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A Commentary on “Comparative Outcomes of Biportal Endoscopic Decompression, Conventional Subtotal Laminectomy, and Minimally Invasive Transforaminal Lumbar Interbody Fusion for Lumbar Central Stenosis”
Neurospine. 2025;22(3):873-874.   Published online September 30, 2025
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A Commentary on “Comparative Outcomes of Biportal Endoscopic Decompression, Conventional Subtotal Laminectomy, and Minimally Invasive Transforaminal Lumbar Interbody Fusion for Lumbar Central Stenosis”
Neurospine. 2025;22(3):873-874.   Published online September 30, 2025
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Transcranial Optogenetic Stimulation Promotes Corticospinal Tract Axon Regeneration to Repair Spinal Cord Injury by Activating the JAK2/STAT3 Pathway
Neurospine. 2025;22(2):311-328.   Published online June 30, 2025
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Transcranial Optogenetic Stimulation Promotes Corticospinal Tract Axon Regeneration to Repair Spinal Cord Injury by Activating the JAK2/STAT3 Pathway
Neurospine. 2025;22(2):311-328.   Published online June 30, 2025
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Objective
Regeneration of corticospinal tract (CST) axons after spinal cord injury (SCI) is a key element in rebuilding neuronal connections to restore voluntary motor function. However, it remains challenging owing to limited effective interventions. This study adopted a modified transcranial optogenetic technique to stimulate CST axon regeneration into the injury site of completely transected SCI and explore the underlying molecular mechanisms.
Methods
A novel optogenetic light emitting diode (LED) device was used to stimulate the brain motor cortex in channelrhodopsin-2–yellow fluorescent protein (ChR2-YFP) transgenic mice to observe the regeneration of CST axons in the injury site of a complete SCI. The LED device was also used In vitro to stimulate the motor cortex slices of the transgenic mouse brain for observing the outgrowth of their neurites.
Results
After transcranial optogenetic stimulation, the pyramidal neurons of bilateral cerebral motor cortices, in ChR2-YFP transgenic mice were activated, CST axons regenerated into the injury site of the spinal cord, and the motor function of the paralyzed hindlimbs improved. Proteomic analysis revealed that CST axon regeneration was associated with the activation of the Janus kinase 2/signal transducer and activator of transcription 3 (JAK2/STAT3) pathway in the cerebral motor cortices. In vitro LED blue light illumination enhanced the outgrowth of neurites from the brain slices of transgenic mice. Treatment with a JAK2/STAT3 inhibitor led to a significant attenuation of neurite outgrowth.
Conclusion
The modified transcranial optogenetic technique stimulated bilateral motor cortices, in the brains of ChR2-YFP transgenic mice. It increased the excitability of pyramidal neurons in the motor cortices, and promoted CST axon regeneration by activating the JAK2/STAT3 pathway, repairing complete SCI.

