Applications of Robotic Exoskeletons as Motion-Assistive Systems in Cancer Rehabilitation

Применение роботизированных экзоскелетов в качестве систем двигательной поддержки при реабилитации онкологических пациентов
Yisheng Chen, Guanghui Wu, Qiangqiang Wang, Ye Ding, Li Wu, Haojun Shi, Zijin Sun, Zemin Ou, Yunxuan Miao, X. B. Ji, Ke Wu, Zhiwen Luo, Weijian Chen, Zhijie Zhao, Chen Hua, Xianguo Fu, Yazhen Zhang, Ruogu Chen, Shiwei He, Li Li, Shiyi Chen, Lei Huang, Lihua Dai
2025-01-01

cancer rehabilitationmotion-assistive systemsrobotic exoskeletonstelemedicinewearable sensors
Robotic exoskeletons have emerged as promising motion-assistive technologies to meet the growing demand for structured, personalized cancer rehabilitation. This review critically examines their application in enhancing functional recovery, alleviating cancer-related fatigue, and improving quality of life among cancer patients and survivors. We first outline current evidence-based exercise strategies in cancer rehabilitation, followed by an analysis of how robotic exoskeletons complement and extend these approaches by restoring mobility, strengthening musculature, and supporting psychological well-being. Additionally, we assess how well they combine with multimodal interventions like nutritional, psychological, and digital therapeutics and their benefits. The convergence of artificial intelligence, wearable sensors, and telemedicine is also reshaping the landscape of remote, adaptive rehabilitation. Despite encouraging preliminary data, widespread clinical adoption remains limited due to challenges related to cost, exoskeleton system accessibility, safety, and long-term efficacy. We call for large-scale clinical trials, interdisciplinary collaboration, and policy reforms to promote equitable access to robotic-assisted rehabilitation. Collectively, this review offers a comprehensive perspective on the technical principles, therapeutic potential, and future directions of robotic exoskeletons as innovative tools in cancer recovery.
1
Artificial intelligence, wearable sensors, and telemedicine are enabling more adaptive and remotely delivered exoskeleton-assisted rehabilitation.
2
Clinical adoption remains limited by cost, accessibility, safety concerns, and uncertain long-term efficacy, requiring large-scale trials and policy reforms.
3
Exoskeletons can complement exercise-based rehabilitation and potentially integrate with nutritional, psychological, and digital therapeutics.
4
Preliminary evidence suggests exoskeleton-assisted rehabilitation may reduce cancer-related fatigue and improve patients’ and survivors’ quality of life and psychological well-being.
5
Robotic exoskeletons show promise for personalized cancer rehabilitation by supporting functional recovery, mobility restoration, and muscular strengthening.

Robotic exoskeletons used in cancer rehabilitation for cancer patients and survivors

Their effects and clinical potential for restoring mobility, strengthening musculature, reducing cancer-related fatigue, improving functional recovery and quality of life, and supporting personalized multimodal rehabilitation

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2025-01-01
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Authors
Yisheng Chen
Guanghui Wu
Qiangqiang Wang
Ye Ding
Li Wu
Haojun Shi
Zijin Sun
Zemin Ou
Yunxuan Miao
X. B. Ji
Ke Wu
Zhiwen Luo
Weijian Chen
Zhijie Zhao
Chen Hua
Xianguo Fu
Yazhen Zhang
Ruogu Chen
Shiwei He
Li Li
Shiyi Chen
Lei Huang
Lihua Dai
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