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1.
PLoS One ; 19(5): e0303235, 2024.
Article in English | MEDLINE | ID: mdl-38728287

ABSTRACT

Excitotoxicity represents the primary cause of neuronal death following spinal cord injury (SCI). While autophagy plays a critical and intricate role in SCI, the specific mechanism underlying the relationship between excitotoxicity and autophagy in SCI has been largely overlooked. In this study, we isolated primary spinal cord neurons from neonatal rats and induced excitotoxic neuronal injury by high concentrations of glutamic acid, mimicking an excitotoxic injury model. Subsequently, we performed transcriptome sequencing. Leveraging machine learning algorithms, including weighted correlation network analysis (WGCNA), random forest analysis (RF), and least absolute shrinkage and selection operator analysis (LASSO), we conducted a comprehensive investigation into key genes associated with spinal cord neuron injury. We also utilized protein-protein interaction network (PPI) analysis to identify pivotal proteins regulating key gene expression and analyzed key genes from public datasets (GSE2599, GSE20907, GSE45006, and GSE174549). Our findings revealed that six genes-Anxa2, S100a10, Ccng1, Timp1, Hspb1, and Lgals3-were significantly upregulated not only in vitro in neurons subjected to excitotoxic injury but also in rats with subacute SCI. Furthermore, Hspb1 and Lgals3 were closely linked to neuronal autophagy induced by excitotoxicity. Our findings contribute to a better understanding of excitotoxicity and autophagy, offering potential targets and a theoretical foundation for SCI diagnosis and treatment.


Subject(s)
Autophagy , Galectin 3 , Machine Learning , Neurons , Animals , Neurons/metabolism , Rats , Galectin 3/metabolism , Galectin 3/genetics , Rats, Sprague-Dawley , Molecular Chaperones/genetics , Molecular Chaperones/metabolism , Spinal Cord/metabolism , Spinal Cord/pathology , Spinal Cord Injuries/metabolism , Spinal Cord Injuries/pathology , Spinal Cord Injuries/genetics , Protein Interaction Maps , Glutamic Acid/metabolism , Heat-Shock Proteins/metabolism , Heat-Shock Proteins/genetics
2.
Drug Des Devel Ther ; 18: 1399-1414, 2024.
Article in English | MEDLINE | ID: mdl-38707612

ABSTRACT

Hydrogen, which is a novel biomedical molecule, is currently the subject of extensive research involving animal experiments and in vitro cell experiments, and it is gradually being applied in clinical settings. Hydrogen has been proven to possess anti-inflammatory, selective antioxidant, and antiapoptotic effects, thus exhibiting considerable protective effects in various diseases. In recent years, several studies have provided preliminary evidence for the protective effects of hydrogen on spinal cord injury (SCI). This paper provides a comprehensive review of the potential molecular biology mechanisms of hydrogen therapy and its application in treating SCI, with an aim to better explore the medical value of hydrogen and provide new avenues for the adjuvant treatment of SCI.


Subject(s)
Hydrogen , Spinal Cord Injuries , Spinal Cord Injuries/drug therapy , Spinal Cord Injuries/metabolism , Hydrogen/pharmacology , Hydrogen/chemistry , Humans , Animals , Antioxidants/pharmacology , Antioxidants/chemistry , Neuroprotective Agents/pharmacology , Neuroprotective Agents/chemistry , Apoptosis/drug effects , Anti-Inflammatory Agents/pharmacology , Anti-Inflammatory Agents/chemistry
3.
Pain ; 165(6): 1336-1347, 2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38739766

ABSTRACT

ABSTRACT: Evidence from previous studies supports the concept that spinal cord injury (SCI)-induced neuropathic pain (NP) has its neural roots in the peripheral nervous system. There is uncertainty about how and to which degree mechanoreceptors contribute. Sensorimotor activation-based interventions (eg, treadmill training) have been shown to reduce NP after experimental SCI, suggesting transmission of pain-alleviating signals through mechanoreceptors. The aim of the present study was to understand the contribution of mechanoreceptors with respect to mechanical allodynia in a moderate mouse contusion SCI model. After genetic ablation of tropomyosin receptor kinase B expressing mechanoreceptors before SCI, mechanical allodynia was reduced. The identical genetic ablation after SCI did not yield any change in pain behavior. Peptidergic nociceptor sprouting into lamina III/IV below injury level as a consequence of SCI was not altered by either mechanoreceptor ablation. However, skin-nerve preparations of contusion SCI mice 7 days after injury yielded hyperexcitability in nociceptors, not in mechanoreceptors, which makes a substantial direct contribution of mechanoreceptors to NP maintenance unlikely. Complementing animal data, quantitative sensory testing in human SCI subjects indicated reduced mechanical pain thresholds, whereas the mechanical detection threshold was not altered. Taken together, early mechanoreceptor ablation modulates pain behavior, most likely through indirect mechanisms. Hyperexcitable nociceptors seem to be the main drivers of SCI-induced NP. Future studies need to focus on injury-derived factors triggering early-onset nociceptor hyperexcitability, which could serve as targets for more effective therapeutic interventions.


