Antimicrobial Effect of Eco- Friendly Silver Nanoparticles Synthesis by Iraqi Date Palm (Phoenix dactylifera) on Gram-Negative Biofilm-Forming Bacteria

Main Article Content

shaimaa obaid hasson
Sumod Abdul kadhem Salman
Shurooq Falah Hassan
Shatha Mohammed Abbas

Abstract

Date palm silver nanoparticles are a green synthesis method used as antibacterial agents. Today, there is a considerable interest in it because it is safe, nontoxic, low costly and ecofriendly. Biofilm bacteria existing in marketed local milk is at highly risk on population health and may be life-threatening as most biofilm-forming bacteria are multidrug resistance. The goal of current study is to eradicate biofilm-forming bacteria by alternative treatment green synthesis silver nanoparticles. The biofilm formation by bacterial isolates was detected by Congo red method. The silver nanoparticles were prepared from date palm(khestawy) fruit extract. The formed nanoparticles were characterized with UV-Vis and AFM. The antibacterial activity of synthetic silver nanoparticles was evaluated by agar well diffusion method. Gram-negative bacteria isolates were E. coli in 3 isolates and Klebsiella pneumoniae in 5 isolates and all are biofilm producer. The size of synthetic green silver nanoparticles is 18 nm and the generation of silver nanoparticles was confirmed by change of date extract color from yellow to brown with an absorption maximum at 410 nm. Highly antibacterial activity of silver nanoparticles was recorded in comparison to plant extract and silver nitrate against gram-negative biofilm-forming bacteria. From this study, the antibacterial activity of date palm silver nanoparticles was more efficient to eradicate gram negative biofilm[1]forming bacteria isolated from marketed local milk

Article Details

How to Cite
1.
Antimicrobial Effect of Eco- Friendly Silver Nanoparticles Synthesis by Iraqi Date Palm (Phoenix dactylifera) on Gram-Negative Biofilm-Forming Bacteria. Baghdad Sci.J [Internet]. 2021 Dec. 1 [cited 2024 Apr. 19];18(4):1149. Available from: https://bsj.uobaghdad.edu.iq/index.php/BSJ/article/view/3543
Section
article

How to Cite

1.
Antimicrobial Effect of Eco- Friendly Silver Nanoparticles Synthesis by Iraqi Date Palm (Phoenix dactylifera) on Gram-Negative Biofilm-Forming Bacteria. Baghdad Sci.J [Internet]. 2021 Dec. 1 [cited 2024 Apr. 19];18(4):1149. Available from: https://bsj.uobaghdad.edu.iq/index.php/BSJ/article/view/3543

References

Anselmo AC, Mitragotri S. A review of clinical

translation of inorganic nanoparticles. The AAPS

journal. 2015;17(5):1041-54.

Abinaya C, Mayandi J, Osborne J, Frost M, Ekstrum

C, Pearce JM. Inhibition of growth of S. epidermidis

by hydrothermally synthesized ZnO nanoplates. Mat

Res Exp. 2017;4(7):075401.

Anandalakshmi K, Venugobal J, Ramasamy V.

Characterization of silver nanoparticles by green

synthesis method using Pedalium murex leaf extract

and their antibacterial activity. Appl. Nanosci.

;6(3):399-408.

Prakash P, Gnanaprakasam P, Emmanuel R,

Arokiyaraj S, Saravanan M. Green synthesis of silver

nanoparticles from leaf extract of Mimusops elengi,

Linn. for enhanced antibacterial activity against multi

drug resistant clinical isolates. Colloids Surf B

Biointerfaces. 2013;108:255-9.

Farhadi S, Ajerloo B, Mohammadi A. Green

biosynthesis of spherical silver nanoparticles by using

date palm (phoenix dactylifera) fruit extract and study

of their antibacterial and catalytic activities. ACTA

CHIM SLOV. 2017;64(1):129-43.

Tengberg M. Beginnings and early history of date

palm garden cultivation in the Middle East. J ARID

ENVIRON. J of Ari Env.. 2012;86:139-47.

Jahromi MAF, Moien MR, Mollaei M. Volatile

Constituents and Antioxidant Activity of Spathes

from Five Un-common Varieties of Phoenix

dactylifera L. Trends Pharmacol Sci. 2018;4(4).

Neethirajan S, Clond MA, Vogt A. Medical

biofilms—nanotechnology approaches. J. Biomed.

Nanotech. 2014;10(10):2806-27.

Marchand S, De Block J, De Jonghe V, Coorevits A,

Heyndrickx M, Herman L. Biofilm formation in milk

production and processing environments; influence

on milk quality and safety. Comp Rev Food Sci F.

;11(2):133-47.

Guła G, Dorotkiewicz-Jach A, Korzekwa K, Valvano

MA, Drulis-Kawa Z. Complex Signaling Networks Controlling Dynamic Molecular Changes in

Pseudomonas aeruginosa Biofilm. Curr Med Chem.

Anes J, Sivasankaran SK, Muthappa DM, Fanning S,

Srikumar S. Exposure to Sub-inhibitory

Concentrations of the Chemosensitizer 1-(1-

Naphthylmethyl)-Piperazine Creates Membrane

Destabilization in Multi-Drug Resistant Klebsiella

pneumoniae. Front Microbiol. 2019;10(92).

MacFaddin JF. Biochemical Tests for Identification

of Medical Bacteria. 3rd ed: Williams and Wilkins.

Baltimore, USA; 2000.

Freeman D, Falkiner F, Keane C. New method for

detecting slime production by coagulase negative

staphylococci. J Clin Pathol. 1989;42(8):872-4.

