Activated ROCK/Akt/eNOS and ET-1/ERK pathways in 5-fluorouracil-induced cardiotoxicity: modulation by simvastatin
Radwa Nasser Muhammad1, Nada Sallam2, Hanan Salah El-Abhar2,3
1Department of Pharmacology and Toxicology, Faculty of Pharmacy, Cairo University, Cairo, 11562, Egypt. radwa.nasser@pharma.cu.edu.eg.
Abstract:
5-Fluorouracil (5-FU) is used in the treatment of different solid tumors; however, its use is associated with rare, but serious cardiotoxicity. Nevertheless, the involvement of ROCK/NF-κB, Akt/eNOS and ET-1/ERK1/2 trajectories in the cardiotoxic effect and in the potential cardioprotective upshot of simvastatin has been elusive. Male Wistar rats were allocated into 5-FU (50 mg/kg/week; i.p, 6 weeks), simvastatin (15 mg/kg/day; p.o, 8 weeks) treated groups and simvastatin + 5-FU, besides the normal control group. 5-FU-induced cardiotoxicity boosted the serum level of N-terminal pro-brain (B-type) natriuretic peptide (NT-proBNP), aortic contents of endothelin (ET)-1 and thromboxane (TX) A2, as well as cardiac contents of NADPH oxidases (Nox), cyclooxygenase (COX)-2, malondialdehyde (MDA), phosphorylated Akt (p-Akt), phosphorylated extracellular signal-regulated kinase (p-ERK)1/2 and the protein expressions of rho-kinase (ROCK) and caspase-3. On the other hand, it suppressed cardiac reduced glutathione (GSH) and phosphorylated endothelial nitric oxide synthase (p-eNOS). Contrariwise, co-administration with simvastatin overcame these disturbed events and modulated the ROCK/NF-κB, Akt/eNOS and ET-1/ERK1/2 signaling pathways. This study highlights other mechanisms than coronary artery spasm in the 5-FU cardiotoxicity and reveals that NT-proBNP is a potential early marker in this case. Moreover, the cross-talk between ROCK/ NF-κB, ROS/COX-2/TXA2, Akt/eNOS and ET-1/ERK1/2 pathways contributes via different means to upsetting the vasoconstriction/vasodilatation equilibrium as well as endothelial cell function and finally leads to cardiomyocyte stress and death-the modulation of these trajectories offers simvastatin its potential cardio-protection against 5-FU.
Insights
5-Fluorouracil (5-FU) chemotherapy can cause cardiotoxicity by disrupting signaling pathways. Simvastatin demonstrates cardioprotective effects against 5-FU toxicity by modulating these pathways and improving cardiac function.
Area of Science:
- Cardiovascular Pharmacology
- Oncology
- Molecular Biology
Background:
- 5-Fluorouracil (5-FU) is a widely used chemotherapy agent for solid tumors.
- 5-FU treatment is associated with rare but severe cardiotoxicity.
- The molecular mechanisms underlying 5-FU cardiotoxicity and simvastatin's cardioprotective role remain unclear.
Purpose of the Study:
- To investigate the involvement of ROCK/NF-κB, Akt/eNOS, and ET-1/ERK1/2 signaling pathways in 5-FU-induced cardiotoxicity.
- To evaluate the cardioprotective potential of simvastatin against 5-FU cardiotoxicity.
- To identify potential early biomarkers for 5-FU cardiotoxicity.
Main Methods:
- Male Wistar rats were treated with 5-FU, simvastatin, or a combination of both.
- Biochemical markers of cardiac stress, oxidative stress, and inflammation were measured.
- Key protein expressions and phosphorylation levels in signaling pathways were analyzed.
Main Results:
- 5-FU induced cardiotoxicity, evidenced by elevated NT-proBNP, ET-1, TXA2, Nox, COX-2, MDA, p-Akt, p-ERK1/2, ROCK, and caspase-3.
- 5-FU suppressed cardiac GSH and p-eNOS.
- Simvastatin co-administration ameliorated these changes, modulating ROCK/NF-κB, Akt/eNOS, and ET-1/ERK1/2 pathways.
Conclusions:
- 5-FU cardiotoxicity involves complex signaling pathway dysregulation beyond coronary artery spasm.
- N-terminal pro-brain (B-type) natriuretic peptide (NT-proBNP) may serve as an early indicator of 5-FU cardiotoxicity.
- Simvastatin offers cardioprotection by modulating these critical molecular pathways, restoring the balance between vasoconstriction and vasodilation and protecting endothelial and cardiomyocyte function.
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