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Search Result (307)
Metaverse in Medicine
Medical education
Open Access
Design concept for a neurology metaverse teaching system based on the Fudan Zhongshan "huisheng intelligent education" platform
Mao Lingyan
Mao Lingyan
Department of Neurology, Zhongshan Hospital, Fudan University, Shanghai 200032, China
,
Yu Qing
Yu Qing
Department of Education, Zhongshan Hospital, Fudan University, Shanghai 200032, China
,
Zhang Wen
Zhang Wen
Department of Education, Zhongshan Hospital, Fudan University, Shanghai 200032, China
,
Zhang Min
Zhang Min
Department of Education, Zhongshan Hospital, Fudan University, Shanghai 200032, China
,
Zhang Yuhao
Zhang Yuhao
Department of Neurology, Zhongshan Hospital, Fudan University, Shanghai 200032, China
,
Liu Xu
Liu Xu
Department of Neurology, Zhongshan Hospital, Fudan University, Shanghai 200032, China
,
Ding Jing
Ding Jing
ding.jing@zs-hospital.sh.cn
Department of Neurology, Zhongshan Hospital, Fudan University, Shanghai 200032, China
Published June 30, 2026
https://doi.org/10.61189/431069dfoozt
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Mao L Y,Yu Q,Zhang W,et al. Design concept for a neurology metaverse teaching system based on the Fudan Zhongshan “huisheng intelligent education” platform[J]. Metaverse Med,2026,3(2):127-131.
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Specialty education in neurology faces structural bottlenecks including insufficient training in low-frequency, high-risk clinical scenarios, unequal opportunities for performing key procedures, difficulty in replicating ethically sensitive communication situations, and a weak cross-stage evaluation system. Based on the “Huisheng Intelligent Education” metaverse platform of Zhongshan Hospital, Fudan University, this paper proposes a conceptual framework for building a neurology-specific metaverse platform targeting full-cycle medical education, training, and management. Using extended reality (XR) and artificial intelligence (AI) as the technological foundation, and focusing on core teaching scenarios such as neurological examination, emergency decision-making in stroke, status epilepticus management, long-term care of Parkinson‘s disease, and breaking bad news, the platform constructs four major modules: a neurology knowledge ecosystem, immersive virtual teaching scenarios, a specialized teaching intelligence system, and a full-cycle teaching management hub. The platform supports cross-campus synchronous teaching and process tracking, aiming to establish a new paradigm of specialty education characterized by “scenario-based training — formative evaluation — personalized guidance — governance closed loop”. Taking the “acute ischemic stroke thrombolysis decision-making metaverse teaching unit” as an example, this paper demonstrates the feasible approach of the platform in scenario design, task chain organization, and technical implementation. This paper provides a replicable engineering framework and design reference for the systematic construction of metaverse teaching in neurology, with future effectiveness validation to be conducted based on actual operational data.


Key Words: neurology; metaverse in medicine; full-cycle medical education; immersive training; thrombolysis decision-making; competency evaluation

Progress in Medical Devices
Research Article
Open Access
Design and experimental verification of a portable multi-degree-of-freedom electric needle holder
Lin Xin
Lin Xin
School of Health Sciences and Engineering, University of Shanghai for Science and Technology, Shanghai 200093, China.
,
Wenjie Yu
Wenjie Yu
School of Health Sciences and Engineering, University of Shanghai for Science and Technology, Shanghai 200093, China.
,
Yangzhi Liu
Yangzhi Liu
School of Health Sciences and Engineering, University of Shanghai for Science and Technology, Shanghai 200093, China.
,
Liuxiao Cheng
Liuxiao Cheng
School of Health Sciences and Engineering, University of Shanghai for Science and Technology, Shanghai 200093, China.
,
Zhongxin Hu
Zhongxin Hu
School of Health Sciences and Engineering, University of Shanghai for Science and Technology, Shanghai 200093, China.
,
Chengli Song
Chengli Song
csong@usst.edu.cn
School of Health Sciences and Engineering, University of Shanghai for Science and Technology, Shanghai 200093, China.
2025 Jun;3(2):127-135
https://doi.org/10.61189/483711ymetia
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Xin L, Yu WJ, Liu YZ, Cheng LX, Hu ZX, Song CL. Design and experimental verification of a portable multi-degree-of-freedom electric needle holder. Prog Med Devices 2025 Jun; 3 (2): 127-135. doi: 10.61189/483711ymetia

