Skip to main navigation menu Skip to main content Skip to site footer

Research Articles

Early Access

Extracellular synthesis of silver nanoparticles using Amaranthus cruentus L. endophytic fungi: A novel approach to bioactive nanoparticles

DOI
https://doi.org/10.14719/pst.11230
Submitted
11 August 2025
Published
12-08-2026
Versions

Abstract

Nanotechnology plays a pivotal role in the production of biomedicine and treatment of diseases. In this study, we synthesised silver nanoparticles (AgNPs) by using the endophytes of Amaranthus cruentus L., characterised their properties and explored their bioactivity. The procedure adopted was extracellular or green synthesis of AgNPs by using the endophytic fungi isolated from A. cruentus. After synthesis of nanoparticles, they were characterised by ultraviolet-visible (UV-Vis) spectrophotometry, field emission-scanning electron microscopy (FE-SEM), transmission electron microscopy (TEM), energy dispersive X-ray analysis (EDAX), X-ray diffraction (XRD), Fourier transform infrared spectroscopy (FT-IR) and dynamic light scattering (DLS). The zeta potential of the synthesised nanoparticles was also studied by DLS. The changing of colour from pale yellow to deep brown indicated the reduction of silver ions (Ag+) into silver nanoparticles (Ag0). The particle size was determined following FE-SEM, TEM and DLS. Quantitative estimation and absorption peak determination at 450 nm, indicating changes in surface plasmon resonance (SPR) were carried out using UV-Vis analysis. The XRD studies confirmed the crystalline and face-centred cubic (FCC) structure of AgNPs. The presence of different functional groups was studied by FT-IR. Purity checking of silver was done by EDAX. Antimicrobial properties were studied using these AgNPs against both gram-positive (Bacillus sp.), gram-negative (Escherichia coli) and groups of pathogenic bacteria. The antioxidant properties of the synthesised AgNPs were also evaluated, showing 72 % scavenging activity.

