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"Mesenchymal stem cells"

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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
  • 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
  • 6,625 View
  • 185 Download
  • 4 Web of Science
  • 6 Crossref

Review Articles

Spinal Cord Injury INTS-Neurospine Special Issue

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Multimodal Repair of Spinal Cord Injury With Mesenchymal Stem Cells
Neurospine. 2022;19(3):616-629.   Published online September 30, 2022
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Multimodal Repair of Spinal Cord Injury With Mesenchymal Stem Cells
Neurospine. 2022;19(3):616-629.   Published online September 30, 2022
Close
Spinal cord injury (SCI) is a result of a devastating injury to the central nervous system. Currently, there is no effective treatment available for these patients. The possible use of mesenchymal stem cell (MSC)-based treatment for SCI has been the focus of extensive investigations and is increasingly moving from the bench to bedside. Both experimental observations and clinical studies have shown the safety and efficacy of MSCs in managing SCI. However, the exact mechanism by which MSCs contribute to the repair of the injured spinal cord remains to be elucidated. In this review, we aim to summarize current research findings about the role of MSCs in improving complex pathology after SCI. MSCs exert a multimodal repair mechanism targeting multiple events in the secondary injury cascade. Our recent results showing the perineurium-like differentiation of surviving MSCs in the injured spinal cord may further the understanding of the fate of transplanted MSCs. These findings provide fundamental support for the clinical use of MSCs in SCI patients. Under experimental conditions, combining novel physical, chemical, and biological approaches led to significant improvements in the therapeutic efficacy of MSCs. These findings hold promise for the future of cell-based clinical treatment of SCI.

Citations

Citations to this article as recorded by  Crossref logo
  • Nanozyme-Switched Efferocytosis Initiation Platform Orchestrates Pathological Network Reprogramming to Promote Functional Recovery after Spinal Cord Injury
    Chang Li, Zheng Cheng, Yanwei He, Chuchu Ma, Yinzhe Sun, Weili Han, Jianing Gong, Xiaoying Xie, Peiqi Huang, Fenfen Ma, Zhihua Wang, Honglian Zhao, Sijian Pan, Shiqiang Tong, Jun Chen
    ACS Nano.2026; 20(20): 14890.     CrossRef
  • Neuroinflammation: targeting microglia for neuroprotection and repair after spinal cord injury
    Roberta Ramos Cavalcanti, Fernanda Martins Almeida, Ana Maria Blanco Martinez, Camila Marques Freria
    Frontiers in Immunology.2025;[Epub]     CrossRef
  • Stem Cell and Regenerative Therapies for the Treatment of Osteoporotic Vertebral Compression Fractures
    Songzi Zhang, Yunhwan Lee, Yanting Liu, Yerin Yu, Inbo Han
    International Journal of Molecular Sciences.2024; 25(9): 4979.     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
  • Innovative Strategies in 3D Bioprinting for Spinal Cord Injury Repair
    Daniel Youngsuk Kim, Yanting Liu, Gyubin Kim, Seong Bae An, Inbo Han
    International Journal of Molecular Sciences.2024; 25(17): 9592.     CrossRef
  • Repeated intrathecal injections of peripheral nerve-derived stem cell spheroids improve outcomes in a rat model of traumatic brain injury
    Hae Eun Shin, Won-Jin Lee, Kwang-Sook Park, Yerin Yu, Gyubin Kim, Eun Ji Roh, Byeong Gwan Song, Joon-Hyuk Jung, Kwangrae Cho, Young-hu Ha, Young-Il Yang, Inbo Han
    Stem Cell Research & Therapy.2024;[Epub]     CrossRef
  • Modulation of the LIMK Pathway by Myricetin: A Protective Strategy Against Neurological Impairments in Spinal Cord Injury
    Abhishek Roy, Santimoy Sen, Rudradip Das, Amit Shard, Hemant Kumar
    Neurospine.2024; 21(3): 878.     CrossRef
  • Induced neural stem cells suppressed neuroinflammation by inhibiting the microglial pyroptotic pathway in intracerebral hemorrhage rats
    Jiaxin Liu, Chuanshang Cao, Yiran Jin, Yan Wang, Xiaona Ma, Jiahui Li, Songlin Guo, Jiancheng Yang, Jianguo Niu, Xueyun Liang
    iScience.2023; 26(7): 107022.     CrossRef
  • Different Ways to Die: Cell Death Pathways and Their Association With Spinal Cord Injury
    Lahanya Guha, Nidhi Singh, Hemant Kumar
    Neurospine.2023; 20(2): 430.     CrossRef
  • Commentary on “Different Ways to Die: Cell Death Pathways and Their Association With Spinal Cord Injury”
    Jeffrey Luo, Joshua B. Stein, Ki-Bum Lee
    Neurospine.2023; 20(2): 449.     CrossRef
  • Intensive neurorehabilitation and allogeneic stem cells transplantation in canine degenerative myelopathy
    Débora Gouveia, Jéssica Correia, Ana Cardoso, Carla Carvalho, Ana Catarina Oliveira, António Almeida, Óscar Gamboa, Lénio Ribeiro, Mariana Branquinho, Ana Sousa, Bruna Lopes, Patrícia Sousa, Alícia Moreira, André Coelho, Alexandra Rêma, Rui Alvites, Antón
    Frontiers in Veterinary Science.2023;[Epub]     CrossRef
  • Safety and Feasibility of Intradiscal Administration of Matrilin-3-Primed Adipose-Derived Mesenchymal Stromal Cell Spheroids for Chronic Discogenic Low Back Pain: Phase 1 Clinical Trial
    Dong Hyun Lee, Kwang-Sook Park, Hae Eun Shin, Sung Bum Kim, Hyejeong Choi, Seong Bae An, Hyemin Choi, Joo Pyung Kim, Inbo Han
    International Journal of Molecular Sciences.2023; 24(23): 16827.     CrossRef
  • 9,051 View
  • 247 Download
  • 13 Web of Science
  • 12 Crossref

