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Implantable Electrical Stimulation at Dorsal Root Ganglions Accelerates Osteoporotic Fracture Healing via Calcitonin Gene‐Related Peptide

The neuronal engagement of the peripheral nerve system plays a crucial role in regulating fracture healing, but how to modulate the neuronal activity to enhance fracture healing remains unexploited. Here it is shown that electrical stimulation (ES) directly promotes the biosynthesis and release of c...

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Autores principales: Mi, Jie, Xu, Jian‐Kun, Yao, Zhi, Yao, Hao, Li, Ye, He, Xuan, Dai, Bing‐Yang, Zou, Li, Tong, Wen‐Xue, Zhang, Xiao‐Tian, Hu, Pei‐Jie, Ruan, Ye Chun, Tang, Ning, Guo, Xia, Zhao, Jie, He, Ju‐Fang, Qin, Ling
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8728818/
https://www.ncbi.nlm.nih.gov/pubmed/34708571
http://dx.doi.org/10.1002/advs.202103005
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author Mi, Jie
Xu, Jian‐Kun
Yao, Zhi
Yao, Hao
Li, Ye
He, Xuan
Dai, Bing‐Yang
Zou, Li
Tong, Wen‐Xue
Zhang, Xiao‐Tian
Hu, Pei‐Jie
Ruan, Ye Chun
Tang, Ning
Guo, Xia
Zhao, Jie
He, Ju‐Fang
Qin, Ling
author_facet Mi, Jie
Xu, Jian‐Kun
Yao, Zhi
Yao, Hao
Li, Ye
He, Xuan
Dai, Bing‐Yang
Zou, Li
Tong, Wen‐Xue
Zhang, Xiao‐Tian
Hu, Pei‐Jie
Ruan, Ye Chun
Tang, Ning
Guo, Xia
Zhao, Jie
He, Ju‐Fang
Qin, Ling
author_sort Mi, Jie
collection PubMed
description The neuronal engagement of the peripheral nerve system plays a crucial role in regulating fracture healing, but how to modulate the neuronal activity to enhance fracture healing remains unexploited. Here it is shown that electrical stimulation (ES) directly promotes the biosynthesis and release of calcitonin gene‐related peptide (CGRP) by activating Ca(2+)/CaMKII/CREB signaling pathway and action potential, respectively. To accelerate rat femoral osteoporotic fracture healing which presents with decline of CGRP, soft electrodes are engineered and they are implanted at L3 and L4 dorsal root ganglions (DRGs). ES delivered at DRGs for the first two weeks after fracture increases CGRP expression in both DRGs and fracture callus. It is also identified that CGRP is indispensable for type‐H vessel formation, a biological event coupling angiogenesis and osteogenesis, contributing to ES‐enhanced osteoporotic fracture healing. This proof‐of‐concept study shows for the first time that ES at lumbar DRGs can effectively promote femoral fracture healing, offering an innovative strategy using bioelectronic device to enhance bone regeneration.
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spelling pubmed-87288182022-01-11 Implantable Electrical Stimulation at Dorsal Root Ganglions Accelerates Osteoporotic Fracture Healing via Calcitonin Gene‐Related Peptide Mi, Jie Xu, Jian‐Kun Yao, Zhi Yao, Hao Li, Ye He, Xuan Dai, Bing‐Yang Zou, Li Tong, Wen‐Xue Zhang, Xiao‐Tian Hu, Pei‐Jie Ruan, Ye Chun Tang, Ning Guo, Xia Zhao, Jie He, Ju‐Fang Qin, Ling Adv Sci (Weinh) Research Articles The neuronal engagement of the peripheral nerve system plays a crucial role in regulating fracture healing, but how to modulate the neuronal activity to enhance fracture healing remains unexploited. Here it is shown that electrical stimulation (ES) directly promotes the biosynthesis and release of calcitonin gene‐related peptide (CGRP) by activating Ca(2+)/CaMKII/CREB signaling pathway and action potential, respectively. To accelerate rat femoral osteoporotic fracture healing which presents with decline of CGRP, soft electrodes are engineered and they are implanted at L3 and L4 dorsal root ganglions (DRGs). ES delivered at DRGs for the first two weeks after fracture increases CGRP expression in both DRGs and fracture callus. It is also identified that CGRP is indispensable for type‐H vessel formation, a biological event coupling angiogenesis and osteogenesis, contributing to ES‐enhanced osteoporotic fracture healing. This proof‐of‐concept study shows for the first time that ES at lumbar DRGs can effectively promote femoral fracture healing, offering an innovative strategy using bioelectronic device to enhance bone regeneration. John Wiley and Sons Inc. 2021-10-28 /pmc/articles/PMC8728818/ /pubmed/34708571 http://dx.doi.org/10.1002/advs.202103005 Text en © 2021 The Authors. Advanced Science published by Wiley‐VCH GmbH https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Mi, Jie
Xu, Jian‐Kun
Yao, Zhi
Yao, Hao
Li, Ye
He, Xuan
Dai, Bing‐Yang
Zou, Li
Tong, Wen‐Xue
Zhang, Xiao‐Tian
Hu, Pei‐Jie
Ruan, Ye Chun
Tang, Ning
Guo, Xia
Zhao, Jie
He, Ju‐Fang
Qin, Ling
Implantable Electrical Stimulation at Dorsal Root Ganglions Accelerates Osteoporotic Fracture Healing via Calcitonin Gene‐Related Peptide
title Implantable Electrical Stimulation at Dorsal Root Ganglions Accelerates Osteoporotic Fracture Healing via Calcitonin Gene‐Related Peptide
title_full Implantable Electrical Stimulation at Dorsal Root Ganglions Accelerates Osteoporotic Fracture Healing via Calcitonin Gene‐Related Peptide
title_fullStr Implantable Electrical Stimulation at Dorsal Root Ganglions Accelerates Osteoporotic Fracture Healing via Calcitonin Gene‐Related Peptide
title_full_unstemmed Implantable Electrical Stimulation at Dorsal Root Ganglions Accelerates Osteoporotic Fracture Healing via Calcitonin Gene‐Related Peptide
title_short Implantable Electrical Stimulation at Dorsal Root Ganglions Accelerates Osteoporotic Fracture Healing via Calcitonin Gene‐Related Peptide
title_sort implantable electrical stimulation at dorsal root ganglions accelerates osteoporotic fracture healing via calcitonin gene‐related peptide
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8728818/
https://www.ncbi.nlm.nih.gov/pubmed/34708571
http://dx.doi.org/10.1002/advs.202103005
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