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Updated: Jul 31, 2025

Characterization of MLKL-mediated Plasma Membrane Rupture in Necroptosis
Published on: August 7, 2018
Cyclophosphamide enfeebles myocardial isometric contraction force via RIP1/RIP3/MLKL/TRPM7-mediated necroptosis
Yasmin S Abulfadl1, Yousef Abo El Ela2, Abdallah M Al Khaiyat2
1Department of Pharmacology, Toxicology, and Biochemistry, Faculty of Pharmacy, Future University in Egypt, New Cairo 11835, Egypt.
Abstract:
This study explores the negative impact of cyclophosphamide (CP) on cardiac contractility by specifically examining its effect on the active and passive tension of the cardiac muscle in-vitro and revealing the mechanism through which CP induces myocardial insult in-vivo. In young male Sprague-Dawley rats, cardiac toxicity was induced by a single intraperitoneal injection of CP (150 mg/kg body weight). Axial heart tissue slices were electrically stimulated, and the total isometric contraction force was measured at varying pretension levels. Blood and tissue biochemical assays, and histological/ immuno-histological assessments were conducted to evaluate the underlying molecular mechanisms. Statistical analysis shows that there is a significant difference between the drugged and the control groups in terms of the active tension values. Moreover, the pre-tension stress significantly affects both the active and passive tension values. CP altered heart, body, and heart-to-body weight, desolated cardiac muscle architecture, surged cardiac enzymes (CK-MB, LDH, and cTn l), augmented myocardial oxidative stressors (MDA), and weakened myocardial antioxidant status (SOD and GSH). Mechanistically, cyclophosphamide prompted the necroptotic trajectory evidenced by the activation of RIPK1, RIPK3, MLKL and TRPM7, the inhibition of caspase 8 and BCL2 and the upregulation of the protein/mRNA expression of TNF-α and TNFR1. This study identifies necroptosis as a key factor in cyclophosphamide-evoked myocardial contractility impairment, highlighting its potential as a target for alleviating antitumor-related myocardial damage. This innovative approach to investigating the underlying mechanisms of CP-induced cardiac toxicity offers valuable insights into the potential of developing new therapies to mitigate cyclophosphamide's negative impact.
Insights
Cyclophosphamide (CP) impairs heart muscle function by affecting its contractility. This study reveals necroptosis as a key mechanism, offering a potential target for mitigating chemotherapy-induced heart damage.
Area of Science:
- Cardiology
- Toxicology
- Molecular Biology
Background:
- Cyclophosphamide (CP) is a widely used chemotherapy agent.
- CP is known to cause cardiotoxicity, but the underlying mechanisms remain incompletely understood.
- Understanding CP-induced myocardial insult is crucial for managing cancer treatment side effects.
Purpose of the Study:
- To investigate the impact of cyclophosphamide on cardiac muscle contractility in vitro.
- To elucidate the molecular mechanisms driving cyclophosphamide-induced myocardial injury in vivo.
- To identify potential therapeutic targets for mitigating CP-related cardiotoxicity.
Main Methods:
- In vitro assessment of cardiac muscle active and passive tension in response to electrical stimulation.
- In vivo administration of cyclophosphamide to Sprague-Dawley rats to induce cardiac toxicity.
- Biochemical assays, histological, and immunohistological analyses to evaluate molecular pathways.
- Measurement of cardiac enzymes, oxidative stress markers, and antioxidant status.
Main Results:
- Cyclophosphamide significantly reduced active tension in cardiac muscle tissue.
- CP induced cardiac muscle architecture damage, elevated cardiac enzymes (CK-MB, LDH, cTnI), and increased oxidative stress (MDA).
- The study identified necroptosis, characterized by RIPK1/RIPK3/MLKL activation and TNF-α pathway upregulation, as the primary mechanism of CP-induced cardiotoxicity.
Conclusions:
- Necroptosis is a critical mediator of cyclophosphamide-induced impairment of cardiac contractility.
- Targeting necroptosis pathways presents a promising therapeutic strategy for reducing chemotherapy-related heart damage.
- This research provides novel insights into CP cardiotoxicity, paving the way for improved patient care during cancer treatment.
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