Subject(s)
Disease Models, Animal , Hyperalgesia , Mechanoreceptors , Mice, Inbred C57BL , Spinal Cord Injuries , Animals , Spinal Cord Injuries/complications , Spinal Cord Injuries/metabolism , Spinal Cord Injuries/physiopathology , Mice , Hyperalgesia/physiopathology , Hyperalgesia/etiology , Hyperalgesia/metabolism , Mechanoreceptors/metabolism , Mechanoreceptors/physiology , Male , Humans , Pain Threshold/physiology , Female , Pain Measurement , Mice, Transgenic , Neuralgia/etiology , Neuralgia/metabolism , Neuralgia/physiopathology
4.
Nan Fang Yi Ke Da Xue Xue Bao ; 44(4): 636-643, 2024 Apr 20.
Article in Chinese | MEDLINE | ID: mdl-38708495

ABSTRACT

OBJECTIVE: To investigate the effect of Jisuikang formula-medicated serum for promoting spinal cord injury (SCI) repair in rats and explore the possible mechanism. METHODS: Thirty adult SD rats were randomized into sham-operated group, SCI (induced using a modified Allen method) model group, and Jisuikang formula-medicated serum treatment group. After the operations, the rats were treated with normal saline or Jisuikang by gavage on a daily basis for 14 days, and the changes in hindlimb motor function of the rats was assessed with Basso-Beattie-Bresnahan (BBB) scores and inclined-plate test. The injured spinal cord tissues were sampled from the SCI rat models for single-cell RNA sequencing, and bioinformatics analysis was performed to identify the target genes of Jisuikang, spinal cord injury and glycolysis. In the cell experiment, cultured astrocytes from neonatal SD rat cortex were treated with SOX2 alone or in combination with Jisuikang-medicated serum for 21 days, and the protein expressions of PKM2, p-PKM2 and YAP and colocalization of PKM2 and YAP in the cells were analyzed with Western blotting and immunofluorescence staining, respectively. RESULTS: The SCI rats with Jisuikang treatment showed significantly improved BBB scores and performance in inclined-plate test. At the injury site, high PKM2 expression was detected in various cell types. Bioinformatic analysis identified the HIPPO-YAP signaling pathway as the target pathway of Jisuikang. In cultured astrocytes, SOX2 combined with the mediated serum, as compared with SOX2 alone, significantly increased PKM2, p-PKM2 and YAP expressions and entry of phosphorylated PKM2 into the nucleus, and promoted PKM2 and YAP co-localization in the cells. CONCLUSION: Jisuikang formula accelerates SCI repair in rats possibly by promoting aerobic glycolysis of the astrocytes via activating the PKM2/YAP axis to induce reprogramming of the astrocytes into neurons.


Subject(s)
Astrocytes , Pyruvate Kinase , Rats, Sprague-Dawley , Signal Transduction , Spinal Cord Injuries , YAP-Signaling Proteins , Animals , Spinal Cord Injuries/metabolism , Spinal Cord Injuries/drug therapy , Rats , Astrocytes/metabolism , Astrocytes/drug effects , Signal Transduction/drug effects , Thyroid Hormone-Binding Proteins , Thyroid Hormones/metabolism , Carrier Proteins/metabolism , Drugs, Chinese Herbal/pharmacology , Disease Models, Animal , Membrane Proteins/metabolism
5.
Eur J Pharmacol ; 973: 176566, 2024 Jun 15.
Article in English | MEDLINE | ID: mdl-38636801

ABSTRACT

Wogonoside (WG) is a natural flavonoid extracted from Scutellariae Radix, recognized for its established anti-inflammatory properties. However, the role of WG in the context of neuroinflammation after spinal cord injury (SCI) remains inadequately elucidated. This study employed in silico, in vitro, and in vivo methodologies to investigate the impact of WG on microglia-mediated neuroinflammation after SCI. In the in silico experiment, we identified 15 potential target genes of WG associated with SCI. These genes were linked to the regulation of inflammatory response and immune defense. Molecular docking maps revealed toll-like receptor 4 as a molecular target for WG, demonstrating binding through a hydrogen bond (Lys263, Ser120). In lipopolysaccharide-stimulated BV2 cells and SCI mice, WG significantly attenuated microglial activation and facilitated a phenotype shift from M1 to M2. This was evidenced by the reversal of the increased expressions of Iba1, GFAP, and iNOS, as well as the decreased expression of Arg1. WG also suppressed the production of pro-inflammatory mediators (NO, TNF-α, IL-6, IL-1α, IL-1ß, C1q). WG exerted these effects by suppressing the TLR4/MyD88/NF-κB signaling axis in microglia. Furthermore, by reducing levels of TNF-α, IL-1α, and C1q in supernatant of LPS-induced microglia, WG indirectly induced astrocytes change to A2 phenotype, evidenced by transcriptome sequencing result of primary mouse astrocytes. All these events above collectively created a favorable microenvironment, contributing to a significant alleviation of weight loss and neuronal damage at the lesion site of SCI mice. Our findings substantiate the efficacy of WG in mitigating neuroinflammation after SCI, thereby warranting further exploration.


