti-coagulant and
thrombolytic applications. 3 Biotech 6:140 http://dx.doi.org/10.1007/s13205-016-0459-x
E. A. Adebayo et al.
and Kashmir) and their efficacy against methicillin-resistant Staphylococcus aureus (MRSA)
Strains. Int J Nanosci 5:1–8
Hietzschold S, Walter A, Davis C, Taylor AA, Sepunaru L (2019) Does nitrate reductase play a role
in silver nanoparticle synthesis? Evidence for NADPH as the sole reducing agent. ACS Sustain
Chem Eng 7(9):8070–8076. https://doi.org/10.1021/acssuschemeng.9b00506
Hoet PHM, Brüske-Hohlfeld I, Salata OV (2004) Nanoparticles—known and unknown health risks.
J Nanobiotechnol 2:12. https://doi.org/10.1186/1477-3155-2-12
Jegadeeswaran P, Shivaraj R, Venckatesh R (2012) Green synthesis of silver nanoparticles from
extract of Padina tetrastromatica leaf. Digest J Nanomater Biostruct 7(3):991–998
Karthikeyan V, Ragunathan R, Jesteena J, Kabesh K (2019) Green synthesis of silver nanoparticles
and application in dye decolorization by Pleurotus ostreatus (MH591763). Global J Bio-Sci
Biotechnol 8:80–86
Karwa A, Gaikwar S, Rai M (2011) Mycosynthesis of silver nanoparticles using Lingzhi or Reishi
medicinal mushroom, Ganoderma lucidum (W. Curt.:Fr.) P. Karst. and their role as antimicrobials
and antibiotic activity enhancers. Int J Med Mushroom 13:483–491. https://doi.org/10.1615/int
jmedmushr.v13.i5.80
Khan S, Rizvi SMD, Avaish M, Arshad M, Bagga P, Khan MS (2015) A novel process for size
controlled biosynthesis of gold nanoparticles using bromelain. Mater Lett 159:373–376. https://
doi.org/10.1016/j.matlet.2015.06.118
Khandel O, Shahi SK (2018) Mycogenic nanoparticles and their bioprospective applications: current
status and future challenges. J Nanostruct Chem 8:369–391. https://doi.org/10.1007/s40097-0180285-2
Kowalczyk B, Lagzi I, Grzybowski BA (2011) Nanoseparations: strategies for size and shape
selective purification of nanoparticles. Curr Opin Colloids Interf Sci 16:135–148. https://doi.org/
10.1016/j.cocis.2011.01.004
Kumar SA, Abyaneh MK, Gosavi SW, Kulkarni SK, Pasricha N, Ahmad A (2007) Nitrate reductasemediated synthesis of silver nanoparticles from AgNO 3 . Biotechnol Lett 29:439–445. https://doi.
org/10.1007/s10529-006-9256-7
Lam CW, James JT, McCluskey R, Hunter RL (2004) Pulmonary toxicity of single-wall carbon
nanotubes in mice 7 and 90 days after intratracheal instillation. Toxicol Sci 77:126–134. https://
doi.org/10.1093/toxsci/kfg243
Lateef A, Adeeyo AO (2015) Green synthesis and antibacterial activities of silver nanoparticles
using extracellular laccase of Lentinus edodes. Not Sci Biol 7(4):405–411. https://doi.org/10.
15835/nsb749643
Lateef A, Adelere IA, Gueguim-Kana EB, Asafa TB, Beukes LS (2015) Green synthesis of silver
nanoparticles using keratinase obtained from a strain of Bacillus safensis LAU 13. Int Nano Lett
5:29–35. https://doi.org/10.1007/s40089-014-0133-4
Lateef A, Ojo SA, Elegbede JA (2016a) The emerging roles of arthropods and their metabolites in
the green synthesis of metallic nanoparticles. Nanotechnol Rev 5(6):601–622. https://doi.org/10.
1515/ntrev-2016-0049
Lateef A, Ojo SA, Oladejo SM (2016b) Anti-candida, anti-coagulant and thrombolytic activities of
biosynthesized silver nanoparticles using cell-free extract of Bacillus safensis LAU 13. Process
Biochem 51(10):1406–1412. https://doi.org/10.1016/j.procbio.2016.06.027
Lateef A, Ojo SA, Folarin BI, Gueguim-Kana EB, Beukes LS (2016c) Kolanut (Cola nitida) mediated synthesis of silver-gold alloy nanoparticles: antifungal, catalytic, larvicidal and thrombolytic
applications. J Clust Sci 27(5):1561–1577. https://doi.org/10.1007/s10876-016-1019-6
Lateef A, Akande MA, Azeez MA, Ojo SA, Folarin BI, Gueguim-Kana EB, Beukes LS (2016d)
Phytosynthesis of silver nanoparticles (AgNPs) using miracle fruit plant (Synsepalum dulcificum) for antimicrobial, catalytic, anti-coagulant and thrombolytic applications. Nanotechnol
Rev 5(6):507–520. https://doi.org/10.1515/ntrev-2016-0039
Lateef A, Akande MA, Ojo SA, Folarin BI, Gueguim-Kana EB, Beukes LS (2016e) Paper wasp
nest-mediated biosynthesis of silver nanoparticles for antimicrobial, catalytic, anti-coagulant and
thrombolytic applications. 3 Biotech 6:140 http://dx.doi.org/10.1007/s13205-016-0459-x