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Objective: To design and validate a portable multi-degree-of-freedom electric needle holder to improve operational flexibility and precision in laparoscopic surgery, while reducing the operator's workload. The design optimizes the transmission system to enable precise control of surgical instruments, addressing the challenges of complex surgical environments. Methods: A multi-degree-of-freedom transmission structure, driven by steel wires, was designed. It integrates motors and angle sensors to achieve multi-directional rotation and force control for the grasping forceps. The experimental section includes tests for maximum gripping force, maximum extraction force, and a porcine suturing experiment. The performance of the electric needle holder was compared with traditional needle holders in simulated laparoscopic surgery to verify its effectiveness. Results: Experimental results show that the maximum gripping force of the electric needle holder at various angles reached 29.6 N, significantly higher than that of traditional needle holders. The maximum extraction force for needles of different sizes is approximately 12.9 N, effectively preventing needle slippage. Additionally, the porcine suturing experiment demonstrated that the electric needle holder significantly reduced operation time and improved suturing precision in complex surgical settings. Conclusion: The portable multi-degree-of-freedom electric needle holder enhances operational flexibility and safety in laparoscopic surgery by increasing the rotational degrees of freedom and precise motor control. Its superior gripping force and operational efficiency suggest strong clinical potential, offering significant improvements over traditional surgical instruments.

Perioperative Precision Medicine
Research Article
Open Access
Therapeutic potential of Dunhuang Mofeng ointment in rheumatoid arthritis: Integrative network pharmacology and experimental validation
Haolong Zhang
Haolong Zhang
Clinical College of Traditional Chinese Medicine, Gansu University of Chinese Medicine, Lanzhou 730000, Gansu, China; The First Affiliated Hospital of Henan Medical University, Xinxiang 453100, Henan, China.
,
Jing Pan
Jing Pan
Clinical College of Traditional Chinese Medicine, Gansu University of Chinese Medicine, Lanzhou 730000, Gansu, China.
,
Zhijing Song
Zhijing Song
songzhijing2020@163.com
Clinical College of Traditional Chinese Medicine, Gansu University of Chinese Medicine, Lanzhou 730000, Gansu, China.
2026 Mar;4(1):130-148
https://doi.org/10.61189/372252akozze
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Zhang HL, Pan J, Song ZJ. Therapeutic potential of Dunhuang Mofeng ointment in rheumatoid arthritis: Integrative network pharmacology and experimental validation. Perioper Precis Med. 2026 Mar; 4 (1): 130-148. doi: 10.61189/372252akozze

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Objective: This study integrated network pharmacology and molecular docking to identify the active constituents, core targets, and potential mechanisms of Dunhuang Mofeng ointment in treating rheumatoid arthritis (RA). The therapeutic efficacy was validated using a collagen-induced arthritis (CIA) rat model. Methods: Bioactive compounds and target molecules of Dunhuang Mofeng ointment were identified using R language-based network pharmacological analysis. These were integrated with RA-related differential genes from the GEO database to construct regulatory and protein-protein interaction networks. Gene ontology and Kyoto Encyclopedia of Genes and Genomes enrichment analyses were performed to elucidate intervention mechanisms. Molecular docking simulations validated the conformational stability of core targets. A seven-week CIA rat model was established to assess therapeutic effects, including general health, joint swelling, limb deformities, serum inflammatory markers, and mRNA expression of key targets in joint tissues, thereby validating the network pharmacology predictions. Results: The core active ingredients were quercetin, apigenin, luteolin, aloe-emodin,and emodin. Primary therapeutic targets included STAT1, CDK4, CCND1, MCL1, FOS, CDKN1A and MYC, with anti-inflammatory effects mediated through pathways such as JAK-STAT, PI3K-Akt, and Toll-like receptor pathways. After 7 weeks of treatment, CIA rats showed significant improvements, including reduced joint swelling and deformity, decreased pro-inflammatory cytokines, and increased anti-inflammatory cytokine IL-10. MRNA expression of STAT1, CDK4, CCND1, MCL1, FOS, and MYC in joint tissues was significantly downregulated (P<0.05), while CDKN1A expression was upregulated (P<0.001). The medium-dose and Western medicine groups exhibited pronounced therapeutic effects. Conclusion: Dunhuang Mofeng ointment may exert therapeutic effects in RA by modulating pro-inflammatory cytokines and regulating key genes. These findings support its potential as an effective intervention for RA.