Subject(s)
Flavanones , Glucosides , Microglia , Myeloid Differentiation Factor 88 , NF-kappa B , Neuroinflammatory Diseases , Signal Transduction , Spinal Cord Injuries , Toll-Like Receptor 4 , Animals , Spinal Cord Injuries/drug therapy , Spinal Cord Injuries/metabolism , Spinal Cord Injuries/pathology , Microglia/drug effects , Microglia/metabolism , Microglia/pathology , Toll-Like Receptor 4/metabolism , NF-kappa B/metabolism , Signal Transduction/drug effects , Myeloid Differentiation Factor 88/metabolism , Mice , Neuroinflammatory Diseases/drug therapy , Neuroinflammatory Diseases/metabolism , Glucosides/pharmacology , Glucosides/therapeutic use , Flavanones/pharmacology , Flavanones/therapeutic use , Male , Mice, Inbred C57BL , Cell Line , Lipopolysaccharides/pharmacology , Molecular Docking Simulation , Anti-Inflammatory Agents/pharmacology , Anti-Inflammatory Agents/therapeutic use , Inflammation Mediators/metabolism , Neuroprotective Agents/pharmacology , Neuroprotective Agents/therapeutic use
6.
Clin Transl Med ; 14(4): e1661, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38644791

ABSTRACT

BACKGROUND: Spinal cord injury (SCI)-induced neuroinflammation and oxidative stress (OS) are crucial events causing neurological dysfunction. Aconitate decarboxylase 1 (ACOD1) and its metabolite itaconate (Ita) inhibit inflammation and OS by promoting alkylation of Keap1 to induce Nrf2 expression; however, it is unclear whether there is another pathway regulating their effects in inflammation-activated microglia after SCI. METHODS: Adult male C57BL/6 ACOD1-/- mice and their wild-type (WT) littermates were subjected to a moderate thoracic spinal cord contusion. The degree of neuroinflammation and OS in the injured spinal cord were assessed using qPCR, western blot, flow cytometry, immunofluorescence, and trans-well assay. We then employed immunoprecipitation-western blot, chromatin immunoprecipitation (ChIP)-PCR, dual-luciferase assay, and immunofluorescence-confocal imaging to examine the molecular mechanisms of ACOD1. Finally, the locomotor function was evaluated with the Basso Mouse Scale and footprint assay. RESULTS: Both in vitro and in vivo, microglia with transcriptional blockage of ACOD1 exhibited more severe levels of neuroinflammation and OS, in which the expression of p62/Keap1/Nrf2 was down-regulated. Furthermore, silencing ACOD1 exacerbated neurological dysfunction in SCI mice. Administration of exogenous Ita or 4-octyl itaconate reduced p62 phosphorylation. Besides, ACOD1 was capable of interacting with phosphorylated p62 to enhance Nrf2 activation, which in turn further promoted transcription of ACOD1. CONCLUSIONS: Here, we identified an unreported ACOD1-p62-Nrf2-ACOD1 feedback loop exerting anti-inflammatory and anti-OS in inflammatory microglia, and demonstrated the neuroprotective role of ACOD1 after SCI, which was different from that of endogenous and exogenous Ita. The present study extends the functions of ACOD1 and uncovers marked property differences between endogenous and exogenous Ita. KEY POINTS: ACOD1 attenuated neuroinflammation and oxidative stress after spinal cord injury. ACOD1, not itaconate, interacted with p-p62 to facilitate Nrf2 expression and nuclear translocation. Nrf2 was capable of promoting ACOD1 transcription in microglia.


Subject(s)
Carboxy-Lyases , Hydro-Lyases , Microglia , NF-E2-Related Factor 2 , Spinal Cord Injuries , Succinates , Animals , Male , Mice , Carboxy-Lyases/metabolism , Carboxy-Lyases/genetics , Disease Models, Animal , Mice, Inbred C57BL , Microglia/metabolism , Microglia/drug effects , NF-E2-Related Factor 2/metabolism , Sequestosome-1 Protein/metabolism , Spinal Cord Injuries/drug therapy , Spinal Cord Injuries/metabolism , Spinal Cord Injuries/complications , Succinates/pharmacology , Succinates/metabolism
7.
Int J Biol Macromol ; 267(Pt 2): 131520, 2024 May.
Article in English | MEDLINE | ID: mdl-38615859

ABSTRACT

The adverse microenvironment, including neuroinflammation, hinders the recovery of spinal cord injury (SCI). Regulating microglial polarization to alleviate neuroinflammation at the injury site is an effective strategy for SCI recovery. MG53 protein exerts obvious repair ability on multiple tissues damage, but with short half-life. In this study, we composited an innovative MG53/GMs/HA-Dex neural scaffold using gelatin microspheres (GMs), hyaluronic acid (HA), and dextran (Dex) loaded with MG53 protein. This novel neural scaffold could respond to MMP-2/9 protein and stably release MG53 protein with good physicochemical properties and biocompatibility. In addition, it significantly improved the motor function of SCI mice, suppressed M1 polarization of microglia and neuroinflammation, and promoted neurogenesis and axon regeneration. Further mechanistic experiments demonstrated that MG53/GMs/HA-Dex hydrogel inhibited the JAK2/STAT3 signaling pathway. Thus, this MG53/GMs/HA-Dex neural scaffold promotes the functional recovery of SCI mice by alleviating neuroinflammation, which provides a new intervention strategy for the neural regeneration and functional repair of SCI.