Citations

Citations to this article as recorded by  Crossref logo
  • Frontier Integration in Spinal Cord Injury Repair: Engineering-Driven Mechanistic Exploration and a New Paradigm for Clinical Translation
    Mi Zhou, Xue Yao, Boya Huang, Jie Ren, Haiwen Feng, Shiqing Feng
    Engineering.2026; 60: 310.     CrossRef
  • Multimodal electroconductive PLGA-based scaffold orchestrates neuroprotection and regeneration following severe spinal cord injury
    So-Yeon Park, Gyubin Kim, Yanting Liu, Ji-Won Jung, Jeoung Eun Lee, Jun-Kyu Lee, Dong-Hee Kim, Juwon Youn, Seung-Woon Baek, Dong Ryul Lee, Dong-Youn Hwang, Tae-Keun Ahn, Da-Seul Kim, Inbo Han, Dong Keun Han
    Journal of Nanobiotechnology.2026;[Epub]     CrossRef
  • Extracellular Vesicle-Based Biomarkers in Spinal Cord Injury: A State-of-the-Art Review on Diagnostic and Prognostic Advances
    Trung Nhan Vo, Hae Eun Shin, Yeji Kim, Inbo Han
    International Journal of Molecular Sciences.2026; 27(4): 2079.     CrossRef
  • NanoScript-Enabled Nonviral Transient Repression of Phosphatase and Tensin Homolog for Axonal Regeneration and Central Nervous System Injury Repair
    Brandon Conklin, Yanting Liu, Sarah Nevins, Byeong-Gwan Song, Sy-Tsong Dean Chueng, Qiu Xiaowen, Sungyun Kim, Heyin Cheung, Seong Bae An, JongMin Lee, Bong Geun Chung, Wise Young, Dongming Sun, Hiroshi Sugiyama, Inbo Han, Ki-Bum Lee
    ACS Nano.2026; 20(8): 6582.     CrossRef
  • 3D bioprinted multifunctional GelMA/TMP scaffold integrated with neural stem cell-derived extracellular vesicles and neural progenitor cells for spinal cord injury repair
    Yanting Liu, Gyubin Kim, Jun Yong Kim, Jeong Min Park, Duck Hyun Song, Jun-Kyu Lee, So-Yeon Park, Inbo Han, Dong Keun Han
    Journal of Tissue Engineering.2026;[Epub]     CrossRef
  • Spinal cord extracellular matrix hydrogel enhances organoid maturation and functional regeneration after spinal cord injury
    Junghoon Kim, Songzi Zhang, Joon-Hyuk Jung, Mi-Jeong Lee, Inbo Han, Seung-Woo Cho
    Materials Today Bio.2026; 38: 103168.     CrossRef
  • Injectable Poloxamer and Hyaluronic Acid Hydrogel for Sustained Co-Delivery of Dexamethasone and Lidocaine Ameliorates Neuropathic Pain
    Yanting Liu, Seungwoon Baik, Trung Nhan Vo, Songzi Zhang, Boram Kim, Tae-Keun Ahn, Inbo Han, Dong Keun Han
    Biomaterials Research.2026;[Epub]     CrossRef
  • A Commentary on “Transcranial Optogenetic Stimulation Promotes Corticospinal Tract Axon Regeneration to Repair Spinal Cord Injury by Activating the JAK2/STAT3 Pathway”
    Wu Xue, Anyuan Dai, Qinyi Liu
    Neurospine.2025; 22(2): 329.     CrossRef
  • From the Editor-in-Chief: Featured Articles in the June 2025 Issue
    Inbo Han
    Neurospine.2025; 22(2): 309.     CrossRef
  • Potential Pharmacologic Treatments in Spinal Cord Injury: A Narrative Review
    Kyeong Deuk An, Chan Yang Noh, Junsoo Jang, Woon Tak Yuh, Il Choi
    Korean Journal of Neurotrauma.2025; 21(4): 237.     CrossRef
  • 9,780 View
  • 184 Download
  • 10 Web of Science
  • 10 Crossref

Basic Science

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Extracellular Ubiquitin Enhances Autophagy and Inhibits Mitochondrial Apoptosis Pathway to Protect Neurons Against Spinal Cord Ischemic Injury via CXCR4
Neurospine. 2025;22(1):157-172.   Published online February 27, 2025
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Extracellular Ubiquitin Enhances Autophagy and Inhibits Mitochondrial Apoptosis Pathway to Protect Neurons Against Spinal Cord Ischemic Injury via CXCR4
Neurospine. 2025;22(1):157-172.   Published online February 27, 2025
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Objective
Neuronal apoptosis is considered to be a critical process in spinal cord injury (SCI). Despite growing evidence of the antiapoptotic, anti-inflammatory, and modulation of ischemic injury tolerance effects of extracellular ubiquitin (eUb), existing studies have paid less attention to the impact of eUb in neurological injury disorders, particularly in SCI. This study aimed to investigate whether eUb can play a protective role in neurons, both in vitro and in vivo, and explores the underlying mechanisms.
Methods
By utilizing an oxygen glucose deprivation cellular model and a SCI rat model, we firstly investigated the therapeutic effects of eUb on SCI and further explored its effects on neuronal autophagy and mitochondria-dependent apoptosis-related indicators, as well as the phosphatidylinositol 3-kinase (PI3K)/protein kinase B (Akt)/mechanical target of rapamycin (mTOR) signaling pathway.
Results
In the SCI models both in vivo and in vitro, early intervention with eUb enhanced neuronal autophagy and inhibited mitochondrial apoptotic pathways, significantly mitigating SCI. Further studies had shown that this protective effect of eUb was mediated through its receptor, CXC chemokine receptor type 4 (CXCR4). Additionally, eUb-enhanced autophagy and antiapoptotic effects were possibly associated with inhibiting the PI3K/Akt/mTOR pathway.
Conclusion
In summary, the study demonstrates that early eUb intervention can enhance autophagy and inhibit mitochondrial apoptotic pathways via CXCR4, protecting neurons and promoting SCI repair.

