Spinal cord injury: molecular mechanisms and therapeutic interventions

被引:220
作者
Hu, Xiao [1 ,2 ,3 ]
Xu, Wei [1 ,2 ,3 ]
Ren, Yilong [1 ,2 ,3 ]
Wang, Zhaojie [1 ,2 ,3 ]
He, Xiaolie [1 ,2 ,3 ]
Huang, Runzhi [1 ,2 ,3 ]
Ma, Bei [1 ,2 ,3 ]
Zhao, Jingwei [1 ,2 ,3 ]
Zhu, Rongrong [1 ,2 ,3 ]
Cheng, Liming [1 ,2 ,3 ]
机构
[1] Tongji Univ, Tongji Hosp, Dept Orthopaed, Div Spine,Sch Med, Shanghai 200065, Peoples R China
[2] Tongji Univ, Key Lab Spine & Spinal Cord Injury Repair & Regene, Minist Educ, Shanghai 200065, Peoples R China
[3] Tongji Univ, Clin Ctr Brain & Spinal Cord Res, Shanghai 200065, Peoples R China
基金
中国国家自然科学基金;
关键词
MESENCHYMAL STEM-CELLS; TRANSCRANIAL MAGNETIC STIMULATION; MOTOR FUNCTION RECOVERY; CENTRAL-NERVOUS-SYSTEM; FUNCTIONAL RECOVERY; REACTIVE ASTROCYTES; ELECTRICAL-STIMULATION; SCAR FORMATION; PHASE-I; NEURONAL DIFFERENTIATION;
D O I
10.1038/s41392-023-01477-6
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Spinal cord injury (SCI) remains a severe condition with an extremely high disability rate. The challenges of SCI repair include its complex pathological mechanisms and the difficulties of neural regeneration in the central nervous system. In the past few decades, researchers have attempted to completely elucidate the pathological mechanism of SCI and identify effective strategies to promote axon regeneration and neural circuit remodeling, but the results have not been ideal. Recently, new pathological mechanisms of SCI, especially the interactions between immune and neural cell responses, have been revealed by single-cell sequencing and spatial transcriptome analysis. With the development of bioactive materials and stem cells, more attention has been focused on forming intermediate neural networks to promote neural regeneration and neural circuit reconstruction than on promoting axonal regeneration in the corticospinal tract. Furthermore, technologies to control physical parameters such as electricity, magnetism and ultrasound have been constantly innovated and applied in neural cell fate regulation. Among these advanced novel strategies and technologies, stem cell therapy, biomaterial transplantation, and electromagnetic stimulation have entered into the stage of clinical trials, and some of them have already been applied in clinical treatment. In this review, we outline the overall epidemiology and pathophysiology of SCI, expound on the latest research progress related to neural regeneration and circuit reconstruction in detail, and propose future directions for SCI repair and clinical applications.
引用
收藏
页数:28
相关论文
共 515 条
  • [31] Tissue sparing, behavioral recovery, supraspinal axonal sparing/regeneration following sub-acute glial transplantation in a model of spinal cord contusion
    Barbour, Helen R.
    Plant, Christine D.
    Harvey, Alan R.
    Plant, Giles W.
    [J]. BMC NEUROSCIENCE, 2013, 14
  • [32] Origin of New Glial Cells in Intact and Injured Adult Spinal Cord
    Barnabe-Heider, Fanie
    Goritz, Christian
    Sabelstrom, Hanna
    Takebayashi, Hirohide
    Pfrieger, Frank W.
    Meletis, Konstantinos
    Frisen, Jonas
    [J]. CELL STEM CELL, 2010, 7 (04) : 470 - 482
  • [33] Time course of functional changes in locomotor and sensory systems after spinal cord lesions in lamprey
    Becker, Matthew
    Parker, David
    [J]. JOURNAL OF NEUROPHYSIOLOGY, 2019, 121 (06) : 2323 - 2335
  • [34] Dynamics of biomarkers across the stages of traumatic spinal cord injury - implications for neural plasticity and repair
    Begenisic, Tatjana
    Pavese, Chiara
    Aiachini, Beatrice
    Nardone, Antonio
    Rossi, Daniela
    [J]. RESTORATIVE NEUROLOGY AND NEUROSCIENCE, 2021, 39 (05) : 339 - 366
  • [35] Microglia are an essential component of the neuroprotective scar that forms after spinal cord injury
    Bellver-Landete, Victor
    Bretheau, Floriane
    Mailhot, Benoit
    Vallieres, Nicolas
    Lessard, Martine
    Janelle, Marie-Eve
    Vernoux, Nathalie
    Tremblay, Marie-Eve
    Fuehrmann, Tobias
    Shoichet, Molly S.
    Lacroix, Steve
    [J]. NATURE COMMUNICATIONS, 2019, 10 (1)
  • [36] New tools for studying microglia in the mouse and human CNS
    Bennett, Mariko L.
    Bennett, F. Chris
    Liddelow, Shane A.
    Ajami, Bahareh
    Zamanian, Jennifer L.
    Fernhoff, Nathaniel B.
    Mulinyawe, Sara B.
    Bohlen, Christopher J.
    Adil, Aykezar
    Tucker, Andrew
    Weissman, Irving L.
    Chang, Edward F.
    Li, Gordon
    Grant, Gerald A.
    Gephart, Melanie G. Hayden
    Barres, Ben A.
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2016, 113 (12) : E1738 - E1746
  • [37] Neurotransmitter phenotype switching by spinal excitatory interneurons regulates locomotor recovery after spinal cord injury
    Bertels, Hannah
    Vicente-Ortiz, Guillem
    El Kanbi, Khadija
    Takeoka, Aya
    [J]. NATURE NEUROSCIENCE, 2022, 25 (05) : 617 - +
  • [38] Effect of Low Intensity Magnetic Field Stimulation on Calcium-Mediated Cytotoxicity After Mild Spinal Cord Contusion Injury in Rats
    Bhattacharyya, Supti
    Sahu, Shivani
    Kaur, Sajeev
    Jain, Suman
    [J]. ANNALS OF NEUROSCIENCES, 2020, 27 (02) : 49 - 56
  • [39] Time-Course Changes of Extracellular Matrix Encoding Genes Expression Level in the Spinal Cord Following Contusion Injury-A Data-Driven Approach
    Bighinati, Andrea
    Khalajzeyqami, Zahra
    Baldassarro, Vito Antonio
    Lorenzini, Luca
    Cescatti, Maura
    Moretti, Marzia
    Giardino, Luciana
    Calza, Laura
    [J]. INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2021, 22 (04) : 1 - 20
  • [40] Autophagy Inhibition Favors Survival of Rubrospinal Neurons After Spinal Cord Hemisection
    Bisicchia, Elisa
    Latini, Laura
    Cavallucci, Virve
    Sasso, Valeria
    Nicolin, Vanessa
    Molinari, Marco
    D'Amelio, Marcello
    Viscomi, Maria Teresa
    [J]. MOLECULAR NEUROBIOLOGY, 2017, 54 (07) : 4896 - 4907