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Wnt3a and wnt5a as Potential Chondrogenic Stimulators for Nucleus Pulposus Cell Induction: A Comprehensive Review
Neurospine. 2020;17(1):19-35.   Published online March 31, 2020
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Wnt3a and wnt5a as Potential Chondrogenic Stimulators for Nucleus Pulposus Cell Induction: A Comprehensive Review
Neurospine. 2020;17(1):19-35.   Published online March 31, 2020
Close
Low back pain remains a highly prevalent pathology engendering a tremendous socioeconomic burden. Low back pain is generally associated with intervertebral disc (IVD) degeneration, a process involving the deterioration of nucleus pulpous (NP) cells and IVD matrix. Scientific interest has directed efforts to restoring cell numbers as a strategy to enable IVD regeneration. Currently, mesenchymal stromal cells (MSCs) are being explored as cell therapy agents, due to their easy accessibility and differentiation potential. For enhancement of MSCs, growth factor supplementation is commonly applied to induce differentiation towards a chondrogenic (NP) cell phenotype. The wnt signaling pathways play a crucial role in chondrogenesis, nonetheless, literature appears to present controversies with regard to wnt3a and wnt5a for the induction of NP cells, chondrocytes, and MSCs. This review aims to summarize the reporting on wnt3a/wnt5a mediated NP cell differentiation, and to elucidate the mechanisms involved in wnt3a and wnt5a mediated chondrogenesis for potential application as cell therapy supplements for IVD regeneration. Our review suggests that wnt3a, subsequently replaced with a chondrogenic stimulating growth factor, can enhance the chondrogenic potential of MSCs in vitro. Contrariwise, wnt5a is suggested to play a role in maintaining cell potency of differentiated NP or chondrogenic cells.