Subject(s)
Gelatin , Hyaluronic Acid , Janus Kinase 2 , Neuroinflammatory Diseases , Recovery of Function , Spinal Cord Injuries , Spinal Cord Injuries/drug therapy , Spinal Cord Injuries/metabolism , Animals , Mice , Recovery of Function/drug effects , Hyaluronic Acid/chemistry , Hyaluronic Acid/pharmacology , Neuroinflammatory Diseases/drug therapy , Gelatin/chemistry , Gelatin/pharmacology , Janus Kinase 2/metabolism , Dextrans/chemistry , Tissue Scaffolds/chemistry , Microspheres , STAT3 Transcription Factor/metabolism , Microglia/drug effects , Microglia/metabolism , Nerve Regeneration/drug effects , Matrix Metalloproteinase 9/metabolism , Disease Models, Animal , Neurogenesis/drug effects , Signal Transduction/drug effects , Matrix Metalloproteinase 2/metabolism , Hydrogels/chemistry , Hydrogels/pharmacology
8.
Discov Med ; 36(183): 714-720, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38665020

ABSTRACT

BACKGROUND: Spinal cord injury (SCI) is usually caused by external direct or indirect factors, and with a high morbidity and mortality rate. The aim of this study was to observe the effects of Dexmedetomidine (DEX) combined with Esketamine (ESK) on pain behavior and potential analgesic mechanisms in rats with SCI. The goal was to provide a reliable multimodal analgesic medication regimen for SCI. METHODS: Thirty rats were divided into five groups with six rats in each group: Sham group, SCI group, DEX group, ESK group, and DEX+ESK group. The SCI model in rats was constructed, and the motor function of hind limbs of rats was measured using Basso Beattie Bresnahan (BBB) locomotor rating scale and inclined plate test. The levels of interleukin 18 (IL-18), interleukin 1ß (IL-1ß), and tumor necrosis factor-α (TNF-α) in the spinal cord were determined by enzyme-linked immunosorbent assay (ELISA). The expressions of substance P (SP), neurokinin-1 receptor (NK-1R), B cell lymphoma-2 (Bcl-2), and Bcl2-associated X protein (Bax) in the rats' spinal cord were measured by Western blot assay. The viability of spinal astrocytes was evaluated by 3-(4,5-Dimethylthiazol-2-yl)-2,5-diphenyltetrazolium bromide (MTT) assay. RESULTS: After 7 days, the BBB scores were significantly higher in the DEX, ESK, and DEX+ESK groups compared to the SCI group (p < 0.01). Additionally, the DEX+ESK group had significantly higher scores than both the DEX and ESK groups (p < 0.01). The maximum angle of the DEX (p < 0.05), ESK (p < 0.05), and DEX+ESK groups (p < 0.01) were higher than the SCI group, and the maximum angle of DEX+ESK group was higher than DEX and ESK groups (p < 0.05). The levels of IL-18, IL-1ß, and TNF-α in the DEX, ESK, and DEX+ESK groups were lower than the SCI group (p < 0.01), while the DEX+ESK group had significantly lower IL-18, IL-1ß, and TNF-α levels than the DEX and ESK groups (p < 0.01). The levels of SP (p < 0.01) and NK-1R (p < 0.05) were lower in the DEX, ESK, and DEX+ESK groups compared to the SCI group, and the levels of SP and NK-1R were lower in the DEX+ESK group compared to the DEX and ESK groups (p < 0.01). The DEX and ESK groups suppressed the activity of spinal astrocytes (p < 0.01), however, the DEX+ESK group had larger effects on spinal astrocytes than the ESK group (p < 0.05). CONCLUSIONS: Treatment using DEX combined with ESK improves the motor function, inhibits inflammation and astrocyte activity, and exerts analgesic effects on rats with SCI. These findings can serve as a reference for the selection of multi-modal analgesics.


Subject(s)
Dexmedetomidine , Ketamine , Rats, Sprague-Dawley , Spinal Cord Injuries , Animals , Dexmedetomidine/pharmacology , Dexmedetomidine/therapeutic use , Spinal Cord Injuries/drug therapy , Spinal Cord Injuries/pathology , Spinal Cord Injuries/metabolism , Rats , Ketamine/pharmacology , Ketamine/therapeutic use , Male , Analgesics/pharmacology , Analgesics/therapeutic use , Spinal Cord/drug effects , Spinal Cord/pathology , Spinal Cord/metabolism , Substance P/metabolism , Disease Models, Animal , Tumor Necrosis Factor-alpha/metabolism , Receptors, Neurokinin-1/metabolism , Interleukin-1beta/metabolism
9.
Mol Biol Rep ; 51(1): 570, 2024 Apr 24.
Article in English | MEDLINE | ID: mdl-38658405

