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"Qingwen Deng"

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"Qingwen Deng"

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Mesenchymal Stem Cells Combined With Electroacupuncture Treatment Regulate the Subpopulation of Macrophages and Astrocytes to Facilitate Axonal Regeneration in Transected Spinal Cord
Neurospine. 2023;20(4):1358-1379.   Published online December 31, 2023
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Mesenchymal Stem Cells Combined With Electroacupuncture Treatment Regulate the Subpopulation of Macrophages and Astrocytes to Facilitate Axonal Regeneration in Transected Spinal Cord
Neurospine. 2023;20(4):1358-1379.   Published online December 31, 2023
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Objective
Herein, we investigated whether mesenchymal stem cells (MSCs) transplantation combined with electroacupuncture (EA) treatment could decrease the proportion of proinflammatory microglia/macrophages and neurotoxic A1 reactive astrocytes and inhibit glial scar formation to enhance axonal regeneration after spinal cord injury (SCI).
Methods
Adult rats were divided into 5 groups after complete transection of the spinal cord at the T10 level: a control group, a nonacupoint EA (NA-EA) group, an EA group, an MSC group, and an MSCs+EA group. Immunofluorescence labeling, quantitative real-time polymerase chain reaction, enzyme-linked immunosorbent assay, and Western blots were performed.
Results
The results showed that MSCs+EA treatment reduced the proportion of proinflammatory M1 subtype microglia/macrophages, but increased the differentiation of anti-inflammatory M2 phenotype cells, thereby suppressing the mRNA and protein expression of proinflammatory cytokines (tumor necrosis factor-α and IL-1β) and increasing the expression of an anti-inflammatory cytokine (interleukin [IL]-10) on days 7 and 14 after SCI. The changes in expression correlated with the attenuated neurotoxic A1 reactive astrocytes and glial scar, which in turn facilitated the axonal regeneration of the injured spinal cord. In vitro, the proinflammatory cytokines increased the level of proliferation of astrocytes and increased the expression levels of C3, glial fibrillary acidic protein, and chondroitin sulfate proteoglycan. These effects were blocked by administering inhibitors of ErbB1 and signal transducer and activator of transcription 3 (STAT3) (AG1478 and AG490) and IL-10.
Conclusion
These findings showed that MSCs+EA treatment synergistically regulated the microglia/macrophage subpopulation to reduce inflammation, the formation of neurotoxic A1 astrocytes, and glial scars. This was achieved by downregulating the ErbB1-STAT3 signal pathway, thereby providing a favorable microenvironment conducive to axonal regeneration after SCI.

