Inhibition of CT26 Colon Cancer Cell Growth by Green-Synthesised Silver Nanoparticles-Mediated Strobilanthes crispus Extract

Main Article Content

Siti Aisyah Abd Ghafar
Ariff Haikal Hairil Anuar
Muhammad Ariff Hakimi Salihuddin
Rohazila Mohamad Hanafiah

Abstract

Background: This study evaluated the antiproliferative and pro-apoptotic activities of green-synthesised silver nanoparticles using Strobilanthes crispus extract (AgNP-SC) against CT26 colon carcinoma cells. Strobilanthes crispus (S. crispus), rich in phytochemicals, was utilised as a natural reducing and stabilising agent during AgNP synthesis, potentially enhancing their cytotoxic potential.


Methods: AgNP-SC was synthesised by reducing silver nitrate with an aqueous extract of S. crispus, with nanoparticle formation indicated by the appearance of a dark brown colour. Cytotoxicity was assessed using the 3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyltetrazolium bromide (MTT) assay. Apoptotic changes were examined through acridine orange/propidium iodide (AO/PI) staining, while cell cycle distribution was analysed using flow cytometry. Gene expression of apoptotic markers was analysed using reverse transcription polymerase chain reaction (RT-PCR).


Results: MTT analysis demonstrated a significant, concentration-dependent decrease in CT26 cell viability following AgNP-SC treatment, with cell viability reduced to below 50% at concentrations ≥25 µg/mL (P < 0.05). AO/PI staining revealed classical apoptotic features, including chromatin condensation, membrane blebbing, and nuclear fragmentation. Flow cytometric analysis showed a significant accumulation of cells in the G1 phase accompanied by a marked reduction in the S-phase population in treated groups compared to untreated controls (P < 0.05), indicating G1 cell cycle arrest and inhibition of DNA synthesis. RT-PCR analysis further demonstrated significant upregulation of pro-apoptotic genes (CED-3 and CED-4) and downregulation of the anti-apoptotic gene CED-9 (P < 0.05), confirming activation of the intrinsic mitochondrial apoptotic pathway.


Conclusion: Green-synthesised AgNP-SC exhibits potent anticancer properties, suggesting its potential as a natural-based nanotherapeutic agent for colon cancer. Further in vivo and mechanistic studies are warranted to validate its therapeutic efficacy.

Article Details

How to Cite
1.
Abd Ghafar SA, Hairil Anuar AH, Salihuddin MAH, Mohamad Hanafiah R. Inhibition of CT26 Colon Cancer Cell Growth by Green-Synthesised Silver Nanoparticles-Mediated Strobilanthes crispus Extract. Malays J Med Sci [Internet]. 2026 Aug. 31 [cited 2026 Sep. 9];33(4):51–62. Available from: https://ejournal.usm.my/mjms/article/view/mjms_vol33-no4-2026_4
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Original Articles

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