ABSTRACT

INTRODUCTION: Spinal cord injury (SCI) leads to significant destruction of nerve tissue, causing the degeneration of axons and the formation of cystic cavities. This study aimed to examine the characteristics of human umbilical cord-derived mesenchymal stem cells (HUCMSCs) cultured in a serum-free conditioned medium (CM) and assess their effectiveness in a well-established hemitransection SCI model. MATERIALS AND METHODS: In this study, HUCMSCs cultured medium was collected and characterized by measuring IL-10 and identifying proteomics using mass spectroscopy. This collected serum-free CM was further used in the experiments to culture and characterize the HUMSCs. Later, neuronal cells derived from CM-enriched HUCMSC were tested sequentially using an injectable caffeic acid-bioconjugated gelatin (CBG), which was further transplanted in a hemitransection SCI model. In vitro, characterization of CM-enriched HUCMSCs and differentiated neuronal cells was performed using flow cytometry, immunofluorescence, electron microscopy, and post-transplant analysis using immunohistology analysis, qPCR, in vivo bioluminescence imaging, and behavioral analysis using an infrared actimeter. RESULTS: The cells that were cultured in the conditioned media produced a pro-inflammatory cytokine called IL-10. Upon examining the secretome of the conditioned media, the Kruppel-like family of KRAB and zinc-finger proteins (C2H2 and C4) were found to be activated. Transcriptome analysis also revealed an increased expression of ELK-1, HOXD8, OTX2, YY1, STAT1, ETV7, and PATZ1 in the conditioned media. Furthermore, the expression of Human Stem-101 confirmed proliferation during the first 3 weeks after transplantation, along with the migration of CBG-UCNSC cells within the transplanted area. The gene analysis showed increased expression of Nestin, NeuN, Calb-2, Msi1, and Msi2. The group that received CBG-UCNSC therapy showed a smooth recovery by the end of week 2, with most rats regaining their walking abilities similar to those before the spinal cord injury by week 5. CONCLUSIONS: In conclusion, the CBG-UCNSC method effectively preserved the integrity of the transplanted neuronal-like cells and improved locomotor function. Thus, CM-enriched cells can potentially reduce biosafety risks associated with animal content, making them a promising option for clinical applications in treating spinal cord injuries.


Subject(s)
Mesenchymal Stem Cell Transplantation , Mesenchymal Stem Cells , Spinal Cord Injuries , Transcriptome , Umbilical Cord , Spinal Cord Injuries/therapy , Spinal Cord Injuries/metabolism , Spinal Cord Injuries/genetics , Mesenchymal Stem Cells/metabolism , Culture Media, Conditioned/pharmacology , Umbilical Cord/cytology , Umbilical Cord/metabolism , Humans , Animals , Mesenchymal Stem Cell Transplantation/methods , Transcriptome/genetics , Rats , Secretome/metabolism , Cell Differentiation , Neurons/metabolism , Disease Models, Animal , Interleukin-10/genetics , Interleukin-10/metabolism , Cells, Cultured , Proteomics/methods
10.
Int J Mol Sci ; 25(8)2024 Apr 12.
Article in English | MEDLINE | ID: mdl-38673852

ABSTRACT

One of the challenges of the mature nervous system is to maintain the stability of neural networks while providing a degree of plasticity to generate experience-dependent modifications. This plasticity-stability dynamism is regulated by perineuronal nets (PNNs) and is crucial for the proper functioning of the system. Previously, we found a relation between spinal PNNs reduction and maladaptive plasticity after spinal cord injury (SCI), which was attenuated by maintaining PNNs with activity-dependent therapies. Moreover, transgenic mice lacking the cartilage link protein 1 (Crtl1 KO mice) showed aberrant spinal PNNs and increased spinal plasticity. Therefore, the aim of this study is to evaluate the role of link protein 1 in the activity-dependent modulation of spinal PNNs surrounding motoneurons and its impact on the maladaptive plasticity observed following SCI. We first studied the activity-dependent modulation of spinal PNNs using a voluntary wheel-running protocol. This training protocol increased spinal PNNs in WT mice but did not modify PNN components in Crtl1 KO mice, suggesting that link protein 1 mediates the activity-dependent modulation of PNNs. Secondly, a thoracic SCI was performed, and functional outcomes were evaluated for 35 days. Interestingly, hyperreflexia and hyperalgesia found at the end of the experiment in WT-injured mice were already present at basal levels in Crtl1 KO mice and remained unchanged after the injury. These findings demonstrated that link protein 1 plays a dual role in the correct formation and in activity-dependent modulation of PNNs, turning it into an essential element for the proper function of PNN in spinal circuits.


Subject(s)
Extracellular Matrix Proteins , Mice, Knockout , Spinal Cord Injuries , Spinal Cord , Animals , Spinal Cord/metabolism , Spinal Cord Injuries/metabolism , Mice , Extracellular Matrix Proteins/metabolism , Extracellular Matrix Proteins/genetics , Neuronal Plasticity , Motor Neurons/metabolism , Nerve Net/metabolism , Male , Proteoglycans/metabolism , Proteoglycans/genetics , Mice, Inbred C57BL
11.
Sci Rep ; 14(1): 9723, 2024 04 27.
Article in English | MEDLINE | ID: mdl-38678068