Citations

Citations to this article as recorded by  Crossref logo
  • The role of autophagy in spinal cord injury: Mechanisms, crosstalk, and therapeutic strategies
    Rui Wang, Zhen Niu, Runze Tian, Aini Chen, Huangmei Liao, Rui Kuang, Ying Feng, Guangyu Chin, Jiesheng Xie, Ping Zhu, Chi Teng Vong, Ge Li
    Neural Regeneration Research.2026; 21(6): 2110.     CrossRef
  • Mesenchymal stem cells transplantation as a replacement stem cell for the treatment of neuropathic pain
    Wen-Jun Zhang, Xin Zhang, Ji-Peng Liu, Yong-Sheng Xu, Jun-Xiang Liao, Bing Zou, Liu-Xiang Fu
    International Journal of Surgery.2026; 112(3): 7906.     CrossRef
  • STAT3 Signaling in Spinal Cord Injury: Neurochemical Mechanisms Linking Neuroinflammation, Mitochondrial Stress, and Glial Remodeling
    Da Wei, Jinsan Yang, Xiao He, Kang Li, Chaoliang Lv, Kai Gao
    Neurochemical Research.2026;[Epub]     CrossRef
  • Electroacupuncture-modulated DHCR24 facilitates spinal cord injury recovery by attenuating apoptosis and neuroinflammation via the Wnt signaling pathway
    Chunlei Li, Yuan Li, Tongyan Liu, Yue Zong, Lingyun Zhou
    Metabolic Brain Disease.2026;[Epub]     CrossRef
  • RVG‐Functionalized Liposomal Mollugin: A Targeted Nanotherapy for Spinal Cord Injury
    Quan Zhou, Imran Ibrahim Shaikh, Jianfeng Wang, Tongjun Li, Xinrong Wang, Shekhar Singh, Ayesha Younas, Yaru Shi, Kwonseop Kim, Shuanghu Wang, Jian Xiao
    Advanced Healthcare Materials.2026;[Epub]     CrossRef
  • Glial cell: Role of the pain modulation in acupuncture analgesia
    Mi YUAN, Lan YUAN, Wei CHEN, Yang-shuai SU, Meng-yan FAN, Xiang-hong JING, Wei HE, Xiao-yu WANG
    World Journal of Acupuncture - Moxibustion.2025; 35(2): 103.     CrossRef
  • Biomaterials and cell-based therapy post spinal cord injury
    Sara Haratizadeh, Haitao Liu, Hengde Li, Mohsen Adeli, Angelo H. All
    Journal of Translational Medicine.2025;[Epub]     CrossRef
  • Integrated single-cell and bulk RNA sequencing reveals the mechanisms of electroacupuncture in suppressing ferroptosis after spinal cord injury
    Jieqi Zhang, Yi Huang, Xihan Ying, Ruoqi Wang, Kai Zhang, Lei Wu, Dexiong Han, Ruijie Ma, Kelin He
    Clinical Traditional Medicine and Pharmacology.2025; 6(3): 200230.     CrossRef
  • Therapeutic Transplantation of Human Central Nervous System Organoids for Neural Reconstruction
    Sung Jun Hong, Minsung Bock, Songzi Zhang, Seong Bae An, Inbo Han
    International Journal of Molecular Sciences.2024; 25(15): 8540.     CrossRef
  • 7,305 View
  • 189 Download
  • 7 Web of Science
  • 9 Crossref

Spinal Cord Injury INTS-Neurospine Special Issue

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Transcription Profiling of a Revealed the Potential Molecular Mechanism of Governor Vessel Electroacupuncture for Spinal Cord Injury in Rats
Neurospine. 2022;19(3):757-769.   Published online September 30, 2022
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Transcription Profiling of a Revealed the Potential Molecular Mechanism of Governor Vessel Electroacupuncture for Spinal Cord Injury in Rats
Neurospine. 2022;19(3):757-769.   Published online September 30, 2022
Close
Objective
This study aimed to identify differentially expressed genes (DEGs) by transcriptome analysis to elucidate a potential mechanism by which governor vessel electroacupuncture (GV-EA) promotes neuronal survival, axonal regeneration, and functional recovery after complete transection spinal cord injury (SCI).
Methods
Sham, control, or GV-EA group adult female Sprague Dawley rats underwent a complete transection SCI protocol. SCI area RNA-seq investigated the DEGs of coding and noncoding RNAs 7 days post-SCI. Gene ontology (GO) and kyoto encyclopedia of genes and genomes (KEGG) enrichment analyses were used to classify DEGs functions, to explain a possible molecular mechanism. Immunofluorescence and BBB (Basso, Beattie, and Bresnahan) score were used to verify a GV-EA treatment effect following SCI.
Results
GV-EA treatment could regulate the expression of 173 mRNA, 260 lncRNA, and 153 circRNA genes among these DEGs resulted by SCI. GO enrichment analysis showed that the DEGs were most enriched in membrane, actin binding, and regulation of Toll-like receptor signaling pathway. KEGG pathway analysis showed enriched pathways (e.g. , Toll-like receptors, MAPK, Hippo signaling). According to the ceRNA network, miR-144-3p played a regulatory role by interacting with lncRNA and circRNA. GV-EA also promoted the injured spinal cord neuron survival, axonal regeneration, and functional improvement of hind limb locomotion.
Conclusion
Results of our RNA-seq suggest that post-SCI GV-EA may regulate characteristic changes in transcriptome gene expression, potential critical genes, and signaling pathways, providing clear directions for further investigation into the mechanism of GV-EA in subacute SCI treatment. Moreover, we found that GV-EA promotes neuronal survival, nerve fiber extension, and motor function recovery in subacute SCI.

