Synthesis, characterization and antimicrobial activity of selenium nanoparticles with Clitoria ternatea on oral pathogens

https://doi.org/10.53730/ijhs.v6nS1.5316

Authors

  • Manali Deb Barma Post graduate student, Department of Public Health Dentistry, Saveetha Dental College and Hospitals, Saveetha Institute of Medical and technical sciences (SIMATS), Saveetha University, Chennai, India
  • Srisakthi Doraikanan Reader, Department of Public Health Dentistry, Saveetha Dental College and Hospitals, Saveetha Institute of Medical and technical sciences (SIMATS), Saveetha University, Chennai, India

Keywords:

antifungal, antimicrobial, Clitoria ternatea, green nano synthesis, selenium

Abstract

Background: Selenium nanoparticles have been studied for possible therapeutic effects in a variety of oxidative stress and inflammation-mediated diseases such as arthritis, cancer, diabetes, nephropathy, as well as antimicrobial properties. Clitoria ternatea is a perennial herbaceous plant which has been documented for its antimicrobial properties that are beneficial to human health. Therefore, this study was designed to synthesize, characterize and investigate the synergistic antimicrobial activity of selenium nanoparticles with Clitoria ternatea on oral pathogens. Materials and method: Green synthesis of selenium nanoparticles was achieved by a simple biological procedure using the reducing power of Clitoria ternatea flower extract. The synthesized nanoparticles were characterized using UV-vis-spectroscopy and Transmission Electron Microscopy. The antimicrobial activity was assessed using agar well diffusion method against strains of S.aureus, S.mutans, E.faecalis and C.albicans. Results: The synthesised nanoparticles showed potential antimicrobial activity against strains of gram positive bacteria especially against S.aureus where 35 mm of inhibitory activity was observed. They also showed enhanced antifungal property as compared to the control. 

Downloads

Download data is not yet available.

References

Yattinahalli SS, Kapatkar SB. Review of Nanoscience Materials and its applications. Research Journal of [Internet]. 2016; Available from: https://www.researchgate.net/profile/Shridhar_Mathad4/publication/313327282_Review_of_Nanoscience_Materials_and_its_applications/links/5c4f3344299bf12be3ea1e5d/Review-of-Nanoscience-Materials-and-its-applications.pdf

Jeevanandam J, Barhoum A, Chan YS, Dufresne A, Danquah MK. Review on nanoparticles and nanostructured materials: history, sources, toxicity and regulations. Beilstein J Nanotechnol [Internet]. 2018 Apr 3;9:1050–74. Available from: http://dx.doi.org/10.3762/bjnano.9.98

Menon S, Ks SD, R S, S R, S VK. Selenium nanoparticles: A potent chemotherapeutic agent and an elucidation of its mechanism. Colloids Surf B Biointerfaces [Internet]. 2018 Oct 1;170:280–92. Available from: http://dx.doi.org/10.1016/j.colsurfb.2018.06.006

Sharma VK, Filip J, Zboril R, Varma RS. Natural inorganic nanoparticles--formation, fate, and toxicity in the environment. Chem Soc Rev [Internet]. 2015 Dec 7;44(23):8410–23. Available from: http://dx.doi.org/10.1039/c5cs00236b

Priyadarsini S, Mukherjee S, Mishra M. Nanoparticles used in dentistry: A review. Journal of Oral Biology and Craniofacial Research [Internet]. 2018 Jan 1;8(1):58–67. Available from: https://www.sciencedirect.com/science/article/pii/S2212426817301963

Khurana A, Tekula S, Saifi MA, Venkatesh P, Godugu C. Therapeutic applications of selenium nanoparticles. Biomed Pharmacother [Internet]. 2019 Mar;111:802–12. Available from: http://dx.doi.org/10.1016/j.biopha.2018.12.146

Huang Y, He L, Liu W, Fan C, Zheng W, Wong Y-S, et al. Selective cellular uptake and induction of apoptosis of cancer-targeted selenium nanoparticles. Biomaterials [Internet]. 2013 Sep;34(29):7106–16. Available from: http://dx.doi.org/10.1016/j.biomaterials.2013.04.067

Kumar GS, Kulkarni A, Khurana A, Kaur J, Tikoo K. Selenium nanoparticles involve HSP-70 and SIRT1 in preventing the progression of type 1 diabetic nephropathy. Chem Biol Interact [Internet]. 2014 Nov 5;223:125–33. Available from: http://dx.doi.org/10.1016/j.cbi.2014.09.017

Wang H, Wei W, Zhang S-Y, Shen Y-X, Yue L, Wang N-P, et al. Melatonin-selenium nanoparticles inhibit oxidative stress and protect against hepatic injury induced by Bacillus Calmette-Guérin/lipopolysaccharide in mice. J Pineal Res [Internet]. 2005 Sep;39(2):156–63. Available from: http://dx.doi.org/10.1111/j.1600-079X.2005.00231.x

Guisbiers G, Wang Q, Khachatryan E, Mimun LC, Mendoza-Cruz R, Larese-Casanova P, et al. Inhibition of E. coli and S. aureus with selenium nanoparticles synthesized by pulsed laser ablation in deionized water. Int J Nanomedicine [Internet]. 2016 Aug 8;11:3731–6. Available from: http://dx.doi.org/10.2147/IJN.S106289

