Green Synthesis of Silver Nanoparticles from Rotheca serrata (L.) Steane & Mabb., its Physicochemical Characterization and Evaluation of its Biological Activities

DOI:

https://doi.org/10.37285/ijpsn.2024.17.3.6

Authors

Abstract

Background of the topic: In recent years, nanoparticle synthesis is an area that is extensively used in various scientific fields. Green synthesis of the silver nanoparticle is much more cost-effective. 

Purpose of the study: This work is based on the study of the synthesis of silver nanoparticles (AgNPs) by using the leaf extract of Rotheca serrata (L.) Steane & Mabb belongs to the family Verbenaceae. The study also involves the characterization of AgNPs and their antibacterial, antioxidant, anti-inflammatory activity and effect on germination. 

Method: Rotheca serrata was collected from Nilambur, Kerala. Consequently, the biosynthesis of silver nanoparticles was carried out with aqueous extract, and characterization was done by using the UV-Vis spectra, at the frequency of 200 -    600 nm by the spectrometer, XRD, and FTIR and checked the biological activities. 

Result: The green synthesized AgNPs from Rotheca serrata showed significant antimicrobial, antioxidant, and anti-inflammatory properties and also showed excellent effects on the germination of four species of common vegetables. Through this method, we examined the plant response to AgNPs in the pure culture technique. 

Conclusion:  Rotheca serrata-based AgNPs can be used for the production of nano products and this will definitely. The synthesis of nanoparticles by using Verbenaceae is an eco-friendly, reliable process while also being suitable for large-scale production. Furthermore, it is a prompt and easy-to-handle process when compared to the chemical, physical, and microbe-mediated synthesis processes.  

Downloads

Download data is not yet available.

Metrics

Metrics Loading ...

Keywords:

Rotheca serrata, verbenaceae, green synthesis, antibacterial, antioxidant, anti-inflammatory

Published

2024-06-30

How to Cite

1.
Mathew S, M P A. Green Synthesis of Silver Nanoparticles from Rotheca serrata (L.) Steane & Mabb., its Physicochemical Characterization and Evaluation of its Biological Activities. Scopus Indexed [Internet]. 2024 Jun. 30 [cited 2024 Jul. 6];17(3):7364-7. Available from: http://ijpsnonline.com/index.php/ijpsn/article/view/2965

Issue

Section

Research Articles

References

Liu J, Qiao S Z, H Q H, Lu G Q. Magnetic nanocomposites with mesoporous structures: synthesis and applications. Small. 2011; 7: 425-443.

Popescu M, Velea A, Lorinczi A. Biogenic production of nanoparticles.Digest Journal of Nanomaterials and Biostructures. 2010; 5: 1035-1040.

Mathew S, Victorio C P, Sidhi J, BH B T. Biosynthesis of silver nanoparticle using flowers of Calotropis gigantea (L.) WT Aiton and activity against pathogenic bacteria. Arabian Journal of Chemistry.2020; 13(12): 9139 - 9144.

Logeswari P, Silambarasan S, Abraham J. Synthesis of silver nanoparticles using plants extract and analysis of their antimicrobial property. Journal of Saudi Chemical Society. 2015; 19(3): 311-317.

Kumar P V, Pammi S V N, Kollu P, Satyanarayana K V V, Shameem U. Green synthesis and characterization of silver nanoparticles using Boerhaavia diffusa plant extract and their antibacterial activity. Industrial Crops and Products. 2014; 52: 562-566.

Mathew S. Phytonanotechnology: A historical perspective, current challenges, and prospects. Phytonanotechnology 2020 (pp.1-20). Elsevier, USA.

Gnana Jobitha G, Annadurai G, Kannan C. Green synthesis of silver nanoparticle using Elettaria cardamomom and assessment of its antimicrobial activity. International Journal of Pharmaceutical Sciences and Research. 2012; 3(3): 323-330.

Patil A B, Mengane S K. Green synthesis of silver nano particles from Clerodendrum serratum and antimicrobial activity against human pathogens. Journal of Bionanoscience. 2016;10(6): 491- 494.

Gadade J P, Patil S A.Phytochemical paradigm, antioxidant status and their correlation in Rotheca serrata (L.) Steane and Mabb. Annals of Phytomedicine. 2019; 8(2): 156-166.