Progress in Medical Devices
Review Article
Open Access
A review of medical image-based diagnosis of COVID-19
Jie Yu
Jie Yu
School of Health Science and Engineering, University of Shanghai for Science and Technology, Shanghai 200093, China.
,
Shiju Yan
Shiju Yan
yanshiju@usst.edu.cn
School of Health Science and Engineering, University of Shanghai for Science and Technology, Shanghai 200093, China.
,
Chengli Song
Chengli Song
School of Health Science and Engineering, University of Shanghai for Science and Technology, Shanghai 200093, China.
,
Haipo Cui
Haipo Cui
School of Health Science and Engineering, University of Shanghai for Science and Technology, Shanghai 200093, China.
2023 Dec;1(3):131-144
https://doi.org/10.61189/323428onxlas
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Yu J, Yan SJ, Song CL, et al. A review of medical image-based diagnosis of COVID-19. Prog Med Devices. 2023 Dec;1(3): 131-144. doi:10.61189/323428onxlas.

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The pandemic virus COVID-19 has caused hundreds of millions of infections and deaths, resulting in enormous social and economic losses worldwide. As the virus strains continue to evolve, their ability to spread increases. The detection by reverse transcription polymerase chain reaction is time-consuming and less sensitive. As a result, X-ray images and computed tomography images started to be used in the diagnosis of COVID-19. Since the global outbreak, medical image processing researchers have proposed several automated diagnostic models in the hope of helping radiologists and improving diagnostic accuracy. This paper provides a systematic review of these diagnostic models from three aspects: image preprocessing, image segmentation, and classification, including the common problems and feasible solutions that encountered in each category. Furthermore, commonly used public COVID-19 datasets are reviewed. Finally, future research directions for medical image processing in managing COVID-19 are proposed.

