Ionizing radiation is widely used across multiple fields, including energy, medicine, industry, and agriculture. While it brings significant benefits, it also poses direct and potential threats to human health, particularly for occupational workers and cancer patients1,2. Given that the skin is the body's largest organ and forms its outer covering, it inevitably serves as the primary target upon exposure to ionizing radiation. Composed of the epidermis, dermis, and subcutaneous tissue, the skin performs indispensable physiological functions. However, the mechanisms underlying radiation-induced skin injury and effective strategies for its prevention and treatment remain insufficiently elucidated. Therefore, there is a critical need for a standardized and reproducible experimental model that specifically targets radiation-induced skin injury in the superficial layer and is suitable for mechanistic and interventional studies. Consequently, to advance research in this field, we have successfully established a novel animal model of radiation skin injury.
In conventional studies, high-energy radiation, such as X-rays or γ-rays, is commonly used to induce skin injury models3,4. These types of radiation possess high penetrating ability, allowing them to interact easily with subcutaneous and deeper tissues and organs. Consequently, while inducing skin damage, they also trigger extensive responses in deeper tissues, which compromise the specificity of the model for skin-focused research and significantly complicate the interpretation of results5. This lack of tissue specificity represents a major limitation when the primary research objective is to investigate skin-restricted radiation injury rather than systemic radiation effects.
In contrast, we have developed a more specific and refined skin injury model, leveraging the characteristics of strontium-90 (90Sr) β-radiation, namely its low energy and limited tissue penetration. Research has shown that the damage caused by β-rays is predominantly confined to the epidermal and dermal layers of the skin6, thereby effectively minimizing interference from deep tissue response. Compared to high-penetration radiation models, this approach allows for precise localization of injury, reduced involvement of visceral organs, and improved interpretability of skin-specific pathological and inflammatory changes. In addition, utilizing β-rays to establish a radiodermatitis model is also justified by critical considerations of potential real-world threats. Lessons from the Chernobyl nuclear accident demonstrate that high-dose external exposure to β particles can lead to severe β burns and even fatal injuries7. Furthermore, potential long-term health risks posed by β-radiation from radiation contaminants also exist8,9.
To explore these mechanisms, selecting an appropriate animal to be subjected to β-ray irradiation is also crucial. While minipigs have been successfully used to establish β-rays induced skin injury models10,11, their general applicability in research is more limited compared to mice. Furthermore, a key characteristic of mouse skin is its high density of hair follicles, which makes it a suitable model for exploring the effects of radiation on skin appendages in the study of radiation skin injury. Thus, using a mouse model has notable advantages. In addition, mouse models offer practical advantages, including lower cost, higher throughput, genetic manipulability, and broader compatibility with molecular and immunological analyses, making them particularly suitable for mechanistic studies and intervention screening.
Inflammatory cytokines are biologically active small molecules or proteins secreted by both immune and non-immune cells, broadly classified as pro-inflammatory or anti-inflammatory. In skin damage induced by ionizing radiation, these cytokines are key drivers. In fact, such damage is fundamentally an uncontrolled inflammatory disease, primarily orchestrated by a network of cytokines and chemokines12. IL-6 is a key pro-inflammatory mediator and one of the critical cytokines involved in acute inflammatory responses to radiation and infection13,14,15. Recent studies have shown that radiation activates the IL-6/STAT3 signaling pathway and cellular senescence, thereby promoting immune cell infiltration and contributing to radiation dermatitis, skin inflammation, and hair loss16. Interestingly, it also exhibits radioprotective effects under specific contexts17,18. In contrast, IL-10 is an important anti-inflammatory regulator. Its functions include limiting excessive inflammatory responses, enhancing innate immunity, promoting tissue repair mechanisms, and maintaining tissue homeostasis during infection and inflammation19,20. IL-10 often acts in concert with IL-6, demonstrating beneficial effects in promoting dermal wound healing, reducing scar formation, and ameliorating certain dermatological conditions21,22,23. While existing research has demonstrated that IL-6 and IL-10 respond to radiation and ultraviolet exposure, respectively16,24,25, their responses to β-radiation remain unclear.
In summary, this study aims to establish a stable and reproducible mouse model of radiation-induced skin injury by 90Sr β-radiation. This model is especially appropriate for studies focusing on cutaneous radiation injury, β-radiation exposure scenarios, inflammatory regulation, skin appendage damage, and long-term tissue remodeling. However, it is not intended to replicate deep-tissue or solid tumor radiotherapy, which typically requires highly penetrating radiation such as X-rays or γ-rays. We present the procedures for model establishment and for systematically validating its feasibility through multi-level assessments, including radiation injury score, histological examination, and molecular expression of key cytokines (IL-6 and IL-10). Dynamic analysis of these parameters will help clarify the regulatory roles of IL-6 and IL-10 in the injury process, thereby providing a solid experimental basis and theoretical reference for the development of targeted intervention strategies in the future.