A bioabsorbable mechanoelectric fiber as electrical stimulation suture

In surgical medicine, suturing is the standard treatment for large incisions, yet traditional sutures are limited in functionality. Electrical stimulation is a non-pharmacological therapy that promotes wound healing. In this context, we designed a passive and biodegradable mechanoelectric suture. Th...

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Veröffentlicht in:Nature communications Jg. 15; H. 1; S. 8462 - 12
Hauptverfasser: Sun, Zhouquan, Jin, Yuefan, Luo, Jiabei, Li, Linpeng, Ding, Yue, Luo, Yu, Qi, Yan, Li, Yaogang, Zhang, Qinghong, Li, Kerui, Shi, Haibo, Yin, Shankai, Wang, Hongzhi, Wang, Hui, Hou, Chengyi
Format: Journal Article
Sprache:Englisch
Veröffentlicht: London Nature Publishing Group UK 08.10.2024
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ISSN:2041-1723, 2041-1723
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Abstract In surgical medicine, suturing is the standard treatment for large incisions, yet traditional sutures are limited in functionality. Electrical stimulation is a non-pharmacological therapy that promotes wound healing. In this context, we designed a passive and biodegradable mechanoelectric suture. The suture consists of multi-layer coaxial structure composed of (poly(lactic-co-glycolic acid), polycaprolactone) and magnesium to allow safe degradation. In addition to the excellent mechanical properties, the mechanoelectrical nature of the suture grants the generation of electric fields in response to movement and stretching. This is shown to speed up wound healing by 50% and reduce the risk of infection. This work presents an evolution of the conventional wound closure procedures, using a safe and degradable device ready to be translated into clinical practice. Sutures are ubiquitous in clinical practice. They close wounds and speed up repair. Here the authors show electroactive sutures, made of triboelectric materials. They generate an electric field in response to natural movement that speed up wound healing by more than 50%
AbstractList In surgical medicine, suturing is the standard treatment for large incisions, yet traditional sutures are limited in functionality. Electrical stimulation is a non-pharmacological therapy that promotes wound healing. In this context, we designed a passive and biodegradable mechanoelectric suture. The suture consists of multi-layer coaxial structure composed of (poly(lactic-co-glycolic acid), polycaprolactone) and magnesium to allow safe degradation. In addition to the excellent mechanical properties, the mechanoelectrical nature of the suture grants the generation of electric fields in response to movement and stretching. This is shown to speed up wound healing by 50% and reduce the risk of infection. This work presents an evolution of the conventional wound closure procedures, using a safe and degradable device ready to be translated into clinical practice.
In surgical medicine, suturing is the standard treatment for large incisions, yet traditional sutures are limited in functionality. Electrical stimulation is a non-pharmacological therapy that promotes wound healing. In this context, we designed a passive and biodegradable mechanoelectric suture. The suture consists of multi-layer coaxial structure composed of (poly(lactic-co-glycolic acid), polycaprolactone) and magnesium to allow safe degradation. In addition to the excellent mechanical properties, the mechanoelectrical nature of the suture grants the generation of electric fields in response to movement and stretching. This is shown to speed up wound healing by 50% and reduce the risk of infection. This work presents an evolution of the conventional wound closure procedures, using a safe and degradable device ready to be translated into clinical practice.In surgical medicine, suturing is the standard treatment for large incisions, yet traditional sutures are limited in functionality. Electrical stimulation is a non-pharmacological therapy that promotes wound healing. In this context, we designed a passive and biodegradable mechanoelectric suture. The suture consists of multi-layer coaxial structure composed of (poly(lactic-co-glycolic acid), polycaprolactone) and magnesium to allow safe degradation. In addition to the excellent mechanical properties, the mechanoelectrical nature of the suture grants the generation of electric fields in response to movement and stretching. This is shown to speed up wound healing by 50% and reduce the risk of infection. This work presents an evolution of the conventional wound closure procedures, using a safe and degradable device ready to be translated into clinical practice.
In surgical medicine, suturing is the standard treatment for large incisions, yet traditional sutures are limited in functionality. Electrical stimulation is a non-pharmacological therapy that promotes wound healing. In this context, we designed a passive and biodegradable mechanoelectric suture. The suture consists of multi-layer coaxial structure composed of (poly(lactic-co-glycolic acid), polycaprolactone) and magnesium to allow safe degradation. In addition to the excellent mechanical properties, the mechanoelectrical nature of the suture grants the generation of electric fields in response to movement and stretching. This is shown to speed up wound healing by 50% and reduce the risk of infection. This work presents an evolution of the conventional wound closure procedures, using a safe and degradable device ready to be translated into clinical practice. Sutures are ubiquitous in clinical practice. They close wounds and speed up repair. Here the authors show electroactive sutures, made of triboelectric materials. They generate an electric field in response to natural movement that speed up wound healing by more than 50%
In surgical medicine, suturing is the standard treatment for large incisions, yet traditional sutures are limited in functionality. Electrical stimulation is a non-pharmacological therapy that promotes wound healing. In this context, we designed a passive and biodegradable mechanoelectric suture. The suture consists of multi-layer coaxial structure composed of (poly(lactic-co-glycolic acid), polycaprolactone) and magnesium to allow safe degradation. In addition to the excellent mechanical properties, the mechanoelectrical nature of the suture grants the generation of electric fields in response to movement and stretching. This is shown to speed up wound healing by 50% and reduce the risk of infection. This work presents an evolution of the conventional wound closure procedures, using a safe and degradable device ready to be translated into clinical practice.Sutures are ubiquitous in clinical practice. They close wounds and speed up repair. Here the authors show electroactive sutures, made of triboelectric materials. They generate an electric field in response to natural movement that speed up wound healing by more than 50%
Abstract In surgical medicine, suturing is the standard treatment for large incisions, yet traditional sutures are limited in functionality. Electrical stimulation is a non-pharmacological therapy that promotes wound healing. In this context, we designed a passive and biodegradable mechanoelectric suture. The suture consists of multi-layer coaxial structure composed of (poly(lactic-co-glycolic acid), polycaprolactone) and magnesium to allow safe degradation. In addition to the excellent mechanical properties, the mechanoelectrical nature of the suture grants the generation of electric fields in response to movement and stretching. This is shown to speed up wound healing by 50% and reduce the risk of infection. This work presents an evolution of the conventional wound closure procedures, using a safe and degradable device ready to be translated into clinical practice.
