Radiation-induced skin injury is a frequent and difficult complication of both nuclear accidents and tumor radiotherapy1. In radiotherapy, about 95% of patients develop some degree of skin damage, including erythema, desquamation, recurrent necrotic ulcers, persistent pain, and an elevated risk of malignant progression2. These lesions are often refractory to treatment, substantially reducing patients' quality of life and sometimes necessitating interruption of radiotherapy, thus posing a major clinical challenge in radiation oncology3. The underlying mechanisms of radiation-induced skin damage are complex, primarily involving the production of free radicals within the skin tissues, which disrupts cellular processes and exacerbates the healing process4,5. This results in the prolonged expression of apoptosis-related genes, dysregulated inflammatory responses, and altered signaling pathways, all of which contribute to the persistent nature of radiation-induced wounds6.
There is currently no universally accepted gold-standard therapy for radiation-induced skin injury. Clinical management emphasizes anti-inflammatory or antioxidant approaches7, notably topical corticosteroids, which reduce skin reactions via anti-inflammatory, immunosuppressive, and vasoconstrictive effects, but can cause skin thinning with prolonged use8. Amifostine, an FDA-approved radioprotective agent, is limited in clinical use because of significant adverse effects9. Growth factors accelerate wound healing by promoting cell proliferation, angiogenesis, and granulation tissue formation, yet their actions are narrowly focused, offer limited control over deep tissue injury and inflammation, and carry a risk of excessive hyperplasia7. Consequently, Traditional Chinese Medicine (TCM) has drawn attention for its holistic philosophy, multiple active constituents with diverse therapeutic effects, and a favorable safety profile. Previous studies have shown that natural products, such as licorice extract, aloe polysaccharides, and curcumin, alleviate radiation-induced inflammation and tissue damage by scavenging free radicals, inhibiting pro-inflammatory mediators (TNF-α, IL-6), and promoting fibroblast proliferation10,11,12. However, most of these investigations examine single active compounds or single targets, providing inadequate insight into mechanisms of multi-component synergistic action. Acorus calamus L., a plant well-known for its anti-inflammatory, antioxidant, antibacterial, and wound-healing properties, has shown potential in various skin disorders.
Acorus calamus L., a perennial herb from the Araneae family, contains several bioactive compounds, including terpenes, phenylpropanoids, flavonoids, steroids, and alkaloids. Its multi-component composition allows simultaneous action on multiple targets, producing synergistic pharmacological effects13. Studies show that it inhibits inflammatory signaling pathways such as NF-κB and MAPK and dose-dependently downregulates mRNA expression of proinflammatory factors, such as TNF-α and IL-6, while increasing activities of antioxidant enzymes such as SOD and GSH-Px, thereby exerting anti-inflammatory, antioxidant, and antibacterial effects14,15. Despite its documented benefits in treating skin conditions caused by infections and allergies, the role of Acorus calamus L. in radiation-induced skin injuries remains underexplored. Recent studies have demonstrated its protective effects against radiation-induced damage, promoting wound healing and reducing inflammation13. However, the specific therapeutic mechanisms of Acorus calamus L. in radiation-induced skin injuries have not been fully elucidated.
The overall goal of this study is to evaluate the therapeutic effects of Acorus calamus L. extract in animal models of radiation-induced skin injury. We assess wound healing, inflammatory responses, and cellular behavior to elucidate the extract's mechanisms of action from multiple perspectives. The findings aim to establish a theoretical basis for using Acorus calamus L. in clinical management of skin lesions arising from cancer radiotherapy. In addition, the study will present the extract's functional characteristics, suitable intervention scenarios, and core efficacy data to help readers judge whether this natural-product-based approach complements their research or clinical needs. Ultimately, this work seeks effective therapeutic options to improve the quality of life for patients receiving tumor radiotherapy.