ABSTRACT

Secondary lung injury after SCI is a major cause of patient mortality, with apoptosis playing a key role. This study aimed to explore the impact of treadmill training and miR145-5p on the MAPK/Erk signaling pathway and apoptosis in rats with complete SCI. SD rats were used to establish T10 segmental complete SCI models and underwent treadmill training 3, 7, or 14 days postinjury. Various techniques including arterial blood gas analysis, lung wet/dry weight ratio, HE staining, immunofluorescence staining, immunohistochemical staining, qRT-PCR, and Western blotting were employed to assess alterations in lung function and the expression levels of crucial apoptosis-related factors. In order to elucidate the specific mechanism, the impact of miR145-5p on the MAPK/Erk pathway and its role in apoptosis in lung cells were confirmed through miR145-5p overexpression and knockdown experiments. Following spinal cord injury (SCI), an increase in apoptosis, activation of the MAPK/Erk pathway, and impairment of lung function were observed in SCI rats. Conversely, treadmill training resulted in a reduction in alveolar cell apoptosis, suppression of the MAPK/Erk pathway, and enhancement of lung function. The gene MAP3K3 was identified as a target of miR145-5p. The influence of miR145-5p on the MAPK/Erk pathway and its impact on apoptosis in alveolar cells were confirmed through the manipulation of miR145-5p expression levels. The upregulation of miR145-5p in spinal cord injury (SCI) rats led to a reduction in MAP3K3 protein expression within lung tissues, thereby inhibiting the MAPK/Erk signaling pathway and decreasing apoptosis. Contrarily, rats with miR145-5p knockdown undergoing treadmill training exhibited an increase in miR145-5p expression levels, resulting in the inhibition of MAP3K3 protein expression in lung tissues, suppression of the MAPK/Erk pathway, and mitigation of lung cell apoptosis. Ultimately, the findings suggest that treadmill training may attenuate apoptosis in lung cells post-spinal cord injury by modulating the MAP3K3 protein through miR145-5p to regulate the MAPK/Erk signaling pathway.


Subject(s)
Apoptosis , MAP Kinase Signaling System , MicroRNAs , Physical Conditioning, Animal , Rats, Sprague-Dawley , Spinal Cord Injuries , Animals , Spinal Cord Injuries/physiopathology , Spinal Cord Injuries/metabolism , Spinal Cord Injuries/therapy , Rats , MicroRNAs/genetics , MicroRNAs/metabolism , Male , Lung/metabolism , Lung/pathology , Lung/physiopathology , Alveolar Epithelial Cells/metabolism , Disease Models, Animal
12.
Cell Mol Biol (Noisy-le-grand) ; 70(3): 182-186, 2024 Mar 31.
Article in English | MEDLINE | ID: mdl-38650136

ABSTRACT

Microglia activation is an early mediator of neuroinflammation and a major contributor to spinal damage and motor dysfunction. This study was designed to investigate the role of small nucleolar RNA host gene 1 (SNHG1) on the apoptosis and inflammatory response of microglial cell BV-2 and its underlying molecular mechanism. The C5 lamina contusion-induced mouse model of spinal cord injury (SCI) was constructed. Mouse microglia BV2 was stimulated by lipopolysaccharide (LPS) to establish the in vitro model of SCI. The quantitative reverse transcription polymerase chain reaction method was used to quantify RNA expression levels. Enzyme-linked immunosorbent assays were used to quantify concentrations of inflammatory cytokines. Protein levels were assessed by western blotting, and apoptosis was assessed by flow cytometry. Dual luciferase reporter gene assay and RNA pull-down assay were conducted to investigate the binding relationships between molecules. Upregulation of SNHG1 and downregulation of miR-195-5p were observed in the spinal cords of SCI mouse model. LPS treatment led to elevation of SNHG1 expression in BV2 cells, as well as accelerated apoptosis and inflammation. Evident mitigation of LPS-induced BV2 cell damage was observed after SNHG1 knockdown. MiR-195-5p was identified as a target of SNHG1. Inhibition of miR-195-5p restored the impact of SNHG1 knockdown on cell damage of LPS-treated BV2 cells. Furthermore, miR-195-5p can target activating transcription factor-6 (ATF6). In summary, SNHG1 knockdown ameliorates LPS-induced microglial apoptosis and inflammatory response via the miR-195-5p/ATF6 axis, providing a novel direction for SCI treatment.


Subject(s)
Apoptosis , Inflammation , Lipopolysaccharides , MicroRNAs , Microglia , Spinal Cord Injuries , Animals , Microglia/metabolism , Microglia/drug effects , Microglia/pathology , Apoptosis/drug effects , Apoptosis/genetics , Mice , Inflammation/genetics , Inflammation/pathology , Inflammation/metabolism , MicroRNAs/genetics , MicroRNAs/metabolism , Spinal Cord Injuries/metabolism , Spinal Cord Injuries/genetics , Spinal Cord Injuries/pathology , RNA, Long Noncoding/genetics , RNA, Long Noncoding/metabolism , Gene Silencing , Mice, Inbred C57BL , Cell Line , Disease Models, Animal , Male
13.
Immun Inflamm Dis ; 12(4): e1256, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38652010