Citations

Citations to this article as recorded by  Crossref logo
  • Multimodal electroconductive PLGA-based scaffold orchestrates neuroprotection and regeneration following severe spinal cord injury
    So-Yeon Park, Gyubin Kim, Yanting Liu, Ji-Won Jung, Jeoung Eun Lee, Jun-Kyu Lee, Dong-Hee Kim, Juwon Youn, Seung-Woon Baek, Dong Ryul Lee, Dong-Youn Hwang, Tae-Keun Ahn, Da-Seul Kim, Inbo Han, Dong Keun Han
    Journal of Nanobiotechnology.2026;[Epub]     CrossRef
  • Extracellular Vesicle-Based Biomarkers in Spinal Cord Injury: A State-of-the-Art Review on Diagnostic and Prognostic Advances
    Trung Nhan Vo, Hae Eun Shin, Yeji Kim, Inbo Han
    International Journal of Molecular Sciences.2026; 27(4): 2079.     CrossRef
  • 3D bioprinted multifunctional GelMA/TMP scaffold integrated with neural stem cell-derived extracellular vesicles and neural progenitor cells for spinal cord injury repair
    Yanting Liu, Gyubin Kim, Jun Yong Kim, Jeong Min Park, Duck Hyun Song, Jun-Kyu Lee, So-Yeon Park, Inbo Han, Dong Keun Han
    Journal of Tissue Engineering.2026;[Epub]     CrossRef
  • Spinal cord extracellular matrix hydrogel enhances organoid maturation and functional regeneration after spinal cord injury
    Junghoon Kim, Songzi Zhang, Joon-Hyuk Jung, Mi-Jeong Lee, Inbo Han, Seung-Woo Cho
    Materials Today Bio.2026; 38: 103168.     CrossRef
  • Multifunctional Nanozyme Hydrogel for Oxidative Stress Scavenging and Mitophagy Activation in Spinal Cord Injury Repair
    Zhen Dai, Hui Lu, Yanfeng Yang, Huicong Feng, Yijia Zhang, Zuqiang Shi, Ensi Liu, Haosen Zhao, Xifan Mei, Yansong Wang
    ACS Applied Materials & Interfaces.2026; 18(20): 28449.     CrossRef
  • Machine learning-assisted prediction of PANoptosis-related molecular targets and precise screening of neuroprotective drugs for spinal cord injury
    Dongmei Wang, Rui Wang, Huangmei Liao, Feiyang Lu, Zepeng Guo, Ruijun Xu, Aini Chen, Zhen Niu, Yusen Ou, Ge Li
    Experimental Neurology.2026; 404: 115884.     CrossRef
  • LncRNA NORAD Promotes Spinal Cord Injury via miR-22-3p/PTEN Axis to Regulate Oxidative Stress and Inflammation in Neuronal Cells
    Chenming Zhang, Lin Chen, Yue Pan, Shiwei Yu, Qingyi Wang, Yongfu Chen, Haitao Xu, Yuanyuan Zhang
    Global Spine Journal.2026;[Epub]     CrossRef
  • Phenserine Mitigates Neuroinflammation, Apoptosis, and Behavioural Deficits to Enhance Motor Function and Recovery in a Mouse Model of Spinal Cord Injury
    Lahanya Guha, Divya Goyal, Nidhi Singh, Mamidi Teena, Inbo Han, Hemant Kumar
    Molecular Neurobiology.2025; 62(10): 13763.     CrossRef
  • Potential Pharmacologic Treatments in Spinal Cord Injury: A Narrative Review
    Kyeong Deuk An, Chan Yang Noh, Junsoo Jang, Woon Tak Yuh, Il Choi
    Korean Journal of Neurotrauma.2025; 21(4): 237.     CrossRef
  • 5,078 View
  • 134 Download
  • 9 Web of Science
  • 9 Crossref