Metaverse in Medicine
Medical education
Open Access
A conceptual framework for constructing an innovative teaching module for traditional chinese medicine inheritance in a collaborative "flagship" hospital integrating chinese and western medicine based on the "huisheng intelligent education" metaverse platform
Zhang Wen
Zhang Wen
Department of Education, Zhongshan Hospital, Fudan University, Shanghai 200032, China; Department of Traditional Chinese Medicine/Integrated Traditional Chinese and Western Medicine, Zhongshan Hospital, Fudan University, Shanghai 200032, China
,
Hou Fenggang
Hou Fenggang
Department of Traditional Chinese Medicine/Integrated Traditional Chinese and Western Medicine, Zhongshan Hospital, Fudan University, Shanghai 200032, China
,
Yang Yunke
Yang Yunke
Department of Traditional Chinese Medicine/Integrated Traditional Chinese and Western Medicine, Zhongshan Hospital, Fudan University, Shanghai 200032, China
,
Cai Dingfang
Cai Dingfang
Department of Traditional Chinese Medicine/Integrated Traditional Chinese and Western Medicine, Zhongshan Hospital, Fudan University, Shanghai 200032, China
,
Zhu Wen
Zhu Wen
Department of Traditional Chinese Medicine/Integrated Traditional Chinese and Western Medicine, Zhongshan Hospital, Fudan University, Shanghai 200032, China
,
Yang Feng
Yang Feng
Department of Traditional Chinese Medicine/Integrated Traditional Chinese and Western Medicine, Zhongshan Hospital, Fudan University, Shanghai 200032, China
,
Xiang Jun
Xiang Jun
Department of Traditional Chinese Medicine/Integrated Traditional Chinese and Western Medicine, Zhongshan Hospital, Fudan University, Shanghai 200032, China
,
Wang Xiangyu
Wang Xiangyu
Department of Education, Zhongshan Hospital, Fudan University, Shanghai 200032, China; Department of Traditional Chinese Medicine/Integrated Traditional Chinese and Western Medicine, Zhongshan Hospital, Fudan University, Shanghai 200032, China
,
Yu Qing
Yu Qing
yu.qing@zs-hospital.sh.cn
Department of Education, Zhongshan Hospital, Fudan University, Shanghai 200032, China
Published July 02, 2026
https://doi.org/10.61189/098550omimvp
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Zhang W,Hou F G,Yang Y K,et al. A conceptual framework for constructing an innovative teaching module for traditional chinese medicine inheritance in a collaborative “flagship” hospital integrating chinese and western medicine based on the “huisheng intelligent education” metaverse platform[J]. Metaverse Med,2026,3(2):132-137.
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The construction of collaborative “Flagship” hospitals integrating Chinese and Western medicine has placed higher demands on talent cultivation in integrated medicine, inheritance of the experience of renowned veteran TCM experts, innovation in collaborative diagnostic and therapeutic models, and information-based support. As one of the first batch of national pilot institutions for collaborative “Flagship” hospitals integrating Chinese and Western medicine, Zhongshan Hospital, Fudan University, has already established a full-cycle framework spanning undergraduate medical education, postgraduate medical education, and continuing medical education based on the “Huisheng Intelligent Education” metaverse platform. On this basis, an innovative teaching module for Traditional Chinese Medicine (TCM) inheritance is proposed to address the current gap whereby the existing platform primarily serves modern medical education and provides insufficient support for Western medicine physicians receiving TCM training and senior TCM physicians in the cultivation of TCM inheritance and innovation as well as collaborative Chinese-Western medicine competencies. Relying on the four existing platform foundations—namely the metaverse medical knowledge ecosystem, metaverse virtual teaching scenarios, comprehensive teaching intelligent agents, and the full-cycle teaching management hub—the module is designed around four core components: a metaverse teaching module for renowned veteran TCM experts’ studios, a virtual outpatient module for collaborative Chinese-Western medicine practice, a collaborative ward-round/MDT module integrating Chinese and Western medicine, and a TCM appropriate techniques and situational training module. Together, these form a continuous teaching chain of “inheritance resource accumulation—outpatient collaborative training—complex case collaborative decision-making—application of appropriate techniques.” Furthermore, taking the metaverse teaching module for the studio of Shanghai Famous TCM Expert CAI Dingfang as an example, this paper illustrates the specific design for knowledge resource integration, reconstruction of teaching scenarios, intelligent-agent support, and process-based management and evaluation. This module is expected to provide a new practical pathway for the digital transformation of TCM inheritance and innovative collaborative training models in the context of collaborative “Flagship” hospitals integrating Chinese and Western medicine.


Key Words: huisheng intelligent education; metaverse; collaborative “Flagship” hospital integrating Chinese and western medicine; TCM inheritance and innovation; teaching module