ABSTRACT

BACKGROUND: Spinal cord injury (SCI) is a traumatic neurological disorder with limited therapeutic options. Tumor protein p53-inducible nuclear protein 2 (TP53INP2) is involved in the occurrence and development of various diseases, and it may play a role during SCI via affecting inflammation and neuronal apoptosis. This study investigated the associated roles and mechanisms of TP53INP2 in SCI. METHODS: Mouse and lipopolysaccharide (LPS)-induced SCI BV-2 cell models were constructed to explore the role of TP53INP2 in SCI and the associated mechanisms. Histopathological evaluation of spinal cord tissue was detected by hematoxylin and eosin staining. The Basso, Beattie, and Bresnahan score was used to measure the motor function of the mice, while the spinal cord water content was used to assess spinal cord edema. The expression of TP53INP2 was measured using RT-qPCR. In addition, inflammatory factors in the spinal cord tissue of SCI mice and LPS-treated BV-2 cells were measured using enzyme-linked immunosorbent assay. Apoptosis and related protein expression levels were detected by flow cytometry and western blot analysis, respectively. RESULTS: TP53INP2 levels increased in SCI mice and LPS-treated BV-2 cells. The results of in vivo and in vitro experiments showed that TP53INP2 knockdown inhibited the inflammatory response and neuronal apoptosis in mouse spinal cord tissue or LPS-induced BV-2 cells. CONCLUSIONS: After spinal cord injury, TP53INP2 was upregulated, and TP53INP2 knockdown inhibited the inflammatory response and apoptosis.


Subject(s)
Apoptosis , Inflammation , Spinal Cord Injuries , Animals , Male , Mice , Cell Line , Disease Models, Animal , Gene Knockdown Techniques , Inflammation/pathology , Inflammation/metabolism , Inflammation/genetics , Inflammation/immunology , Lipopolysaccharides , Mice, Inbred C57BL , Spinal Cord/pathology , Spinal Cord/metabolism , Spinal Cord/immunology , Spinal Cord Injuries/metabolism , Spinal Cord Injuries/pathology , Spinal Cord Injuries/immunology , Spinal Cord Injuries/genetics
14.
J Orthop Surg Res ; 19(1): 230, 2024 Apr 08.
Article in English | MEDLINE | ID: mdl-38589918

ABSTRACT

BACKGROUND: Spinal cord injury (SCI) can result in structural and functional damage to the spinal cord, which may lead to loss of limb movement and sensation, loss of bowel and bladder control, and other complications. Previous studies have revealed the critical influence of trans-acting transcription factor 1 (SP1) in neurological pathologies, however, its role and mechanism in SCI have not been fully studied. METHODS: The study was performed using mouse microglia BV2 stimulated using lipopolysaccharide (LPS) and male adult mice subjected to spinal hitting. Western blotting was performed to detect protein expression of SP1, 5-hydroxytryptamine (serotonin) receptor 2B (HTR2B), BCL2-associated x protein (Bax), B-cell lymphoma-2 (Bcl-2), inducible nitric oxide synthase (iNOS), clusters of differentiation 86 (CD86), Arginase 1 (Arg-1) and clusters of differentiation 206 (CD206). Cell viability and apoptosis were analyzed by MTT assay and TUNEL assay. mRNA levels of tumor necrosis factor-α (TNF-α), interleukin-1ß (IL-1ß), interleukin-4 (IL-4) and tumor necrosis factor-ß (TNF-ß) were quantified by quantitative real-time polymerase chain reaction. The association of SP1 and HTR2B was identified by chromatin immunoprecipitation assay and dual-luciferase reporter assay. HE staining assay was performed to analyze the pathological conditions of spinal cord tissues. RESULTS: LPS treatment induced cell apoptosis and inhibited microglia polarization from M1 to M2 phenotype, accompanied by an increase of Bax protein expression and a decrease of Bcl-2 protein expression, however, these effects were relieved after SP1 silencing. Mechanism assays revealed that SP1 transcriptionally activated HTR2B in BV2 cells, and HTR2B knockdown rescued LPS-induced effects on BV2 cell apoptosis and microglial M1/M2 polarization. Moreover, SP1 absence inhibited BV2 cell apoptosis and promoted microglia polarization from M1 to M2 phenotype by decreasing HTR2B expression. SCI mouse model assay further showed that SP1 downregulation could attenuate spinal hitting-induced promoting effects on cell apoptosis of spinal cord tissues and microglial M1 polarization. CONCLUSION: SP1 transcriptionally activated HTR2B to aggravate traumatic SCI by shifting microglial M1/M2 polarization.


Subject(s)
Microglia , Spinal Cord Injuries , Mice , Male , Animals , Microglia/metabolism , Lipopolysaccharides/pharmacology , Spinal Cord Injuries/genetics , Spinal Cord Injuries/metabolism , Proto-Oncogene Proteins c-bcl-2/metabolism
15.
Clin Transl Med ; 14(4): e1650, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38649772