References

  1. 1. Morelli M, Bahar O, Papadopoulou KK, Hopkins DL, Obradović A. Role of endophytes in plant health and defense against pathogens. Front Plant Sci. 2020;11:1312. https://doi.org/10.3389/fpls.2020.01312
  2. 2. Adeleke BS, Babalola OO. Pharmacological potential of fungal endophytes associated with medicinal plants: A review. J Fungi. 2021;7(2):147. https://doi.org/10.3390/jof7020147
  3. 3. Wolosik K, Markowska A. Amaranthus cruentus taxonomy, botanical description and review of its seed chemical composition. Nat Prod Commun. 2019;14(5):1934578X19844141. https://doi.org/10.1177/1934578X19844141
  4. 4. Torane R, Gaikwad S, Khatiwora E, Adsul V. Comparative estimation of phenol and flavonoid content of medicinally important plant–Amaranthus curentus. Int J Chem Tech Res. 2017;10(4):306–10.
  5. 5. Letchamo W, Hartman T, Gosslin A, Mamedov NA, Craker L. The accumulation of phenolic compounds in genetically selected Amaranthus hybridus is influenced by endophytic natural growth regulator. Int J Second Metab. 2017;5(1):12–9. http://dergipark.gov.tr/ijsm
  6. 6. Baraniak J, Kania-Dobrowolska M. The dual nature of amaranth—functional food and potential medicine. Foods. 2022;11(4):618. https://doi.org/10.3390/foods11040618
  7. 7. Hassanein EM, Barakat NA. Green synthesis of silver nanoparticles using Caltropis procera and Amaranthus ascendens stem extracts and evaluation of their antimicrobial activity. Afr J Biol Sci. 2023;19(1):53–67.
  8. 8. Rodrigues AS, Batista JG, Rodrigues MÁ, Thipe VC, Minarini LA, Lopes PS, et al. Advances in silver nanoparticles: a comprehensive review on their potential as antimicrobial agents and their mechanisms of action elucidated by proteomics. Front Microbiol. 2024;15:1440065. https://doi.org/10.3389/fmicb.2024.1440065
  9. 9. Alao FO, Elegbede JA, Lateef A, Adebayo TA, Gueguim-Kana EB, Beukes LS, et al. Field evaluation of crude extracts of Petiveria alliacea and biosynthesized silver nanoparticles against insect pests of Amaranthus caudatus (Lin.) and their effects on nutritional quality of Amaranthus leaves. Plant Nano Biol. 2025;11:100142. https://doi.org/10.1016/j.plana.2025.100142
  10. 10. Gemishev OT, Panayotova MI, Mintcheva NN, Djerahov LP, Tyuliev GT, Gicheva GD. A green approach for silver nanoparticles preparation by cell-free extract from Trichoderma reesei fungi and their characterization. Mater Res Express. 2019;6(9):095040.
  11. 11. Yousaf H, Mehmood A, Ahmad KS, Raffi M. Green synthesis of silver nanoparticles and their applications as an alternative antibacterial and antioxidant agents. Mater Sci Eng.: C. 2020;112:110901. https://doi.org/10.1016/j.msec.2020.110901
  12. 12. Mehta BK, Chhajlani M, Shrivastava BD. Green synthesis of silver nanoparticles and their characterization by XRD. J Phys Conf Ser. 2017;836(1):012050.
  13. 13. Alkhawwam A. Structural and spectroscopic properties of silver nanoparticles prepared by laser ablation in different aqueous solutions. J Exp Nanosci. 2025;20(1):2481877. https://doi.org/10.1080/17458080.2025.2481877
  14. 14. Abdallah BM, Ali EM. Green synthesis of silver nanoparticles using the Lotus lalambensis aqueous leaf extract and their anti-candidal activity against oral candidiasis. ACS omega. 2021;6(12):8151–62. https://doi.org/10.1021/acsomega.0c06009
  15. 15. Sebastian D. Characterization of green synthesized antibacterial silver nanoparticles from Amaranthus spinosus L. extract. BNS. 2022;12(2):502–11. https://doi.org/10.1007/s12668-022-00965-3
  16. 16. Anjum S, Abbasi BH, Shinwari ZK. Plant-mediated green synthesis of silver nanoparticles for biomedical applications: Challenges and opportunities. Pak J Bot. 2016;48(4):1731–60.