Perioperative Precision Medicine
Review Article
Open Access
Research progress of digital therapy in pain management
Zhaoyang Yan
Zhaoyang Yan
Shanghai Reacool Medical Technology Co., Ltd., Shanghai 200041, China.
,
Chunhui Qin
Chunhui Qin
Department of Anesthesiology, Yuey ang Hospital of Integrated Traditional Chinese and Western Medicine, Shanghai University of Traditional Chinese Medicine, Shanghai 200437, China.
,
Shuya Wang
Shuya Wang
Shanghai Reacool Medical Technology Co., Ltd., Shanghai 200041, China.
,
Zhaohui Xie
Zhaohui Xie
Department of Pain Management, The First Hospital of Lanzhou University, Lanzhou 730000, Gansu Province, China.
,
Liyun Kong
Liyun Kong
Department of Pain Management, The First Affiliated Hospital of Gan nan Medical University, Ganzhou 341000, Jiangxi Province, China.
,
Lili Zhong
Lili Zhong
williyia@wnmc.edu.cn
Department of Anesthesiology and Pain Man agement, Wuhu Fifth People’s Hospital (Anhui Province Wannan Rehabilitation Hospital), Wuhu 241004, Anhui Province, China.
,
Hong Wang
Hong Wang
Department of Anesthesiology and Pain Man agement, Wuhu Fifth People’s Hospital (Anhui Province Wannan Rehabilitation Hospital), Wuhu 241004, Anhui Province, China.
,
Yun Cai
Yun Cai
School of Health and Rehabilitation, Nanjing University of Chinese Medicine, Nanjing 210046, Jiangsu Province, China.
,
Guohua Jiao
Guohua Jiao
Department of Pain Management, Tongxiang Hospital of Traditional Chinese Medicine, Tongxiang 314500, Zhejiang Province, China.
,
Zhenwei Wang
Zhenwei Wang
wangzhenwei@ shyueyanghospital.com
Department of Respiratory Medicine, Yueyang Hospital of Integrat ed Traditional Chinese and Western Medicine, Shanghai University of Traditional Chinese Medicine, Shanghai 200437, China.
,
Qiwen Zhu
Qiwen Zhu
Department of Engineering and Computer Science, Syracuse University, New York State/Syra cuse 13210, the United States of America.
,
Ruoyu Tang
Ruoyu Tang
Department of Psychology, University of British Columbia (UBC), Van couver V6T 1Z4, British Columbia, Canada.
2024 Dec;2(4):132-141
https://doi.org/10.61189/285507yclyaz
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Yan ZY, Qin CH, Wang SY, et al. Research progress of digital therapy in pain management. Perioper Precis Med. 2024 Dec; 2(4):132-141. doi: 10.61189/285507yclyaz
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Pain significantly impacts both the physical and mental well-being of individuals and imposes a substantial burden on society. Traditional pain management approaches are diverse but often fall short in adequately addressing patients’ emotional and psychological experiences. In recent years, digital therapy has emerged as a rapidly de veloping field with significant potential in perioperative pain management. This innovative approach leverages digital technology, particularly cognitive-behavioral therapy, to alleviate pain and deliver more comprehensive, efficient, and personalized care. This study explores the applications and future directions of digital therapy in pain management, aiming to broaden understanding among healthcare professionals and patients, and to open new avenues for pain treatment. The text combs through the synergistic empowerment of digital therapeutics in the perioperative period, discussing its multifaceted advantages such as optimizing analgesic effects, reducing mental anxiety, and improving psychological conditions. It also analyzes current challenges including privacy protection, data security, and technological adaptation, providing a reference for future research and application directions in digital pain treatment during the perioperative period.
Perioperative Precision Medicine
Review Article
Open Access
Research progress on the pharmacological activity and mechanism of chlorogenic acid in alleviating acute kidney injury in sepsis patients
Renke Sun
Renke Sun
School of Anesthesiology,Anesthesia Laboratory and Training Center, Wannan Medical College, Wuhu 241002, China.
,
Hui Su
Hui Su
School of Anesthesiology,Anesthesia Laboratory and Training Center, Wannan Medical College, Wuhu 241002, China.
,
Kecheng Zhai
Kecheng Zhai
School of Anesthesiology,Anesthesia Laboratory and Training Center, Wannan Medical College, Wuhu 241002, China.
,
Yangmengna Gao
Yangmengna Gao
School of Anesthesiology,Anesthesia Laboratory and Training Center, Wannan Medical College, Wuhu 241002, China.
,
Shangping Fang
Shangping Fang
20180041@wnmc.edc.cn
School of Anesthesiology,Anesthesia Laboratory and Training Center, Wannan Medical College, Wuhu 241002, China.
2023 Dec;1(3):133-140
https://doi.org/10.61189/955623wnfjqd
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Sun RK, Su H, Zhai KC, et al. Research progress on the pharmacological activity and mechanism of chlorogenic acid in alleviating acute kidney injury in sepsis patients. Perioper Precis Med. 2023 Dec;1(3):133-140. doi: 10.61189/955623wnfjqd.