Regular Issue

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STM2457 Inhibits METTL3-Mediated m6A Modification of miR-30c to Alleviate Spinal Cord Injury by Inducing the ATG5-Mediated Autophagy
Neurospine. 2024;21(3):925-941.   Published online September 30, 2024
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STM2457 Inhibits METTL3-Mediated m6A Modification of miR-30c to Alleviate Spinal Cord Injury by Inducing the ATG5-Mediated Autophagy
Neurospine. 2024;21(3):925-941.   Published online September 30, 2024
Close
Objective
The study aimed to investigate the role of N6-methyladenosine (m6A) modification in spinal cord injury (SCI) and its underlying mechanism, focusing on the interplay between m6A methyltransferase-like 3 (METTL3), miR-30c, and autophagy-related proteins.
Methods
An SCI model was established in rats, and changes in autophagy-related proteins, m6A methylation levels, and miR-30c levels were analyzed. Hydrogen peroxide (H2O2)-stimulated spinal cord neuron cells (SCNCs) were used to assess the impact of METTL3 overexpression. The effects of STM2457, an antagonist of METTL3, were evaluated on cell viability, apoptosis, and autophagy markers in H2O2-stimulated SCNCs.
Results
In the SCI model, decreased levels of autophagy markers and increased m6A methylation, miR-30c levels, and METTL3 were observed. Overexpression of METTL3 in SCNCs led to reduced cell viability, increased apoptosis, and suppressed autophagy. Conversely, co-overexpression of autophagy-related protein 5 (ATG5) or miR-30c inhibition reversed these effects. Knocking out METTL3 yielded opposite results. STM2457 treatment improved cell viability, reduced apoptosis, and upregulated autophagy markers in SCNCs, which also enhanced functional recovery in rats as measured by the Basso-Beattie-Bresnahan score and inclined plate test.
Conclusion
STM2457 alleviated SCI by suppressing METTL3-mediated m6A modification of miR-30c, which in turn induces ATG5-mediated autophagy. This study provides insights into the role of m6A modification in SCI and suggests a potential therapeutic approach through targeting METTL3.

