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Updated: Jun 8, 2026

Improved Rodent Model of Myocardial Ischemia and Reperfusion Injury
Published on: March 7, 2022
Iron-induced cardiac damage: role of apoptosis and deferasirox intervention
Yeling Wang1, Miaozong Wu, Rabaa Al-Rousan
1Center for Diagnostic Nanosystems, Marshall University, 1 John Marshall Drive, Huntington, WV 25755-1090, USA.
Insights
Excess cardiac iron triggers apoptosis and fibrosis via caspase signaling. Iron chelation with deferasirox effectively reduces this damage, offering a potential therapeutic strategy for iron-induced heart conditions.
Area of Science:
- Cardiovascular Research
- Cellular Biology
- Pharmacology
Background:
- Excessive cardiac iron accumulation is linked to significant heart damage, increased morbidity, and mortality.
- Iron overload can disrupt cellular signaling pathways, leading to detrimental cardiac remodeling.
Purpose of the Study:
- To investigate the role of caspase-dependent signaling in iron-induced cardiac apoptosis and fibrosis.
- To evaluate the efficacy of deferasirox, an iron chelator, in mitigating these pathological changes.
Main Methods:
- Utilized an iron-overloaded gerbil model to study cardiac tissue.
- Assessed protein expression and activity related to apoptosis (Akt, Bad, Bax, Bcl-2, caspases) and cellular damage (α-fodrin, dystrophin).
- Quantified DNA fragmentation using TUNEL assay and evaluated cardiac fibrosis.
Main Results:
- Iron overload reduced Akt/Bad phosphorylation and increased the Bax/Bcl-2 ratio, activating caspase-9 and caspase-3.
- Observed increased α-fodrin cleavage, dystrophin discontinuity, DNA fragmentation, and cardiac fibrosis in iron-overloaded gerbils.
- Deferasirox treatment diminished iron deposition, attenuated caspase activation, reduced cellular damage markers, and decreased fibrosis.
Conclusions:
- Caspase-dependent signaling pathways are implicated in the pathogenesis of iron-induced cardiac apoptosis and fibrosis.
- Deferasirox demonstrates potential as a therapeutic agent by reducing cardiac iron levels and ameliorating iron-induced myocardial damage.
Abstract:
Excess cardiac iron levels are associated with cardiac damage and can result in increased morbidity and mortality. Here, we hypothesize that elevations in tissue iron can activate caspase-dependent signaling, which leads to increased cardiac apoptosis and fibrosis, and that these alterations can be attenuated by iron chelation. Using an iron-overloaded gerbil model, we show that increased cardiac iron is associated with reduced activation of Akt (Ser473 and Thr308), diminished phosphorylation of the proapoptotic regulator Bad (Ser136), and an increased Bax/Bcl-2 ratio. These iron-overload-induced alterations in Akt/Bad phosphorylation and Bax/Bcl-2 ratio were coupled with increased activation of the downstream caspase-9 (40/38- and 17-kDa fragments) and apoptosis executioner caspase-3 (19- and 17-kDa fragments), which were accompanied by evidence of elevated cytoskeletal α-fodrin cleavage (150- and 120-kDa fragments), discontinuity of myocardial membrane dystrophin immunoreactivity, increases in the number of terminal deoxynucleotidyl transferase dUTP nick-end labeling (TUNEL)-positive cells (nucleic DNA fragmentation), and cardiac fibrosis. We demonstrate that the administration of deferasirox, a tridentate iron chelator, is associated with diminished tissue iron deposition, attenuated activation of caspases, reduced α-fodrin cleavage, improved membrane integrity, decreased TUNEL reactivity, and attenuated cardiac fibrosis. These results suggest that the activation of caspase-dependent signaling may play a role in the development of iron-induced cardiac apoptosis and fibrosis, and deferasirox, via a reduction in cardiac tissue iron levels, may be useful for decreasing the extent of iron-induced cardiac damage.
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