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Multitargeted Anticancer Strategy through DNA Damage and Mitochondrial Collapse by a Ferrocene-Benzimidazolium Salt
Nitisha Beniwal1, Bikash Lahkar2, Girbide Amitkumar Ramakant2
1Department of Biomedical Engineering, Indian Institute of Technology Hyderabad, Kandi, Sangareddy, Hyderabad, Telangana 502285, India.
Abstract:
The development of targeted and selective organometallic anticancer drugs is a primary emphasis in contemporary chemotherapeutic research. We provide the synthesis and thorough biological assessment of a new benzimidazolium-derived ferrocenyl compound, N-ferrocenylmethyl-N'-(2-pyridylmethyl) benzimidazolium iodide (FBP). The compound demonstrates significant cytotoxic efficacy against HeLa cervical cancer cells, exhibiting a substantially reduced IC₅₀ value and an elevated selectivity index relative to Doxorubicin and Ferrocene. Biocompatibility evaluations in standard fibroblast cell lines (NIH3/T3 and L929) demonstrated no off-target toxicity within physiologically pertinent dosage ranges. Cellular uptake investigations utilizing Hoechst and MitoTracker Green labeling demonstrated effective internalization and primary mitochondrial location of FBP in HeLa cells. Mechanistic studies, encompassing Live/Dead viability assays, DCFDA-based quantification of reactive oxygen species, singlet oxygen detection through SOSG, and JC-1 analysis of mitochondrial membrane potential, collectively indicate that FBP induces oxidative stress and mitochondrial dysfunction, resulting in apoptotic cell death. Subsequent assessments related to apoptosis revealed distinct nuclear condensation and fragmentation through DAPI staining, along with notable DNA double-strand break production indicated by γ-H2AX expression. Furthermore, 3D multicellular spheroid experiments validated the penetrating ability and prolonged anticancer effectiveness of FBP in a tumor-mimicking environment.
Insights
A novel ferrocenyl compound, FBP, shows potent anticancer activity against cervical cancer cells with high selectivity. It effectively targets cancer cells, inducing apoptosis via mitochondrial dysfunction and oxidative stress, with promising results in 3D tumor models.
Area of Science:
- Organometallic Chemistry
- Medicinal Chemistry
- Cancer Therapeutics
Background:
- Targeted organometallic anticancer drugs are a key research focus.
- Benzimidazolium-derived ferrocenyl compounds offer potential therapeutic avenues.
Purpose of the Study:
- Synthesize and biologically evaluate a novel benzimidazolium-derived ferrocenyl compound, FBP.
- Assess FBP's efficacy, selectivity, biocompatibility, cellular uptake, and mechanism of action against cancer cells.
Main Methods:
- Synthesis of N-ferrocenylmethyl-N'-(2-pyridylmethyl) benzimidazolium iodide (FBP).
- Cytotoxicity assays (IC50, selectivity index) against HeLa cells and fibroblasts.
- Cellular uptake studies (Hoechst, MitoTracker Green).
- Mechanistic investigations (ROS, singlet oxygen, mitochondrial membrane potential, DAPI, gamma-H2AX).
- 3D multicellular spheroid experiments.
Main Results:
- FBP demonstrated significant cytotoxicity against HeLa cells with superior selectivity compared to Doxorubicin and Ferrocene.
- No significant off-target toxicity observed in fibroblast cell lines.
- FBP was internalized by HeLa cells, localizing primarily in mitochondria.
- FBP induced oxidative stress, mitochondrial dysfunction, and apoptotic cell death, evidenced by DNA damage and nuclear fragmentation.
- FBP exhibited penetrating ability and sustained efficacy in 3D tumor spheroids.
Conclusions:
- FBP is a promising organometallic compound with potent and selective anticancer activity.
- The compound induces cancer cell death through oxidative stress and mitochondrial-mediated apoptosis.
- FBP's efficacy in 3D models suggests potential for in vivo applications in cervical cancer treatment.
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