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Sepsis-induced acute kidney injury (SAKI) is a serious perioperative complication and a common clinical syndrome characterized by a rapid deterioration in renal function with a high incidence of 70%. The causes of SAKI include impaired mitochondrial function of renal tubular epithelial cells, oxidative stress, inflammatory reaction and renal microcirculation disorder. Chlorogenic acid, as a natural product of plant origin, has various biological activities, such as antibacterial, antiviral, and anti-tumor, and plays a significant role in the treatment of SAKI. This article reviews the pharmacological activities of chlorogenic acid and the signaling pathways involved in relieving SAKI, in order to provide a theoretical basis for in-depth study of the mechanisms underlying the alleviation of SAKI and the confirmation of potential therapeutic targets.
Perioperative Precision Medicine
Review Article
Open Access
Limb nerve block localization using deep learning-driven segmentation: A review
Jiaxun Jiang
Jiaxun Jiang
School of Health Science and Engineering, University of Shanghai for Science and Technology, Shanghai 200093, China.
,
Miao Zhou
Miao Zhou
Jiangsu Cancer Hospital, Nanjing 213164, Jiangsu Province, China.
,
Liangqing Lin
Liangqing Lin
Anesthesiology, The First Hospital of Putian, Putian 351100, Fujian Province, China.
,
Haipo Cui
Haipo Cui
h_b_cui@163.com
School of Health Science and Engineering, University of Shanghai for Science and Technology, Shanghai 200093, China.
,
Long Liu
Long Liu
School of Health Science and Engineering, University of Shanghai for Science and Technology, Shanghai 200093, China.
,
Jiaen Wu
Jiaen Wu
School of Health Science and Engineering, University of Shanghai for Science and Technology, Shanghai 200093, China.
,
Zhaopeng Zhou
Zhaopeng Zhou
School of Health Science and Engineering, University of Shanghai for Science and Technology, Shanghai 200093, China.
2025 Dec;3(4):134-151
https://doi.org/10.61189/295165xbmhth
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Jiang JX, Zhou M, Lin LQ, Cui HP, Liu L, Wu JE, Zhou ZP. Limb nerve block localization using deep learning-driven segmentation: A review. Perioper Precis Med. 2025 Dec; 3 (4): 134-151. doi: 10.61189/295165xbmhth.
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Effective pain management is a cornerstone of optimal perioperative care, significantly impacting patient recovery and outcomes. Regional anesthesia, particularly peripheral nerve blocks, plays a crucial role in achieving this by providing targeted analgesia. While ultrasound guidance has enhanced the precision of these procedures, challenges persist in accurately identifying nerve structures due to inherent image quality issues. Addressing these challenges is critical for improving the efficacy and safety of nerve blocks. Recent years have witnessed significant advances in medical image processing powered by deep learning, particularly in the segmentation of peripheral nerve blocks. This review summarizes current research progress and emerging techniques in this domain. We first introduce commonly used segmentation models, including Fully Convolutional Networks, U-Net and its variants, and task-specific network architectures. We then examine the application of deep learning to the segmentation of upper and lower limb nerve blocks, highlighting improvements in accuracy and efficiency. Current limitations-such as challenges with data heterogeneity and model generalization-are critically analyzed, and future directions are proposed to enhance model robustness and clinical scalability. Ultimately, this paper underscores the potential of deep learning to revolutionize peripheral nerve block localization through automated and reliable image segmentation.
Progress in Medical Devices
Technical Review
Open Access
Interpretation of IEC TR 62926-2019 (Medical electrical system – Guidelines for safe integration and operation of adaptive external beam radiotherapy systems)
Chunying Jiao
Chunying Jiao
Beijing Institute of Medical Device Testing, Beijing 101111, China.
,
Rongguo Yan
Rongguo Yan
yanrongguo@usst.edu.cn
School of Health Science and Engineering, University of Shanghai for Science and Technology, Shanghai 200093, China.
,
Yueling Li
Yueling Li
Beijing Institute of Medical Device Testing, Beijing 101111, China.
,
Baolin Liu
Baolin Liu
School of Health Science and Engineering, University of Shanghai for Science and Technology, Shanghai 200093, China.
2025 Jun;3(2):136-142
https://doi.org/10.61189/338398acvbvn
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Jiao CY, Yan RG, Li YL, Liu BL. Interpretation of IEC TR 62926-2019 (Medical electrical system – Guidelines for safe integration and operation of adaptive external beam radiotherapy systems). Prog Med Devices 2025 Jun; 3 (2):136-142. doi:10.61189/338398acvbvn