ArticleNumber 8462
Author Ding, Yue
Li, Yaogang
Wang, Hui
Luo, Jiabei
Luo, Yu
Jin, Yuefan
Li, Kerui
Yin, Shankai
Hou, Chengyi
Li, Linpeng
Zhang, Qinghong
Sun, Zhouquan
Qi, Yan
Shi, Haibo
Wang, Hongzhi
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  organization: State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Donghua University
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  fullname: Jin, Yuefan
  organization: Shanghai Key Laboratory of Sleep Disordered Breathing, Department of Otolaryngology-Head and Neck Surgery, Otolaryngology Institute of Shanghai JiaoTong University, Shanghai Sixth People’s Hospital Affiliated to Shanghai Jiao Tong University School of Medicine
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  organization: Shanghai Engineering Research Center of Pharmaceutical Intelligent Equipment, Shanghai Frontiers Science Research Center for Druggability of Cardiovascular Non-coding RNA, Institute for Frontier Medical Technology, School of Chemistry and Chemical Engineering Shanghai University of Engineering Science
– sequence: 7
  givenname: Yan
  surname: Qi
  fullname: Qi, Yan
  organization: Yangzhi Rehabilitation Hospital Affiliated to Tongji University, Tongji University School of Medicine
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  surname: Li
  fullname: Li, Yaogang
  organization: State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Donghua University
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  orcidid: 0000-0002-4373-7665
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  givenname: Kerui
  orcidid: 0000-0003-0933-8932
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  fullname: Li, Kerui
  organization: State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Donghua University
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  orcidid: 0000-0002-2920-0183
  surname: Shi
  fullname: Shi, Haibo
  organization: Shanghai Key Laboratory of Sleep Disordered Breathing, Department of Otolaryngology-Head and Neck Surgery, Otolaryngology Institute of Shanghai JiaoTong University, Shanghai Sixth People’s Hospital Affiliated to Shanghai Jiao Tong University School of Medicine
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  givenname: Hongzhi
  orcidid: 0000-0002-5469-2327
  surname: Wang
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  email: wanghz@dhu.edu.cn
  organization: State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Donghua University
– sequence: 14
  givenname: Hui
  surname: Wang
  fullname: Wang, Hui
  email: wangh2005@alumni.sjtu.edu.cn
  organization: Shanghai Key Laboratory of Sleep Disordered Breathing, Department of Otolaryngology-Head and Neck Surgery, Otolaryngology Institute of Shanghai JiaoTong University, Shanghai Sixth People’s Hospital Affiliated to Shanghai Jiao Tong University School of Medicine
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  givenname: Chengyi
  orcidid: 0000-0003-4142-2982
  surname: Hou
  fullname: Hou, Chengyi
  email: hcy@dhu.edu.cn
  organization: State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Donghua University
BackLink https://www.ncbi.nlm.nih.gov/pubmed/39379368$$D View this record in MEDLINE/PubMed
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PublicationTitleAbbrev Nat Commun
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Nature Publishing Group
Nature Portfolio
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Snippet In surgical medicine, suturing is the standard treatment for large incisions, yet traditional sutures are limited in functionality. Electrical stimulation is a...
Abstract In surgical medicine, suturing is the standard treatment for large incisions, yet traditional sutures are limited in functionality. Electrical...
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SubjectTerms 639/166/985
639/301/54/990
639/4077/4072/4062
Absorbable Implants
Animals
Biocompatible Materials - chemistry
Biodegradation
Clinical medicine
Electric fields
Electric Stimulation - instrumentation
Electrical stimuli
Glycolic acid
Health risks
Humanities and Social Sciences
Lactic Acid - chemistry
Magnesium
Magnesium - chemistry
Male
Mechanical properties
multidisciplinary
Multilayers
Polycaprolactone
Polyesters - chemistry
Polyglycolic Acid - chemistry
Polylactic Acid-Polyglycolic Acid Copolymer - chemistry
Science
Science (multidisciplinary)
Stimulation
Suture Techniques - instrumentation
Sutures
Wound Healing
Wound infection
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Title A bioabsorbable mechanoelectric fiber as electrical stimulation suture
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