Oscillating Magnetic Field Induced Bone Injury Repair by using Drug‐Free Micromotors

Abstract Bone injury repair remains a significant clinical challenge due to the tissue's limited self‐healing capacity and the complex physiological environment at the defect site. Factors such as insufficient vascularization, poor retention of therapeutic agents, and the lack of effective mech...

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Published in:Advanced Science
Main Authors: Jie Shen, Rui He, Jiajun He, Lipeng Liao, Yongcan Huang, Shaoxiong Min, Xiaoreng Feng, Bin Chen, Ben Wang
Format: Article
Language:English
Published: Wiley 2025-09-01
Subjects:
Online Access:https://doi.org/10.1002/advs.202503254
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author Jie Shen
Rui He
Jiajun He
Lipeng Liao
Yongcan Huang
Shaoxiong Min
Xiaoreng Feng
Bin Chen
Ben Wang
author_facet Jie Shen
Rui He
Jiajun He
Lipeng Liao
Yongcan Huang
Shaoxiong Min
Xiaoreng Feng
Bin Chen
Ben Wang
author_sort Jie Shen
collection DOAJ
container_title Advanced Science
description Abstract Bone injury repair remains a significant clinical challenge due to the tissue's limited self‐healing capacity and the complex physiological environment at the defect site. Factors such as insufficient vascularization, poor retention of therapeutic agents, and the lack of effective mechanical stimulation further hinder the success of current minimally invasive treatments, which often rely on the delivery of drugs or stem cells. Here, magnetic gelatin/hyaluronic acid composite hydrogels micromotors are developed, capable of promoting bone regeneration through localized micromovement stimulation, eliminating the need for therapeutic payloads. By harnessing the mechanical forces generated by the micromotors under an oscillating magnetic field, the approach directly enhances osteoblast proliferation and differentiation, providing a novel mechanism for bone repair. The efficacy of this strategy is further validated in vivo using animal models of bone defects, where moderate micromovement stimulation is shown to significantly increase the volume fraction of newly formed bone by approximately twofold, accompanied by well‐aligned collagen and organized mineralization, thereby demonstrating substantial regenerative effects. This work presents a paradigm shift in bone repair with a payload‐free, minimally invasive solution that overcomes conventional limitations and offers new insights into microrobotics in regenerative medicine.
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spelling doaj-art-e7edfb3697f44030a336bcc8d285187f2025-09-25T13:12:19ZengWileyAdvanced Science2198-38442025-09-011236n/an/a10.1002/advs.202503254Oscillating Magnetic Field Induced Bone Injury Repair by using Drug‐Free MicromotorsJie Shen0Rui He1Jiajun He2Lipeng Liao3Yongcan Huang4Shaoxiong Min5Xiaoreng Feng6Bin Chen7Ben Wang8Shenzhen Key Laboratory of Spine Surgery Department of Spine Surgery Peking University Shenzhen Hospital Shenzhen 518036 P. R. ChinaCollege of Chemistry and Environmental Engineering Shenzhen University Shenzhen 518055 P. R. ChinaCollege of Chemistry and Environmental Engineering Shenzhen University Shenzhen 518055 P. R. ChinaDepartment of Spine Surgery Peking University Shenzhen Hospital PKU‐Shenzhen Clinical Institute of Shantou University Medical College Shenzhen 518036 P. R. ChinaShenzhen Key Laboratory of Spine Surgery Department of Spine Surgery Peking University Shenzhen Hospital Shenzhen 518036 P. R. ChinaShenzhen Key Laboratory of Spine Surgery Department of Spine Surgery Peking University Shenzhen Hospital Shenzhen 518036 P. R. ChinaDivision of Orthopaedics and Traumatology Department of Orthopaedics Nanfang Hospital Southern Medical University Guangzhou 510515 P. R. ChinaDivision of Orthopaedics and Traumatology Department of Orthopaedics Nanfang Hospital Southern Medical University Guangzhou 510515 P. R. ChinaCollege of Chemistry and Environmental Engineering Shenzhen University Shenzhen 518055 P. R. ChinaAbstract Bone injury repair remains a significant clinical challenge due to the tissue's limited self‐healing capacity and the complex physiological environment at the defect site. Factors such as insufficient vascularization, poor retention of therapeutic agents, and the lack of effective mechanical stimulation further hinder the success of current minimally invasive treatments, which often rely on the delivery of drugs or stem cells. Here, magnetic gelatin/hyaluronic acid composite hydrogels micromotors are developed, capable of promoting bone regeneration through localized micromovement stimulation, eliminating the need for therapeutic payloads. By harnessing the mechanical forces generated by the micromotors under an oscillating magnetic field, the approach directly enhances osteoblast proliferation and differentiation, providing a novel mechanism for bone repair. The efficacy of this strategy is further validated in vivo using animal models of bone defects, where moderate micromovement stimulation is shown to significantly increase the volume fraction of newly formed bone by approximately twofold, accompanied by well‐aligned collagen and organized mineralization, thereby demonstrating substantial regenerative effects. This work presents a paradigm shift in bone repair with a payload‐free, minimally invasive solution that overcomes conventional limitations and offers new insights into microrobotics in regenerative medicine.https://doi.org/10.1002/advs.202503254bone injury repairhydrogelmagnetic actuationmicromotorsminiature robots
spellingShingle Jie Shen
Rui He
Jiajun He
Lipeng Liao
Yongcan Huang
Shaoxiong Min
Xiaoreng Feng
Bin Chen
Ben Wang
Oscillating Magnetic Field Induced Bone Injury Repair by using Drug‐Free Micromotors
bone injury repair
hydrogel
magnetic actuation
micromotors
miniature robots
title Oscillating Magnetic Field Induced Bone Injury Repair by using Drug‐Free Micromotors
title_full Oscillating Magnetic Field Induced Bone Injury Repair by using Drug‐Free Micromotors
title_fullStr Oscillating Magnetic Field Induced Bone Injury Repair by using Drug‐Free Micromotors
title_full_unstemmed Oscillating Magnetic Field Induced Bone Injury Repair by using Drug‐Free Micromotors
title_short Oscillating Magnetic Field Induced Bone Injury Repair by using Drug‐Free Micromotors
title_sort oscillating magnetic field induced bone injury repair by using drug free micromotors
topic bone injury repair
hydrogel
magnetic actuation
micromotors
miniature robots
url https://doi.org/10.1002/advs.202503254
work_keys_str_mv AT jieshen oscillatingmagneticfieldinducedboneinjuryrepairbyusingdrugfreemicromotors
AT ruihe oscillatingmagneticfieldinducedboneinjuryrepairbyusingdrugfreemicromotors
AT jiajunhe oscillatingmagneticfieldinducedboneinjuryrepairbyusingdrugfreemicromotors
AT lipengliao oscillatingmagneticfieldinducedboneinjuryrepairbyusingdrugfreemicromotors
AT yongcanhuang oscillatingmagneticfieldinducedboneinjuryrepairbyusingdrugfreemicromotors
AT shaoxiongmin oscillatingmagneticfieldinducedboneinjuryrepairbyusingdrugfreemicromotors
AT xiaorengfeng oscillatingmagneticfieldinducedboneinjuryrepairbyusingdrugfreemicromotors
AT binchen oscillatingmagneticfieldinducedboneinjuryrepairbyusingdrugfreemicromotors
AT benwang oscillatingmagneticfieldinducedboneinjuryrepairbyusingdrugfreemicromotors