Arif T, Bhosale J D, Kumar N, Mandal T K, Bendre R S, Lavekar G S, Dabur, R. Natural products–antifungal agents derived from plants. Journal of Asian natural products research.2009; 11(7):621-638.

Raman R P, Parthiban S, Srinithya B, Kumar V V, Anthony S P, Sivasubramanian A, Muthuraman M S. Biogenic silver nanoparticles synthesis using the extract of the medicinal plant Clerodendron serratum and its in-vitro antiproliferative activity. Materials Letters. 2015; 160: 400 - 403.

Loo, Y. Y., Rukayadi, Y., Nor-Khaizura, M. A. R., Kuan, C. H., Chieng, B. W., Nishibuchi, M., Radu, S. In vitro antimicrobial activity of green synthesized silver nanoparticles against selected gram-negative foodborne pathogens. Frontiers in microbiology, 2018; 9, 1555.

Manandhar S, Luitel S, Dahal R K. In vitro antimicrobial activity of some medicinal plants against human pathogenic bacteria. Journal of tropical medicine. 2019; 1-5.

Balouiri M, Sadiki M, Ibnsouda S K. Methods for in vitro evaluating antimicrobial activity: A review. Journal of pharmaceutical analysis. 2016; 6(2): 71-79.

Rajan Rushender C, Madhavieerike N. Madhusudhanan, Venugoalaraokonda. Invitro Antioxidant and free radical scavenging activity of Nympha pubescens. Journal of pharmaceutical research. 2012; 5(7):3804-3806.

Feng Q L, Wu J, Chen G Q, Cui F Z, Kim T N, Kim J O. A mechanistic study of the antibacterial effect of silver ions on Escherichia coli and Staphylococcus aureus. Journal of Biomedical Materials Research. 2000; 52: 662-668.

Brand-Williams W, Cuvelier M E, Berset C L W T. Use of a free radical method to evaluate antioxidant activity. LWT-Food science and Technology. 1995; 28(1): 25-30.

Bhujbal S S, Kewatkar S M K, More L S, Patil M J. Antioxidant effects of roots of Clerodendrum serratum Linn. Pharmacognosy Research. 2009; 1(5): 294-298.

Sen S, Chakraborty R. The role of antioxidants in human health. In Oxidative stress: diagnostics, prevention, and therapy. American Chemical Society. 2011; 1-37.

Dey P, Chatterjee P, Chandra S, Bhattacharya S. Comparative in vitro evaluation of anti-inflammatory effects of aerial parts and roots from Mikania scandens. Journal of Advanced Pharmacy Education & Research. 2011; 1: 271-277.

Lin D, Xing B. Phytotoxicity of nanoparticles: inhibition of seed germination and root growth. Environmental pollution. 2007; 150(2): 243-250.

Banerjee P, Satapathy M, Mukhopahayay A, Das P. Leaf extract mediated green synthesis of silver nanoparticles from widely available Indian plants: synthesis, characterization, antimicrobial property and toxicity analysis. Bioresources and Bioprocessing. 2014; 1: 1-10.

Dey A., Dasgupta A, Kumar V, Tyagi A, Verma A K. Evaluation of the of antibacterial efficacy of polyvinylpyrrolidone (PVP) and tri-sodium citrate (TSC) silver nanoparticles. International Nano Letters. 2015; 5: 223-230.

Stobie N, Duffy B, McCormack D E, Colreavy J, Hidalgo M, McHale P. Prevention of Staphylococcus epidermisdis biofilm formation using a low - temperature processed silver doped phenyltriethoxysilane solgel coating. Biomaterial.2008; 29: 963-969.

Bhujbal S S. Evaluation and acute toxicity studies of herbally prepared silver nanoparticles and Rajat Bhasma using modern analytical instruments. International Journal of Green Pharmacy, 2021;15(2):201-207.

Prasad M P, Sushant S, Chikkaswamy B K. Phytochemical analysis, antioxidant potential, antibacterial activity and molecular characterization of Clerodendrum species. International journal of molecular biology. 2012; 3(3): 71-76.

Lin D, Xing B. Phytotoxicity of nanoparticles: inhibition of seed germination and root growth. Environmental Pollution. 2007; 150(2):243-50.

Thuesombat P, Hannongbua S, Akasit S, Chadchawan S. Effect of silver nanoparticles on rice (Oryza sativa L. cv. KDML 105) seed germination and seedling growth. Ecotoxicology and environmental safety. 2014; 104: 302-309.