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In Vivo Evidence of Melatonin's Protective Role in Alkylating-Agent-Induced Pulmonary Toxicity: A Systematic Review
Emma Sola1, Jose A Morales-García2, Francisco López-Muñoz3,4,5
1Department of Pharmacology and Toxicology, Faculty of Veterinary Medicine, Complutense University of Madrid, 28040 Madrid, Spain.
Abstract:
Alkylating agents, historically employed as chemical warfare agents and currently used as chemotherapeutic drugs, are known to induce significant pulmonary toxicity. Current clinical interventions often fail to fully prevent or reverse these pathological changes, highlighting the urgent need for safe, broad-spectrum therapeutic agents that are effective across diverse exposure scenarios. Melatonin has emerged as a promising protective agent due to its antioxidant, anti-inflammatory, and immunomodulatory properties, along with a well-established safety profile. This systematic review evaluates the potential of melatonin in mitigating vesicant-induced pulmonary damage, synthesizing and critically analyzing preclinical evidence in accordance with the PRISMA guidelines. Three in vivo rodent studies met the inclusion criteria and were analyzed. In all cases, melatonin demonstrated protective effects against alkylating agents such as mechlorethamine (HN2) and cyclophosphamide (CP). These effects were dose-dependent and observed across various animal models, administration protocols, and dosages (ranging from 2.5 to 100 mg/kg), highlighting the importance of context-specific considerations. The human equivalent doses (HEDs) ranged from 12 to 973 mg per day, suggesting that the effective doses may exceed those typically used in clinical trials for other conditions. Melatonin's pleiotropic mechanisms, including a reduction in oxidative stress, the modulation of inflammatory pathways, and support for tissue repair, reinforce its therapeutic potential in both prophylactic and treatment settings for alkylating agent exposure. Nonetheless, this review underscores the critical need for further randomized clinical trials to establish the optimal dosing strategies, refine treatment protocols, and fully elucidate melatonin's role in managing alkylating-agent-induced pulmonary toxicity.
Insights
Melatonin shows promise in protecting lungs from alkylating agents, reducing toxicity in preclinical studies. Further human trials are needed to confirm optimal dosing for this antioxidant compound.
Area of Science:
- Toxicology
- Pharmacology
- Pulmonary Medicine
Background:
- Alkylating agents, used as chemical warfare agents and chemotherapy, cause significant lung damage.
- Current treatments for this pulmonary toxicity are often insufficient.
- There is a critical need for effective, broad-spectrum therapeutic agents against alkylating agent-induced lung injury.
Purpose of the Study:
- To systematically review preclinical evidence on melatonin's efficacy in mitigating vesicant-induced pulmonary damage.
- To critically analyze the protective potential of melatonin against alkylating agents.
Main Methods:
- A systematic review adhering to PRISMA guidelines was conducted.
- Inclusion criteria focused on in vivo rodent studies investigating melatonin's effects on alkylating agent-induced pulmonary toxicity.
- Three relevant studies were identified and analyzed.
Main Results:
- Melatonin demonstrated significant protective effects against alkylating agents like mechlorethamine (HN2) and cyclophosphamide (CP) in all analyzed studies.
- These protective effects were dose-dependent, with observed human equivalent doses (HEDs) ranging from 12 to 973 mg/day.
- Melatonin's benefits were noted across different animal models, administration routes, and dosages (2.5–100 mg/kg).
Conclusions:
- Melatonin's antioxidant, anti-inflammatory, and immunomodulatory properties support its therapeutic potential for alkylating agent-induced pulmonary toxicity.
- Its mechanisms include reducing oxidative stress, modulating inflammation, and aiding tissue repair.
- Further randomized clinical trials are essential to determine optimal dosing and treatment protocols for clinical application.