Citations

Citations to this article as recorded by  Crossref logo
  • Multimodal electroconductive PLGA-based scaffold orchestrates neuroprotection and regeneration following severe spinal cord injury
    So-Yeon Park, Gyubin Kim, Yanting Liu, Ji-Won Jung, Jeoung Eun Lee, Jun-Kyu Lee, Dong-Hee Kim, Juwon Youn, Seung-Woon Baek, Dong Ryul Lee, Dong-Youn Hwang, Tae-Keun Ahn, Da-Seul Kim, Inbo Han, Dong Keun Han
    Journal of Nanobiotechnology.2026;[Epub]     CrossRef
  • YTHDF2 promotes arsenic carcinogenesis through m6A-dependent SMAD7 decay and PRR5 escape from decay
    Qian Zhang, Jin Man, Jingsilin Cai, Tianhe Zhao, Zunzhen Zhang
    International Journal of Biological Macromolecules.2026; 348: 150816.     CrossRef
  • NanoScript-Enabled Nonviral Transient Repression of Phosphatase and Tensin Homolog for Axonal Regeneration and Central Nervous System Injury Repair
    Brandon Conklin, Yanting Liu, Sarah Nevins, Byeong-Gwan Song, Sy-Tsong Dean Chueng, Qiu Xiaowen, Sungyun Kim, Heyin Cheung, Seong Bae An, JongMin Lee, Bong Geun Chung, Wise Young, Dongming Sun, Hiroshi Sugiyama, Inbo Han, Ki-Bum Lee
    ACS Nano.2026; 20(8): 6582.     CrossRef
  • Extracellular Vesicle-Based Biomarkers in Spinal Cord Injury: A State-of-the-Art Review on Diagnostic and Prognostic Advances
    Trung Nhan Vo, Hae Eun Shin, Yeji Kim, Inbo Han
    International Journal of Molecular Sciences.2026; 27(4): 2079.     CrossRef
  • 3D bioprinted multifunctional GelMA/TMP scaffold integrated with neural stem cell-derived extracellular vesicles and neural progenitor cells for spinal cord injury repair
    Yanting Liu, Gyubin Kim, Jun Yong Kim, Jeong Min Park, Duck Hyun Song, Jun-Kyu Lee, So-Yeon Park, Inbo Han, Dong Keun Han
    Journal of Tissue Engineering.2026;[Epub]     CrossRef
  • Comprehensive analysis of m6A RNA methylation regulators and the immune microenvironment in spinal cord injury
    Xiaoqin Liu, Jiating Hu, Guodong Shi, Wenxia Zhu, Qiao Hao
    Frontiers in Neurology.2026;[Epub]     CrossRef
  • Injectable Poloxamer and Hyaluronic Acid Hydrogel for Sustained Co-Delivery of Dexamethasone and Lidocaine Ameliorates Neuropathic Pain
    Yanting Liu, Seungwoon Baik, Trung Nhan Vo, Songzi Zhang, Boram Kim, Tae-Keun Ahn, Inbo Han, Dong Keun Han
    Biomaterials Research.2026;[Epub]     CrossRef
  • Pharmacological METTL3 inhibition attenuates HIV-1 latency reversal in CD4 + T cells
    Tarun Mishra, Avary Edwards, Li Wu, Zhaohui Qian
    Antimicrobial Agents and Chemotherapy.2026;[Epub]     CrossRef
  • Machine learning-assisted prediction of PANoptosis-related molecular targets and precise screening of neuroprotective drugs for spinal cord injury
    Dongmei Wang, Rui Wang, Huangmei Liao, Feiyang Lu, Zepeng Guo, Ruijun Xu, Aini Chen, Zhen Niu, Yusen Ou, Ge Li
    Experimental Neurology.2026; 404: 115884.     CrossRef
  • Roles of METTL3 and NLRP3 in pyroptosis and prospects in SCIRI
    Xiaoqing Guan, Fengyi Zhang, Ning Zhang, Guangchun Li, Fei Yin
    Frontiers in Immunology.2025;[Epub]     CrossRef
  • Phenserine Mitigates Neuroinflammation, Apoptosis, and Behavioural Deficits to Enhance Motor Function and Recovery in a Mouse Model of Spinal Cord Injury
    Lahanya Guha, Divya Goyal, Nidhi Singh, Mamidi Teena, Inbo Han, Hemant Kumar
    Molecular Neurobiology.2025; 62(10): 13763.     CrossRef
  • m6A-RNA epitranscriptomes regulate splicing and neuronal development in the Pacific oyster Crassostrea gigas
    Natacha Clairet, Hélène Auger, Roberto-Carlos Arredondo-Espinoza, Hugo Koechlin, Benoît Bernay, Lukas Manoury, Didier Goux, Guillaume Rivière
    Genomics.2025; 117(6): 111142.     CrossRef
  • METTL3 improves spinal cord injury-associated locomotor function via SIRT1 m6A modification and regulation of neuronal ferroptosis
    Ying Chen, Kaibin Zeng, Gongzhou Chen, Ruiqi Yang, Lian Wu, Shaolin Li, Bin Hu
    Neurological Research.2025; : 1.     CrossRef
  • Potential Pharmacologic Treatments in Spinal Cord Injury: A Narrative Review
    Kyeong Deuk An, Chan Yang Noh, Junsoo Jang, Woon Tak Yuh, Il Choi
    Korean Journal of Neurotrauma.2025; 21(4): 237.     CrossRef
  • 6,268 View
  • 97 Download
  • 14 Web of Science
  • 14 Crossref

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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
Close
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
  • 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
  • 6,851 View
  • 186 Download
  • 6 Web of Science
  • 8 Crossref