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This paper presents an interpretation of the latest international technical report, IEC TR 62926-2019 (Medical electrical system – Guidelines for safe integration and operation of adaptive external beam radiotherapy systems) for real-time adaptive radiotherapy. It outlines the background for the development of this report, analyzes general safety guidelines for adaptive radiotherapy systems, and discusses the key design elements required for the integration of such systems. Additionally, the paper reviews and summarizes two typical reference models for adaptive external beam radiotherapy systems. The aim is to enhance the understanding and implementation of this technical report and to support its potential adaptation into a national standardized guidance document in China.

Metaverse in Medicine
Medical education
Open Access
Conceptualization and pathways of the medical education governance digital twin in the context of precision education
Zhang Wen
Zhang Wen
Department of Education, Zhongshan Hospital, Fudan University, Shanghai 200032, China
,
Zhang Min
Zhang Min
Department of Education, Zhongshan Hospital, Fudan University, Shanghai 200032, China
,
Ma Changchang
Ma Changchang
Department of Education, Zhongshan Hospital, Fudan University, Shanghai 200032, China
,
Zhang Mengyao
Zhang Mengyao
Department of Education, Zhongshan Hospital, Fudan University, Shanghai 200032, China
,
Wei Liping
Wei Liping
Department of Education, Zhongshan Hospital, Fudan University, Shanghai 200032, China
,
Huang Jiaqi
Huang Jiaqi
Department of Education, Zhongshan Hospital, Fudan University, Shanghai 200032, China
,
Wang Xiangyu
Wang Xiangyu
Department of Education, Zhongshan Hospital, Fudan University, Shanghai 200032, China
,
Zheng Yuying
Zheng Yuying
Department of Education, Zhongshan Hospital, Fudan University, Shanghai 200032, China
,
Yu Qing
Yu Qing
yu.qing@zs-hospital.sh.cn
Department of Education, Zhongshan Hospital, Fudan University, Shanghai 200032, China; Department of Rehabilitation Medicine, Zhongshan Hospital, Fudan University, Shanghai 200032, China; Department of Rehabilitation Medicine, Shanghai Geriatric Medical Center, Shanghai 201104, China
Published June 30, 2026
https://doi.org/10.61189/559198tidrry
Article Preview PDF CITE
Zhang W,Zhang M,Ma C C,et al. Conceptualization and pathways of the medical education governance digital twin in the context of precision education[J]. Metaverse Med,2026,3(2):138-141.
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In the context of the ongoing advancement of precision medical education, governance in medical education within teaching hospitals has gradually shifted from traditional experience-based management to data-supported management. However, current approaches still largely remain at the stages of educational evidence-chain construction, profiling analysis, and risk prediction, with relatively limited capacity to support intervention consequence simulation, governance strategy comparison, and system-level optimization. Against this background, the concept of the medical education governance digital twin (MEGDT) is proposed. By integrating digital twin theory, data governance practices in teaching hospitals, and international frontier cases, this paper discusses the conceptual connotation, implementation framework, and governance value of MEGDT. The potential value of MEGDT lies not only in enhancing the dynamic perception, simulation, and feedback capabilities of medical education governance, but also in providing decision support for teaching hospitals to achieve a better balance among educational effectiveness, resource input, organizational efficiency, and educational equity. At present, MEGDT remains at the stage of conceptual proposal and pathway exploration. Future work should prioritize minimum viable prototype studies in scenarios such as postgraduate medical education, while also addressing data quality, model credibility, privacy and security, and cost-effectiveness balance.


Key Words: precision medical education; digital twin; medical education governance; evidence-informed decision-making

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