330
E. A. Adebayo et al.
Ahiwale SS, Bankar AV, Tagunde S, Kapadnis BP (2017) A bacteriophage mediated gold nanoparticles synthesis and their anti-biofilm activity. Indian J Microbiol 57:188–194. https://doi.org/10.
1007/s12088-017-0640-x
Ahmad S, Senapati MI, Khan KR, Sastry M (2003) Extracellular biosynthesis of monodisperse gold
nanoparticles by a novel extremophilic actinomycete, Thermomonospora sp. Langmuir 19:3550–
3553. https://doi.org/10.1021/la026
Ahmad T, Wani IA, Lone IH, Ganguly A, Manzoor N, Ahmad A, Ahmed J, Al-Shihri AS (2013)
Antifungal activity of gold nanoparticles prepared by solvothermal method. Mater Res Bull
48:12–20. https://doi.org/10.1016/j.materresbull.2012.09.069
Akhtar N, Pathak K (2017) Probiotics as a tool to biosynthesize metallic nanoparticles: research
reports and patents survey. Recent Pat Drug Delivery Formulation 11:5–18. https://doi.org/10.
2174/1872211311666170313124335
Aldujaili NH, Abdullah NY, Khaqani RL, Al-tfaly SA, Al-Shammary AH (2015) Biosynthesis
and antibacterial activity of titanium nanoparticles using Lactobacillus. Int J Recent Sci Res
6:7741–7751
Alzheimer’s, Association (2015) 2015 Alzheimer’s disease facts and figures. Alzheimer’s Dementia:
J Alzheimer’s Assoc 11:332–384. https://doi.org/10.1016/j.jalz.2015.02.003
Amar J, Chabo C, Waget A, Klopp P, Vachoux C, Bermúdez-Humarán LG, Smirnova N, Bergé M,
Sulpice T, Lahtinen T, Ouwehand A, Langella P, Rautonen N, Sansonetti PJ, Burcelin J (2011)
Intestinal mucosal adherence and translocation of commensal bacteria at the early onset of type
2 diabetes: molecular mechanisms and probiotic treatment. EMBO Mol Med 3:559–572. https://
doi.org/10.1002/emmm.201100159
Anand K, Gengan RM, Phulukdaree A, Chuturgoon A (2015) Agroforestry waste Moringa oleifera
petals mediated green synthesis of gold nanoparticles and their anti-cancer and catalytic activity.
J Ind Eng Chem 21:1105–1111. https://doi.org/10.1016/j.jiec.2014.05.021
Anandan S, Grieser F, Ashokkumar M (2008) Sonochemical synthesis of Au-Ag core-shell
bimetallic nanoparticles. J Phys Chem C 112:15102–15109. https://doi.org/10.1021/jp806960r
Aoyagi Y, Park S, Matsubara S, Honda Y, Amamoto R, Kushiro A, Miyazaki K, Shephard RJ (2017)
Habitual intake of fermented milk products containing Lactobacillus casei strain Shirota and a
reduced risk of hypertension in older people. Benef Microb 8:23–29. https://doi.org/10.3920/
BM2016.0135
Azeez MA, Lateef A, Asafa TB, Yekeen TA, Akinboro A, Oladipo IC, Gueguim-Kana EB, Beukes
LS (2017) Biomedical applications of cocoa bean extract-mediated silver nanoparticles as antimicrobial, larvicidal and anticoagulant agents. J Clust Sci 28:149–164. https://doi.org/10.1007/s10
876-016-1055-2
Azeez L, Lateef A, Adebisi SA, Oyedeji AO (2018) Novel biosynthesized silver nanoparticles from
cobweb as adsorbent for Rhodamine B: equilibrium isotherm, kinetic and thermodynamic studies.
Appl Water Sci 8:32. https://doi.org/10.1007/s13201-018-0676-z
Azeez L, Adejumo AL, Lateef A, Adebisi SA, Adetoro RO, Adewuyi S, Tijani KO, Olaoye S
(2019a) Zero-valent silver nanoparticles attenuate Cd and Pb toxicities on Moringa oleifera via
immobilization and induction of phytochemicals. Plant Physiol Biochem 139:283–292. https://
doi.org/10.1016/j.plaphy.2019.03.030
Azeez L, Lateef A, Wahab AA, Rufai MA, Salau AK, Ajayi IO, Ajayi EM, Maryam AK, Adebisi
B (2019b) Phytomodulatory effects of silver nanoparticles on Corchorus olitorius: its antiphytopathogenic and hepatoprotective potentials. Plant Physiol Biochem 136:109–117. https://doi.
org/10.1016/j.plaphy.2018.12.006
Azhar AM, Ladan SB, Ebrahimi MT, Heydari M (2011) Lactobacillus-mediated biosynthesis of
titanium nanoparticles in MRS-broth medium. Brno Czech Rep EU 9:21–23
Aziz N, Faraz M, Pandey R, Shakir M, Fatma T, Varma A, Barman I, Prasad R (2015) Facile
algae-derived route to biogenic silver nanoparticles: synthesis, antibacterial, and photocatalytic
properties. Langmuir 31:11605–11612. https://doi.org/10.1021/acs.langmuir.5b03081
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