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METTL3 Affects Spinal Cord Neuronal Apoptosis by Regulating Bcl-2 m6A Modifications After Spinal Cord Injury
Neurospine. 2023;20(2):623-636.   Published online June 30, 2023
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METTL3 Affects Spinal Cord Neuronal Apoptosis by Regulating Bcl-2 m6A Modifications After Spinal Cord Injury
Neurospine. 2023;20(2):623-636.   Published online June 30, 2023
Close
Objective
Spinal cord injury (SCI) is a severe type of neurological trauma. N6-methyladenosine (m6A) modification is one of the most common internal modifications of RNA. The role of METTL3, the predominant methylation enzyme of m6A modification, in SCI remains unclear. This study aimed to investigate the role of methyltransferase METTL3 in SCI.
Methods
After establishing the oxygen-glucose deprivation (OGD) model of PC12 cells and rat spinal cord hemisection model, we found that the expression of METTL3 and the overall m6A modification level were significantly increased in neurons. The m6A modification was identified on B-cell lymphoma 2 (Bcl-2) messenger RNA (mRNA) by bioinformatics analysis, and m6A-RNA immunoprecipitation and RNA immunoprecipitation. In addition, METTL3 was blocked by the specific inhibitor STM2457 and gene knockdown, and then apoptosis levels were measured.
Results
In different models, we found that the expression of METTL3 and the overall m6A modification level were significantly increased in neurons. After inducing OGD, inhibition of METTL3 activity or expression increased the mRNA and protein levels of Bcl-2, inhibited neuronal apoptosis, and improved neuronal viability in the spinal cord.
Conclusion
Inhibition of METTL3 activity or expression can inhibit the apoptosis of spinal cord neurons after SCI through the m6A/Bcl-2 signaling pathway.

Citations

Citations to this article as recorded by  Crossref logo
  • Interaction between N6-methyladenosine (m6A) modification and toxicant-related neurodegeneration: From neural development to pathophysiology
    Zhou She, Peng Huang, Senlin Luo, Lu Zhang, Hong Peng, Yufen Tang, Yuqiong Chen, Jinwen Luo, Wangxin Duan, Lingjuan Liu, Liqun Liu
    Genes & Diseases.2026; 13(5): 101984.     CrossRef
  • M5C-methylated EDIL3 attenuates spinal cord ischemia-reperfusion injury by suppressing neutrophil extracellular trap formation
    Yunpeng Zhu, Lingjiang Li, Yunshan Guo, Renji Wang, Yiguang Hao, Xin He
    Free Radical Biology and Medicine.2026; 242: 375.     CrossRef
  • 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
  • Methyltransferase-like protein 16 suppresses spinal cord injury by regulating microglia polarization via N6-methyladenosine-modified downregulation of MCEMP1
    Lei Zhang, Haijun Chang, Guangming Jiang, Chao Zhu, Shan Zhou, Yanling Wang, Hui Chang
    Journal of Neuropathology & Experimental Neurology.2026; 85(5): 487.     CrossRef
  • Integrative bulk and single-cell transcriptome analyses reveal RNA modification–related biomarkers of spinal cord injury
    Shixue Huang, Kun Jiao, Keqing Li, Jiayan Yuan, Haoming Shu, Yinuo Zhang, Xin Zhou, Xuhui Zhou
    Neural Regeneration Research.2026; 21(7): 3249.     CrossRef
  • m6A epitranscriptomic remodeling links redox stress to mitochondrial quality control and programmed cell death in sepsis-induced myocardial dysfunction
    Meilian Chen, Binlan Fu, Qiaomin Wu
    Redox Biology.2026; 93: 104178.     CrossRef
  • Actl6a regulates autophagy via Sox2-dependent Atg5 and Atg7 expression to inhibit apoptosis in spinal cord injury
    Jian Hao, Yubiao Yang, Li Xie, Zhenhan Li, Boyuan Ma, Bitao Wang, Jinyu Chen, Zhi Zeng, Xianhu Zhou
    Journal of Advanced Research.2025; 77: 281.     CrossRef
  • Molecular mechanism of METTL3 regulating hippocampal neuronal injury induced by sepsis-associated encephalopathy
    Qian Zhang, Yan Huo, Runying Zhu, Xujie Zhang, Lingwei Zeng, Zhenjie Hu
    Archives of Physiology and Biochemistry.2025; 131(4): 582.     CrossRef
  • Phenserine Mitigates Neuroinflammation, Apoptosis, and Behavioural Deficits to Enhance Motor Function and Recovery in a Mouse Model of Spinal Cord Injury
    Lahanya Guha, Divya Goyal, Nidhi Singh, Mamidi Teena, Inbo Han, Hemant Kumar
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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
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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

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  • 7,369 View
  • 203 Download
  • 10 Web of Science
  • 9 Crossref