Citations

Citations to this article as recorded by  Crossref logo
  • A DNA tetrahedron assisted SDA-cas12a strategy for highly sensitive detection of spinal cord injury biomarker miR-144-3p
    Jianghu Huang, Xin Lin, Zhihua Zheng, Feiyue Lin, Weihua Liu
    Microchemical Journal.2026; 220: 116512.     CrossRef
  • Targeting the Spinal Cord‐Brain Axis: Electroacupuncture Mitigates Remote Frontal Cortex Neuroinflammation via HMGB1/TLR4 to Aid Functional Recovery After Spinal Cord Injury
    Yu Ning, Xin Hao, Phattharapon Rattanasakon, Yifei Dong, Ying Yang, Keduo Liu, Yuting Lin, Suhua Shi, Yuping Mo, Zhigang Li
    Brain and Behavior.2026;[Epub]     CrossRef
  • Electroacupuncture Modulation of Chondroitin Sulfate Glycosaminoglycan Promotes the Repair of Damaged Spinal Cord in Rats
    Bowen Chen, Rong Hu, Xingying Wu, Mengting Shi, Yi Chen, Jieqi Zhang, Yi Huang, Xihan Ying, Dexiong Han, Ruijie Ma
    Journal of Integrative Neuroscience.2026;[Epub]     CrossRef
  • Electroacupuncture promotes functional recovery after spinal cord injury in rats by regulating P2X4R/p38 MAPK signaling pathway and suppressing inflammatory responses
    Xiang Wang, Yimin Gao, Jianzhong Huo
    NeuroReport.2025; 36(9): 443.     CrossRef
  • Preventive and therapeutic effects of Tanshinone IIA on spinal cord injury without radiographic abnormality by regulating microglial phenotype polarization
    Luchun Xu, Yukun Ma, Guozheng Jiang, Zheng Cao, Jiawei Song, Yushan Gao, Guanlong Wang, Jiaojiao Fan, Yongdong Yang, Xing Yu
    International Immunopharmacology.2025; 161: 115086.     CrossRef
  • POU6F1 promote lumbar motor circuit reorganization following spinal cord injury
    Shuying Wang, Yi Li, Dongming Liu, Zhongxiao Lv, Guangda Sun, Dazhi Wang, Ping Sun, Lingxiao Deng, Hua Jia, Wenyuan Li, Ying Wang
    Neurobiology of Disease.2025; 215: 107080.     CrossRef
  • Editorial: New advances in functional rehabilitation after central and peripheral nervous system injury
    Ying Ding, Ge Li, Peixun Zhang, Wei Zhang
    Frontiers in Neurology.2023;[Epub]     CrossRef
  • Co-Administration of Resolvin D1 and Peripheral Nerve-Derived Stem Cell Spheroids as a Therapeutic Strategy in a Rat Model of Spinal Cord Injury
    Seung-Young Jeong, Hye-Lan Lee, SungWon Wee, HyeYeong Lee, GwangYong Hwang, SaeYeon Hwang, SolLip Yoon, Young-Il Yang, Inbo Han, Keung-Nyun Kim
    International Journal of Molecular Sciences.2023; 24(13): 10971.     CrossRef
  • Electroacupuncture-Modulated MiR-106b-5p Expression Enhances Autophagy by Targeting Beclin-1 to Promote Motor Function Recovery After Spinal Cord Injury in Rats
    Shuhui Guo, Jianmin Chen, Ye Yang, Xiaolu Li, Yun Tang, Yuchang Gui, Jianquan Chen, jianwen Xu
    Neurospine.2023; 20(3): 1011.     CrossRef
  • 7,825 View
  • 204 Download
  • 10 Web of Science
  • 9 Crossref