» Articles » PMID: 37179630

Synthesis and Characterization of ZnO Nanoparticles Derived from Biomass () and Assessment of Potential Anticancer Activity

Overview
Journal ACS Omega
Specialty Chemistry
Date 2023 May 14
PMID 37179630
Authors
Affiliations
Soon will be listed here.
Abstract

Cancer treatment development is hampered by chemotherapy side effects, drug resistance, and tumor metastasis, giving cancer patients a gloomy prognosis. Nanoparticles (NPs) have developed as a promising medicinal delivery technique in the last 10 years. The zinc oxide (ZnO) NPs can precisely and captivatingly promote the apoptosis of cancer cells in cancer treatment. There is also an urgent need to discover novel anti-cancer therapies, and current research suggests that ZnO NPs hold significant promise. ZnO NPs have been tested for phytochemical screening and in vitro chemical efficiency. The green synthesis method was employed for the preparation of ZnO NPs from (L.) (Khakshi). An alcoholic and aqueous extract of was prepared using the Soxhlet method. Various chemical compounds were revealed in the methanolic extract through qualitative analysis. The results of quantitative analysis showed that the total phenolic content has the highest amount (42.7861 mgGAE/g), while the resultant amounts of (5.72175 mgAAE/g) and (15.20725 mgAAE/g) were obtained in total flavonoid content and antioxidant property, respectively. ZnO NPs were prepared using a 1:1 ratio. The synthesized ZnO NPs were identified to have a hexagonal wurtzite crystal arrangement. The nanomaterial was characterized by scanning electron microscopy, transmission electron microscopy, and UV-visible spectroscopy. The ZnO-NPs' morphology exhibited an absorbance at 350-380 nm. Furthermore, different fractions were prepared and assessed for anticancer activity. As a result of this anticancer activity, all fractions exhibited cytotoxic activity against both BHK and HepG2 human cancer cell lines. The methanol fraction showed the highest activity of 90% (IC50 = 0.4769 mg/mL), followed by the hexane fraction that showed 86.72%, ethyl acetate showed 85%, and chloroform fraction showed 84% against BHK and HepG2 cell lines. These findings suggested that synthesized ZnO-NPs have anticancer potential.

Citing Articles

The Use of ZnO Quantum Dots to Improve the Electrical Properties of Silicon Solar Cells.

Szindler M, Szindler M, Lukaszkowicz K, Matus K, Fijalkowski M, Wegrzyn T Materials (Basel). 2025; 18(4).

PMID: 40004384 PMC: 11857328. DOI: 10.3390/ma18040861.


Foliar spraying with zinc oxide nanoparticles enhances the anti-osteoporotic efficacy of the fruit extracts of L. by stimulating silybin production.

Fahad Almulhim B, Sherif F, Younis N, Safwat Y, Khattab S Front Plant Sci. 2025; 15():1421485.

PMID: 39840357 PMC: 11747799. DOI: 10.3389/fpls.2024.1421485.


London Rocket ( L.) as Healthy Green: Bioactive Compounds and Bioactivity of Plants Grown in Wild and Controlled Environments.

Chileh-Chelh T, da Cunha-Chiamolera T, Urrestarazu M, Ezzaitouni M, Lopez-Ruiz R, Najera C Molecules. 2025; 30(1.

PMID: 39795089 PMC: 11721195. DOI: 10.3390/molecules30010031.


Biogenic Zinc Oxide Nanoparticles as a Promising Antibacterial Agent: Synthesis and Characterization.

Okaiyeto K, Gigliobianco M, Di Martino P Int J Mol Sci. 2024; 25(17).

PMID: 39273447 PMC: 11395547. DOI: 10.3390/ijms25179500.


Facile synthesis of ZnO nanoparticles using extract and its role as catalyst in production of bio-oil and degradation of methylene blue dye.

Jamil H, Faizan M Heliyon. 2024; 10(16):e35828.

PMID: 39220943 PMC: 11363827. DOI: 10.1016/j.heliyon.2024.e35828.


References
1.
Al-Saran N, Subash-Babu P, Al-Nouri D, Alfawaz H, Alshatwi A . Zinc enhances CDKN2A pRb1 expression and regulates functional apoptosis via upregulation of p53 and p21 expression in human breast cancer MCF-7 cell. Environ Toxicol Pharmacol. 2016; 47:19-27. DOI: 10.1016/j.etap.2016.08.002. View

2.
Dagdeviren C, Hwang S, Su Y, Kim S, Cheng H, Gur O . Transient, biocompatible electronics and energy harvesters based on ZnO. Small. 2013; 9(20):3398-404. DOI: 10.1002/smll.201300146. View

3.
Krol A, Pomastowski P, Rafinska K, Railean-Plugaru V, Buszewski B . Zinc oxide nanoparticles: Synthesis, antiseptic activity and toxicity mechanism. Adv Colloid Interface Sci. 2017; 249:37-52. DOI: 10.1016/j.cis.2017.07.033. View

4.
Al-Massarani S, El Gamal A, Alam P, Al-Sheddi E, Al-Oqail M, Farshori N . Isolation, biological evaluation and validated HPTLC-quantification of the marker constituent of the edible Saudi plant L. Saudi Pharm J. 2017; 25(5):750-759. PMC: 5506741. DOI: 10.1016/j.jsps.2016.10.012. View

5.
Kuppusamy P, Yusoff M, Pragas Maniam G, Govindan N . Biosynthesis of metallic nanoparticles using plant derivatives and their new avenues in pharmacological applications - An updated report. Saudi Pharm J. 2016; 24(4):473-84. PMC: 4908060. DOI: 10.1016/j.jsps.2014.11.013. View