Lara HH, Guisbiers G, Mendoza J, Mimun LC, Vincent BA, Lopez-Ribot JL, et al. Synergistic antifungal effect of chitosan-stabilized selenium nanoparticles synthesized by pulsed laser ablation in liquids against Candida albicans biofilms. Int J Nanomedicine [Internet]. 2018 May 3;13:2697–708. Available from: http://dx.doi.org/10.2147/IJN.S151285

Agarwal H, Venkat Kumar S, Rajeshkumar S. A review on green synthesis of zinc oxide nanoparticles – An eco-friendly approach [Internet]. Vol. 3, Resource-Efficient Technologies. 2017. p. 406–13. Available from: http://dx.doi.org/10.1016/j.reffit.2017.03.002

Badria F, AbouHabieb M, Bar FA. Synthesis of Nanoparticles Using Green Chemistry: Green Synthesis [Internet]. GRIN Verlag; 2019. 204 p. Available from: https://play.google.com/store/books/details?id=ww1RzQEACAAJ

Agarwal H, Menon S, Venkat Kumar S, Rajeshkumar S. Mechanistic study on antibacterial action of zinc oxide nanoparticles synthesized using green route [Internet]. Vol. 286, Chemico-Biological Interactions. 2018. p. 60–70. Available from: http://dx.doi.org/10.1016/j.cbi.2018.03.008

Malarkodi C, Rajeshkumar S, Vanaja M, Paulkumar K, Gnanajobitha G, Annadurai G. Eco-friendly synthesis and characterization of gold nanoparticles using Klebsiella pneumoniae [Internet]. Vol. 3, Journal of Nanostructure in Chemistry. 2013. Available from: http://dx.doi.org/10.1186/2193-8865-3-30

Jamil N, Pa’ee F. Antimicrobial activity from leaf, flower, stem, and root of Clitoria ternatea – A review [Internet]. 2018. Available from: http://dx.doi.org/10.1063/1.5050140

Mukherjee PK, Kumar V, Kumar NS, Heinrich M. The Ayurvedic medicine Clitoria ternatea--from traditional use to scientific assessment. J Ethnopharmacol [Internet]. 2008 Dec 8;120(3):291–301. Available from: http://dx.doi.org/10.1016/j.jep.2008.09.009

Oguis GK, Gilding EK, Jackson MA, Craik DJ. Butterfly Pea (Clitoria ternatea), a Cyclotide-Bearing Plant With Applications in Agriculture and Medicine. Front Plant Sci [Internet]. 2019 May 28;10:645. Available from: http://dx.doi.org/10.3389/fpls.2019.00645

Mahmad N, Taha RM, Othman R, Abdullah S, Anuar N, Elias H, et al. Anthocyanin as potential source for antimicrobial activity in Clitoria ternatea L. and Dioscorea alata L. Pigment resin technol [Internet]. 2018 Nov 5;47(6):490–5. Available from: https://www.emerald.com/insight/content/doi/10.1108/PRT-11-2016-0109/full/html

Hosnedlova B, Kepinska M, Skalickova S, Fernandez C, Ruttkay-Nedecky B, Peng Q, et al. Nano-selenium and its nanomedicine applications: a critical review. Int J Nanomedicine [Internet]. 2018 Apr 10;13:2107–28. Available from: http://dx.doi.org/10.2147/IJN.S157541

Guan B, Yan R, Li R, Zhang X. Selenium as a pleiotropic agent for medical discovery and drug delivery. Int J Nanomedicine [Internet]. 2018 Nov 14;13:7473–90. Available from: http://dx.doi.org/10.2147/IJN.S181343

Malarkodi C, Rajeshkumar S, Paulkumar K, Vanaja M, Gnanajobitha G, Annadurai G. Biosynthesis and Antimicrobial Activity of Semiconductor Nanoparticles against Oral Pathogens. Bioinorg Chem Appl [Internet]. 2014 Mar 4;2014:347167. Available from: http://dx.doi.org/10.1155/2014/347167

Begum R, Farooqi ZH, Naseem K, Ali F, Batool M, Xiao J, et al. Applications of UV/Vis Spectroscopy in Characterization and Catalytic Activity of Noble Metal Nanoparticles Fabricated in Responsive Polymer Microgels: A Review. Crit Rev Anal Chem [Internet]. 2018 Nov 2;48(6):503–16. Available from: http://dx.doi.org/10.1080/10408347.2018.1451299

Bartosiak M, Giersz J, Jankowski K. Analytical monitoring of selenium nanoparticles green synthesis using photochemical vapor generation coupled with MIP-OES and UV–Vis spectrophotometry [Internet]. Vol. 145, Microchemical Journal. 2019. p. 1169–75. Available from: http://dx.doi.org/10.1016/j.microc.2018.12.024

Mohanta YK, Behera SK. Biosynthesis, characterization and antimicrobial activity of silver nanoparticles by Streptomyces sp. SS2 [Internet]. Vol. 37, Bioprocess and Biosystems Engineering. 2014. p. 2263–9. Available from: http://dx.doi.org/10.1007/s00449-014-1205-6