Karthik C, Radha K. Biosynthesis and

characterization of silver nanoparticles using

Enterobacter aerogenes: a kinetic approach. Dig J

Nanomater Biostruct. 2012;7:1007-14.

Rao A, Schoenenberger M, Gnecco E, Glatzel T,

Meyer E, Brändlin D, et al., editors. Characterization

of nanoparticles using atomic force microscopy.

Journal of Physics: Conference Series; 2007: IOP

Publishing. pp: 971-976.

Bose S, Khodke M, Basak S, Mallick S. Detection of

biofilm producing staphylococci: need of the hour. J

Clin Diagn Res.2009;3(6):1915-20.

Ksontini H, Kachouri F, Hamdi M. Dairy biofilm:

impact of microbial community on raw milk quality.

J Food Quality. 2013;36(4):282-90.

Al-Azawi IH, Al-Hamadani AH, Hasson SO.

Association between Biofilm Formation and

Susceptibility to Antibiotics in Staphylococcus

Lentus Isolated from Urinary Catheterized Patients.

Nano Biomed Eng. 2018;10(2):97-103.

Hasson SO. Phenotypic and Genotypic Detection of

Biofilm Formation Pseudomonas oryzihabitance and

Susceptibility to Antibiotics. Nano Biomed Eng.

;11(1):11-7.

CLSI. Performance standards for antimicrobial

susceptibility testing. M100, Clinical and Laboratory

Standards Institute, Wayne, PA. 2017.

Ebrahimi A, Hemati M, Shabanpour Z, Dehkordi SH,

Bahadoran S, Lotfalian S, et al. Effects of

benzalkonium chloride on planktonic growth and

biofilm formation by animal bacterial pathogens.

Jundishapur J Microbiol. 2015;8(2).

Hasson SO, Al-Awady MJ, Al-Hamadani AH, AlAzawi IH, Ali AI. Boosting Antimicrobial Activity of

Imipenem in Combination with Silver Nanoparticles

towards S. fonticola and Pantoea sp. Nano Biomed

Eng. 2019;11(2):200-14.

Bodle KB. Effects of triclosan exposure on

nitrification in activated sludge, biofilms, and pure

cultures of nitrifying bacteria: Montana State

University-Bozeman, College of Engineering; 2016.

Wang S, Zhou C, Ren B, Li X, Weir MD, Masri RM,

et al. Formation of persisters in Streptococcus mutans

biofilms induced by antibacterial dental monomer. J

Mater Sci Mater Med 2017;28(11):178.

Band VI, Weiss DS. Heteroresistance: A cause of

unexplained antibiotic treatment failure? PLoS

pathogens. 2019;15(6):e1007726.

Kuppusamy P, Yusoff MM, Maniam GP, Govindan

N. Biosynthesis of metallic nanoparticles using plant

derivatives and their new avenues in pharmacological

applications–An updated report. Saudi Pharm J.

;24(4):473-84.

Kumar B, Smita K, Cumbal L, Angulo Y. Fabrication

of silver nanoplates using Nephelium lappaceum

(Rambutan) peel: a sustainable approach. J. Mol. Liq.

;211:476-80.

Shahverdi AR, Minaeian S, Shahverdi HR, Jamalifar

H, Nohi A-A. Rapid synthesis of silver nanoparticles

using culture supernatants of Enterobacteria: a novel

biological approach. Process Biochem.

;42(5):919-23.

Al-Awady MJ, Balakit AA, Al-Musawi S, Alsultani

MJ, Kamil A, Alabbasi M. Investigation of AntiMRSA and Anticancer Activity of Eco-Friendly

Synthesized Silver Nanoparticles from Palm Dates

Extract. Nano Biomed. Eng. 2019;11(2).

Mathur T, Singhal S, Khan S, Upadhyay D, Fatma T,

Rattan A. Detection of biofilm formation among the

clinical isolates of staphylococci: an evaluation of

three different screening methods. Indian J Med

Microbiol. 2006;24(1):25.

Guzmán MG, Dille J, Godet S. Synthesis of silver

nanoparticles by chemical reduction method and their

antibacterial activity. Int J Chem Biomol Eng.

;2(3):104-11.

Hasson SO, Al-Awady, M.J., Al-Hamadani, A.H. and

Ibtisam Habeeb Al-Azawi. . Boosting Antimicrobial

Activity of Imipenem in Combination with Silver

Nanoparticles towards S. fonticola and Pantoea sp.

Nano Biomed Eng. 2019;under press.

Kvitek L, Panáček A, Soukupova J, Kolář M,

Večeřová R, Prucek R, et al. Effect of surfactants and

polymers on stability and antibacterial activity of

silver nanoparticles (NPs). J Phsc Chem C.

;112(15):5825-34.

Norouzzadeh Helali Z, Esmailzadeh M. A

comparative study of antibacterial effects of

mouthwashes containing Ag/ZnO or ZnO

nanoparticles with chlorhexidine and investigation of

their cytotoxicity. Nanomed. J. 2018;5(2):102-10.

Mahltig B, Grethe T, Haase H. Antimicrobial

Coatings Obtained by Sol-Gel Method. Handbook of

Sol-Gel Science and Technology: Processing,

Characterization and Applications. 2018:3461-87.

Vijayan SR, Santhiyagu P, Ramasamy R, Arivalagan

P, Kumar G, Ethiraj K, et al. Seaweeds: A resource

for marine bionanotechnology. Enzyme Microb

Technol. 2016;95:45-57.

Similar Articles

You may also start an advanced similarity search for this article.