  17. 17. Rahdar A, Amini N, Askari F, Susan MA. Dynamic light scattering: A useful technique to characterize nanoparticles. J Nanoanalysis. 2019;6(2):80–9.
  18. 18. Kouhbanani MA, Beheshtkhoo N, Fotoohiardakani G, Hosseini-Nave H, Taghizadeh S, Amani AM. Green synthesis and characterization of spherical structure silver nanoparticles using wheatgrass extract. J Environ Treat Tech. 2019;7(1):142–9. http://www.jett.dormaj.com
  19. 19. Abbas R, Luo J, Qi X, Naz A, Khan IA, Liu H, et al. Silver nanoparticles: Synthesis, structure, properties and applications. NMS. 2024;14(17):1425. https://doi.org/10.3390/nano14171425
  20. 20. Suárez-Cerda J, Alonso-Nuñez G, Espinoza-Gómez H, Flores-López LZ. Synthesis, kinetics and photocatalytic study of “ultra-small” Ag-NPs obtained by a green chemistry method using an extract of Rosa ‘Andeli’double delight petals. J. Colloid Interface Sci. 2015;458:169–77. https://doi.org/10.1016/j.jcis.2015.07.049
  21. 21. Forough M, Farhadi K. Biological and green synthesis of silver nanoparticles. Turkish J Eng Env Sci. 2010;34(4):281–7.
  22. 22. Pasparakis G. Recent developments in the use of gold and silver nanoparticles in biomedicine. Wiley interdisciplinary reviews: Nano Bio Tech. 2022;14(5):e1817. https://doi.org/10.1002/wnan.1817
  23. 23. Geoprincy G, Srri BV, Poonguzhali U, Gandhi NN, Renganathan S. A review on green synthesis of silver nanoparticles. Asian J Pharm Clin Res. 2013;6(1):8–12.
  24. 24. Jangid H, Singh S, Kashyap P, Singh A, Kumar G. Advancing biomedical applications: an in-depth analysis of silver nanoparticles in antimicrobial, anticancer and wound healing roles. Front Pharmacol. 2024;15:1438227. https://doi.org/10.3389/fphar.2024.1438227
  25. 25. Roy S, Mukherjee B, Parvin N, Dutta S. Green synthesis of silver nanoparticles from endophytic fungus Colletotrichum sp. with special emphasis on antibacterial, antioxidant and plant growth promoting potential. Plant Sci Today. 2024;12(1):1–2. https://doi.org/10.14719/pst.3787
  26. 26. Tyagi S, Tyagi PK, Gola D, Chauhan N, Bharti RK. Extracellular synthesis of silver nanoparticles using entomopathogenic fungus: characterization and antibacterial potential. SN Appl Sci. 2019;1(12):1545. https://doi.org/10.1007/s42452-019-1593-y
  27. 27. Magdy G, Aboelkassim E, Abd Elhaleem SM, Belal F. A comprehensive review on silver nanoparticles: synthesis approaches, characterization techniques and recent pharmaceutical, environmental and antimicrobial applications. Microchem J. 2024;196:109615. https://doi.org/10.1016/j.microc.2023.109615
  28. 28. Sabir S, Arshad M, Ilyas N, Naz F, Amjad MS, Malik NZ, et al. Protective role of foliar application of green-synthesized silver nanoparticles against wheat stripe rust disease caused by Puccinia striiformis. Green Processing and Synthesis. 2022;11(1):29–43. https://doi.org/10.1515/gps-2022-0004
  29. 29. Isolation and identification of a novel endophyte from a plant AmarantSharma S, Roy S. hus spinosus. Int J Curr Microbiol App Sci. 2015;4(2):785–98.
  30. 30. Sanguiñedo P, Fratila RM, Estevez MB, Grazú V, Alborés S. Extracellular biosynthesis of silver nanoparticles using fungi and their antibacterial activity. Nano Biomed Eng. 2018;10(2):156–164.
  31. 31. Srikhao N, Ounkaew A, Srichiangsa N, Phanthanawiboon S, Boonmars T, Artchayasawat A, et al. Green-synthesised silver nanoparticle coating on paper for antibacterial and antiviral applications. Polym Bull. 2023;80(9):9651–68. https://doi.org/10.1007/s00289-022-04530-6
  32. 32. Singh V, Shrivastava A, Wahi N. Biosynthesis of silver nanoparticles by plants crude extracts and their characterization using UV, XRD, TEM and EDX. Afr J Biotechnol. 2015;14(33):2554–67. https://www.academicjournals.org/AJB