K N, Nirubama K, Rajeshkumar S. Enhanced Antibacterial Activity of Silver Nanoparticles Synthesised Using Symplocos Racemosa [Internet]. Vol. 11, International Journal of Research in Pharmaceutical Sciences. 2020. p. 4120–5. Available from: http://dx.doi.org/10.26452/ijrps.v11i3.2615

Liang P, Qian D, Zhenfeng G, Yongyi C, Yi S, Liang L. Biological Selenium Nano-particles Modify Immune Responses of Macrophages Exposed to Bladder Tumor Antigens [Internet]. Journal of Cluster Science. 2020. Available from: http://dx.doi.org/10.1007/s10876-020-01920-6

Shakibaie M, Salari Mohazab N, Ayatollahi Mousavi SA. Antifungal Activity of Selenium Nanoparticles Synthesized by Bacillus species Msh-1 Against Aspergillus fumigatus and Candida albicans. Jundishapur J Microbiol [Internet]. 2015 Sep;8(9):e26381. Available from: http://dx.doi.org/10.5812/jjm.26381

Hadjimarkos DM. Effect of Selenium on Dental Caries [Internet]. Vol. 10, Archives of Environmental Health: An International Journal. 1965. p. 893–9. Available from: http://dx.doi.org/10.1080/00039896.1965.10664115

Rangrazi A, Bagheri H, Ghazvini K, Boruziniat A, Darroudi M. Synthesis and antibacterial activity of colloidal selenium nanoparticles in chitosan solution: a new antibacterial agent [Internet]. Vol. 6, Materials Research Express. 2020. p. 1250h3. Available from: http://dx.doi.org/10.1088/2053-1591/ab6a56

Tran PA, O’Brien-Simpson N, Palmer JA, Bock N, Reynolds EC, Webster TJ, et al. Selenium nanoparticles as anti-infective implant coatings for trauma orthopedics against methicillin-resistant Staphylococcus aureus and epidermidis: in vitro and in vivo assessment. Int J Nanomedicine [Internet]. 2019 Jul 1;14:4613–24. Available from: http://dx.doi.org/10.2147/IJN.S197737

Tran P, Hamood A, Mosley T, Gray T, Jarvis C, Webster D, et al. Organo-selenium-containing dental sealant inhibits bacterial biofilm. J Dent Res [Internet]. 2013 May;92(5):461–6. Available from: http://dx.doi.org/10.1177/0022034513482141

Filipović N, Ušjak D, Milenković MT, Zheng K, Liverani L, Boccaccini AR, et al. Comparative Study of the Antimicrobial Activity of Selenium Nanoparticles With Different Surface Chemistry and Structure. Front Bioeng Biotechnol [Internet]. 2020;8:624621. Available from: http://dx.doi.org/10.3389/fbioe.2020.624621

Parsameher N, Rezaei S, Khodavasiy S, Salari S, Hadizade S, Kord M, et al. Effect of biogenic selenium nanoparticles on ERG11 and CDR1 gene expression in both fluconazole-resistant and -susceptible Candida albicans isolates. Curr Med Mycol [Internet]. 2017 Sep;3(3):16–20. Available from: http://dx.doi.org/10.29252/cmm.3.3.16

Alagesan V, Venugopal S. Green Synthesis of Selenium Nanoparticle Using Leaves Extract of Withania somnifera and Its Biological Applications and Photocatalytic Activities [Internet]. Vol. 9, BioNanoScience. 2019. p. 105–16. Available from: http://dx.doi.org/10.1007/s12668-018-0566-8

Anu K, Singaravelu G, Murugan K, Benelli G. Green-Synthesis of Selenium Nanoparticles Using Garlic Cloves (Allium sativum): Biophysical Characterization and Cytotoxicity on Vero Cells [Internet]. Vol. 28, Journal of Cluster Science. 2017. p. 551–63. Available from: http://dx.doi.org/10.1007/s10876-016-1123-7

Liang T, Qiu X, Ye X, Liu Y, Li Z, Tian B, et al. Biosynthesis of selenium nanoparticles and their effect on changes in urinary nanocrystallites in calcium oxalate stone formation. 3 Biotech [Internet]. 2020 Jan;10(1):23. Available from: http://dx.doi.org/10.1007/s13205-019-1999-7

Hassanien R, Abed‐Elmageed AAI, Husein DZ. Eco‐Friendly Approach to Synthesize Selenium Nanoparticles: Photocatalytic Degradation of Sunset Yellow Azo Dye and Anticancer Activity [Internet]. Vol. 4, ChemistrySelect. 2019. p. 9018–26. Available from: http://dx.doi.org/10.1002/slct.201901267

Published

31-03-2022

How to Cite

Barma, M. D., & Doraikanan, S. (2022). Synthesis, characterization and antimicrobial activity of selenium nanoparticles with Clitoria ternatea on oral pathogens. International Journal of Health Sciences, 6(S1), 2529–2538. https://doi.org/10.53730/ijhs.v6nS1.5316

Issue

Section

Peer Review Articles