Wang Chenxi, Yu Qiang, Li Ming, Chen Haoyi, Fan Huizhen, Ma Yingying, Zhang Zhitao, Wu Mei X, Lu Min
Department of Orthopaedics, Shanghai Key Laboratory for Prevention and Treatment of Bone and Joint Diseases, Shanghai Institute of Traumatology and Orthopaedics, Ruijin Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai, China.
State Key Laboratory of Synergistic Chem-Bio Synthesis, School of Chemistry and Chemical Engineering, Zhangjiang Institute for Advanced Study, Shanghai Jiao Tong University, Shanghai, China.
Light Sci Appl. 2025 Sep 15;14(1):319. doi: 10.1038/s41377-025-01990-z.
Phototherapy offers advantages of non-invasiveness, cost-effectiveness, localized treatment, and potential for home-based care across various medical conditions. However, its adoption is hindered by the large size, limited safety, and professional operation requirements of current phototherapeutic devices. Unlike bulky laser phototherapeutic devices, wearable and implantable LED-based devices overcome these limitations, offering improved safety, portability, and uniform light distribution, making them promising prototypes for next-generation phototherapies. This review explores the home-care potentials of phototherapy from a clinical application perspective and provides a comprehensive overview of its therapeutic mechanisms and diverse applications. By synthesizing the latest advancements and cutting-edge research, we identify key clinical challenges associated with wearable and implantable phototherapy devices and propose fundamental strategies to address these limitations, such as miniaturization, biocompatibility, and energy efficiency. Furthermore, we draw on interdisciplinary cutting-edge research to address the challenges faced by phototherapy devices. We also emphasize the critical value of integrating artificial intelligence (AI) and flexible sensing technologies within phototherapy systems. Specific methods and potential applications are discussed for effectively integrating phototherapy systems with AI algorithms to establish a closed-loop diagnostic and therapeutic system. Grounded in clinical applications, we outline concrete research directions for developing next-generation LED-based phototherapy devices. This review delivers valuable insights for clinicians leveraging phototherapy and offers a roadmap for researchers in material science, flexible electronics, and AI, fostering interdisciplinary innovations to advance future phototherapy applications.
光疗具有非侵入性、成本效益高、局部治疗以及适用于多种医疗状况的家庭护理等优势。然而,当前光疗设备体积大、安全性有限且需要专业操作,这阻碍了其应用。与笨重的激光光疗设备不同,基于发光二极管(LED)的可穿戴和可植入设备克服了这些限制,具有更高的安全性、便携性和均匀的光分布,使其成为下一代光疗的有前景的原型。本综述从临床应用角度探讨了光疗的家庭护理潜力,并全面概述了其治疗机制和多样的应用。通过综合最新进展和前沿研究,我们确定了与可穿戴和可植入光疗设备相关的关键临床挑战,并提出了应对这些限制的基本策略,如小型化、生物相容性和能源效率。此外,我们借鉴跨学科前沿研究来应对光疗设备面临的挑战。我们还强调了在光疗系统中集成人工智能(AI)和柔性传感技术的关键价值。讨论了将光疗系统与AI算法有效集成以建立闭环诊断和治疗系统的具体方法和潜在应用。基于临床应用,我们概述了开发下一代基于LED的光疗设备的具体研究方向。本综述为临床医生利用光疗提供了有价值的见解,并为材料科学、柔性电子学和AI领域的研究人员提供了路线图,促进跨学科创新以推动未来光疗应用。