Citations

Citations to this article as recorded by  Crossref logo
  • TIE2-positive cells in the nucleus pulposus with a purpose: the who, what and why
    Jordy Schol, Luca Ambrosio, Clara Ruiz-Fernandez, Leon Schlagenhof, Chantal Voskamp, Lisanne T. Laagland, Erika Matsushita, Hazuki Soma, Takayuki Warita, Gianluca Vadalà, Marianna A. Tryfonidou, Benjamin Gantenbein, Daisuke Sakai
    Journal of Biomedical Science.2026;[Epub]     CrossRef
  • Chemotherapy‐driven expression of WNT ligands in bone marrow stromal cells contributes to chemoresistance in acute lymphoblastic leukaemia
    Foteini Kalampalika, Amanda Jiménez‐Pompa, Raúl Sánchez‐Lanzas, Bela Patel, Miguel Ganuza
    British Journal of Haematology.2026; 208(5): 1572.     CrossRef
  • Chrono-mechanobiology: The complex interactions between mechanotransduction and circadian rhythms in the intervertebral disc and articular cartilage, in health and disease
    Zerihun G. Workineh, Laura Baumgartner, Andreu Pascuet-Fontanet, Maxie Ter-Grigoryan, Ali Mobasheri, Stephen Richardson, Qing-Jun Meng, Jérôme Noailly
    Physics of Life Reviews.2026; 57: 132.     CrossRef
  • The Multidimensional Regulatory Network of Osteoblast Differentiation and Targeted Therapeutic Strategies for OP
    Chuntao Liang, Dongcheng Peng, Hongkai Wang
    Cell Conflux.2026; 2: e325.     CrossRef
  • Synthesis and potential osteogenic applications of Wnt3a‐loaded ZIF‐8 nanoparticles
    Hengfei Wang, Song Chen, Zihan He, Junyu Chen, Zhou Zhu, Qianbing Wan, Jian Wang, Xibo Pei
    Chinese Chemical Letters.2024; 35(3): 108597.     CrossRef
  • Mesenchymal Stem Cell–Derived Exosomes in Various Chronic Liver Diseases: Hype or Hope?
    Lujian Zhu, Qin Wang, Maodong Guo, Hao Fang, Ting Li, Yin Zhu, Huimian Jiang, Peiguang Xiao, Minli Hu
    Journal of Inflammation Research.2024; Volume 17: 171.     CrossRef
  • A comprehensive review of cell transplantation and platelet‐rich plasma therapy for the treatment of disc degeneration‐related back and neck pain: A systematic evidence‐based analysis
    Jordy Schol, Shota Tamagawa, Tibo Nico Emmie Volleman, Muneaki Ishijima, Daisuke Sakai
    JOR SPINE.2024;[Epub]     CrossRef
  • Getting to the Core: Exploring the Embryonic Development from Notochord to Nucleus Pulposus
    Luca Ambrosio, Jordy Schol, Clara Ruiz-Fernández, Shota Tamagawa, Kieran Joyce, Akira Nomura, Elisabetta de Rinaldis, Daisuke Sakai, Rocco Papalia, Gianluca Vadalà, Vincenzo Denaro
    Journal of Developmental Biology.2024; 12(3): 18.     CrossRef
  • Alginate vs. Hyaluronic Acid as Carriers for Nucleus Pulposus Cells: A Study on Regenerative Outcomes in Disc Degeneration
    Shota Ogasawara, Jordy Schol, Daisuke Sakai, Takayuki Warita, Takano Susumu, Yoshihiko Nakamura, Kosuke Sako, Shota Tamagawa, Erika Matsushita, Hazuki Soma, Masato Sato, Masahiko Watanabe
    Cells.2024; 13(23): 1984.     CrossRef
  • Effective Modulation of Inflammation and Oxidative Stress for Enhanced Regeneration of Intervertebral Discs Using 3D Porous Hybrid Protein Nanoscaffold
    Letao Yang, Basanta Bhujel, Yannan Hou, Jeffrey Luo, Seong Bae An, Inbo Han, Ki‐Bum Lee
    Advanced Materials.2023;[Epub]     CrossRef
  • A Review: Methodologies to Promote the Differentiation of Mesenchymal Stem Cells for the Regeneration of Intervertebral Disc Cells Following Intervertebral Disc Degeneration
    Takashi Ohnishi, Kentaro Homan, Akira Fukushima, Daisuke Ukeba, Norimasa Iwasaki, Hideki Sudo
    Cells.2023; 12(17): 2161.     CrossRef
  • Signaling Mechanisms of Stem Cell Therapy for Intervertebral Disc Degeneration
    Xiaotian Du, Kejiong Liang, Shili Ding, Haifei Shi
    Biomedicines.2023; 11(9): 2467.     CrossRef
  • Safety and Feasibility of Intradiscal Administration of Matrilin-3-Primed Adipose-Derived Mesenchymal Stromal Cell Spheroids for Chronic Discogenic Low Back Pain: Phase 1 Clinical Trial
    Dong Hyun Lee, Kwang-Sook Park, Hae Eun Shin, Sung Bum Kim, Hyejeong Choi, Seong Bae An, Hyemin Choi, Joo Pyung Kim, Inbo Han
    International Journal of Molecular Sciences.2023; 24(23): 16827.     CrossRef
  • Biomaterial-mediated presentation of wnt5a mimetic ligands enhances chondrogenesis and metabolism of stem cells by activating non-canonical Wnt signaling
    Yingrui Deng, Xiaoting Zhang, Rui Li, Zhuo Li, Boguang Yang, Peng Shi, Honglu Zhang, Chunming Wang, Chunyi Wen, Gang Li, Liming Bian
    Biomaterials.2022; 281: 121316.     CrossRef
  • The Role of Notch and Wnt Signaling in MSC Communication in Normal and Leukemic Bone Marrow Niche
    Paul Takam Kamga, Riccardo Bazzoni, Giada Dal Collo, Adriana Cassaro, Ilaria Tanasi, Anna Russignan, Cristina Tecchio, Mauro Krampera
    Frontiers in Cell and Developmental Biology.2021;[Epub]     CrossRef
  • Screening for Growth-Factor Combinations Enabling Synergistic Differentiation of Human MSC to Nucleus Pulposus Cell-Like Cells
    Kosuke Morita, Jordy Schol, Tibo N. E. Volleman, Daisuke Sakai, Masato Sato, Masahiko Watanabe
    Applied Sciences.2021; 11(8): 3673.     CrossRef
  • Regulation of pathophysiological and tissue regenerative functions of MSCs mediated via the WNT signaling pathway (Review)
    Qingtao Zhang, Jian Yu, Qiuqiu Chen, Honghai Yan, Hongjiang Du, Wenjing Luo
    Molecular Medicine Reports.2021;[Epub]     CrossRef
  • 13,716 View
  • 255 Download
  • 16 Web of Science
  • 17 Crossref