  33. 33. Baghani M, Es-Haghi A. Characterization of silver nanoparticles biosynthesized using Amaranthus cruentus. BINMs. 2020;9(3):129–36. https://doi.org/10.1680/jbibn.18.00051
  34. 34. Das R, Nath SS, Chakdar D, Gope G, Bhattacharjee R. Synthesis of silver nanoparticles and their optical properties. J Exp Nanosci. 2010;5(4):357–62. https://doi.org/10.1080/17458080903583915
  35. 35. Tanisa NY, Khan KA, Salahuddin M. Synthesis, evaluation and monitoring of red amaranth extract for power production. Adv Nat Sci Nanosci Nanotechnol. 2024;15(1):015001.
  36. 36. Shirley AD, Dayanand A, Sreedhar B, Dastager SG. Antimicrobial activity of silver nanoparticles synthesized from novel Streptomyces species. Digest J Nanomater Biostruct. 2010;5(2):447–51.
  37. 37. Jo JH, Singh P, Kim YJ, Wang C, Mathiyalagan R, Jin CG, et al. Pseudomonas deceptionensis DC5-mediated synthesis of extracellular silver nanoparticles. Artif Cells Nanomed Biotechnol. 2016;44(6):1576–81. https://doi.org/10.3109/21691401.2015.1068792
  38. 38. Keshari AK, Srivastava R, Singh P, Yadav VB, Nath G. Antioxidant and antibacterial activity of silver nanoparticles synthesized by Cestrum nocturnum. J Ayurveda Integr Med. 2020;11(1):37–44.
  39. 39. Naqvi SZ, Kiran U, Ali MI, Jamal A, Hameed A, Ahmed S, et al. Combined efficacy of biologically synthesized silver nanoparticles and different antibiotics against multidrug-resistant bacteria. Int J Nanomed. 2013:3187–95. https://doi.org/10.2147/IJN.S49284
  40. 40. Kim JS, Kuk E, Yu KN, Kim JH, Park SJ, Lee HJ, et al. Antimicrobial effects of silver nanoparticles. NBM. 2007;3(1):95–101.
  41. 41. Gresta F, Meineri G, Oteri M, Santonoceto C, Lo Presti V, Costale A, et al. Productive and qualitative traits of Amaranthus cruentus L.: an unconventional healthy ingredient in animal feed. Anim. 2020;10(8):1428. https://doi.org/10.3390/ani10081428
  42. 42. Ali M. Determination of proximate, phytochemicals and minerals composition of Amaranthus spp. South Asian Res J Pharm Sci. 2021;3(5):67–72.
  43. 43. Li Z, Chang P, Gao L, Wang X. The endophytic fungus Albifimbria verrucaria from wild grape as an antagonist of Botrytis cinerea and other grape pathogens. J Phytopathol. 2020;110(4):843–50. https://doi.org/10.1094/PHYTO-09-19-0347-R
  44. 44. Zaky MN, Elhameed NM, El Mehalawy AA, Mohamed SS. Mycosynthesis of thermostable silver nanoparticles by the endophytic Albifimbria verrucaria with antimicrobial and antiproliferative activities. Malays J Microbiol. 2022;18(4).
  45. 45. Abou El-Nour KM, Eftaiha AA, Al-Warthan A, Ammar RA. Synthesis and applications of silver nanoparticles. Arab J Chem. 2010;3(3):135–40. https://doi.org/10.1016/j.arabjc.2010.04.008
  46. 46. Banala RR, Nagati VB, Karnati PR. Green synthesis and characterization of Carica papaya leaf extract coated silver nanoparticles through X-ray diffraction, electron microscopy and evaluation of bactericidal properties. Saudi J Biol Sci. 2015;22(5):637–44.
  47. 47. Namasivayam SK, Samrat K, Ganesh S. Preparation of chitosan stabilized ofloxacin-gold nano conjugate for the improved anti bacterial activity against human pathogenic bacteria. Innovare J Med Sci. 2013;1:7–11.
  48. 48. Guilger-Casagrande M, Lima RD. Synthesis of silver nanoparticles mediated by fungi: a review. Front Bioeng Biotechnol. 2019;7:287. https://doi.org/10.3389/fbioe.2019.00287
  49. 49. Bruna T, Maldonado-Bravo F, Jara P, Caro N. Silver nanoparticles and their antibacterial applications. Int J Mol Sci. 2021;22(13):7202. https://doi.org/10.3390/ijms22137202
  50. 50. Keshari AK, Srivastava A, Chowdhury S, Srivastava R. Green synthesis of silver nanoparticles using Catharanthus roseus: Its antioxidant and antibacterial properties. Nanomed Res J. 2021 ;6(1):17–27.

Downloads

Download data is not yet available.