ABSTRACT

BACKGROUND: Although many molecules have been investigated as biomarkers for spinal cord injury (SCI) or ischemic stroke, none of them are specifically induced in central nervous system (CNS) neurons following injuries with low baseline expression. However, neuronal injury constitutes a major pathology associated with SCI or stroke and strongly correlates with neurological outcomes. Biomarkers characterized by low baseline expression and specific induction in neurons post-injury are likely to better correlate with injury severity and recovery, demonstrating higher sensitivity and specificity for CNS injuries compared to non-neuronal markers or pan-neuronal markers with constitutive expressions. METHODS: In animal studies, young adult wildtype and global Atf3 knockout mice underwent unilateral cervical 5 (C5) SCI or permanent distal middle cerebral artery occlusion (pMCAO). Gene expression was assessed using RNA-sequencing and qRT-PCR, while protein expression was detected through immunostaining. Serum ATF3 levels in animal models and clinical human samples were measured using commercially available enzyme-linked immune-sorbent assay (ELISA) kits. RESULTS: Activating transcription factor 3 (ATF3), a molecular marker for injured dorsal root ganglion sensory neurons in the peripheral nervous system, was not expressed in spinal cord or cortex of naïve mice but was induced specifically in neurons of the spinal cord or cortex within 1 day after SCI or ischemic stroke, respectively. Additionally, ATF3 protein levels in mouse blood significantly increased 1 day after SCI or ischemic stroke. Importantly, ATF3 protein levels in human serum were elevated in clinical patients within 24 hours after SCI or ischemic stroke. Moreover, Atf3 knockout mice, compared to the wildtype mice, exhibited worse neurological outcomes and larger damage regions after SCI or ischemic stroke, indicating that ATF3 has a neuroprotective function. CONCLUSIONS: ATF3 is an easily measurable, neuron-specific biomarker for clinical SCI and ischemic stroke, with neuroprotective properties. HIGHLIGHTS: ATF3 was induced specifically in neurons of the spinal cord or cortex within 1 day after SCI or ischemic stroke, respectively. Serum ATF3 protein levels are elevated in clinical patients within 24 hours after SCI or ischemic stroke. ATF3 exhibits neuroprotective properties, as evidenced by the worse neurological outcomes and larger damage regions observed in Atf3 knockout mice compared to wildtype mice following SCI or ischemic stroke.


Subject(s)
Activating Transcription Factor 3 , Biomarkers , Ischemic Stroke , Neurons , Spinal Cord Injuries , Animals , Female , Humans , Male , Mice , Activating Transcription Factor 3/metabolism , Activating Transcription Factor 3/genetics , Biomarkers/metabolism , Biomarkers/blood , Disease Models, Animal , Ischemic Stroke/metabolism , Ischemic Stroke/genetics , Ischemic Stroke/blood , Mice, Knockout , Neurons/metabolism , Spinal Cord Injuries/metabolism , Spinal Cord Injuries/genetics , Spinal Cord Injuries/complications
16.
Cell Stem Cell ; 31(5): 772-787.e11, 2024 May 02.
Article in English | MEDLINE | ID: mdl-38565140

ABSTRACT

Neonatal spinal cord tissues exhibit remarkable regenerative capabilities as compared to adult spinal cord tissues after injury, but the role of extracellular matrix (ECM) in this process has remained elusive. Here, we found that early developmental spinal cord had higher levels of ECM proteins associated with neural development and axon growth, but fewer inhibitory proteoglycans, compared to those of adult spinal cord. Decellularized spinal cord ECM from neonatal (DNSCM) and adult (DASCM) rabbits preserved these differences. DNSCM promoted proliferation, migration, and neuronal differentiation of neural progenitor cells (NPCs) and facilitated axonal outgrowth and regeneration of spinal cord organoids more effectively than DASCM. Pleiotrophin (PTN) and Tenascin (TNC) in DNSCM were identified as contributors to these abilities. Furthermore, DNSCM demonstrated superior performance as a delivery vehicle for NPCs and organoids in spinal cord injury (SCI) models. This suggests that ECM cues from early development stages might significantly contribute to the prominent regeneration ability in spinal cord.


Subject(s)
Carrier Proteins , Cytokines , Extracellular Matrix , Organoids , Spinal Cord Injuries , Spinal Cord , Animals , Organoids/metabolism , Organoids/cytology , Spinal Cord/metabolism , Extracellular Matrix/metabolism , Spinal Cord Injuries/therapy , Spinal Cord Injuries/pathology , Spinal Cord Injuries/metabolism , Rabbits , Cell Differentiation , Neural Stem Cells/metabolism , Neural Stem Cells/cytology , Tenascin/metabolism , Cell Proliferation , Animals, Newborn , Nerve Regeneration/physiology
17.
J Cell Mol Med ; 28(9): e18287, 2024 May.
Article in English | MEDLINE | ID: mdl-38685675

ABSTRACT

Single immobilization theory cannot fully account for the extensive bone loss observed after spinal cord injury (SCI). Bone marrow mesenchymal stem cells (BMSCs) are crucial in bone homeostasis because they possess self-renewal capabilities and various types of differentiation potential. This study aimed to explore the molecular mechanism of long non-coding RNA H19 in osteoporosis after SCI and provide new research directions for existing prevention strategies. We used small interfering RNA to knockdown H19 expression and regulated miR-29b-2p expression using miR-29b-3p mimetics and inhibitors. Western blotting, real-time fluorescence quantitative PCR, Alizarin red staining, alkaline phosphatase staining and double-luciferase reporter gene assays were used to assess gene expression, osteogenic ability and binding sites. lncRNA H19 was upregulated in BMSCs from the osteoporosis group, whereas miR-29b-3p was downregulated. We identified the binding sites between miR-29b-3p and lncRNAs H19 and DKK1. H19 knockdown promoted BMSCs' osteogenic differentiation, whereas miR-29b-3p inhibition attenuated this effect. We discovered potential binding sites for miR-29b-3p in lncRNAs H19 and DKK1. Our findings suggest that long non-coding RNA H19 mediates BMSCs' osteogenic differentiation in osteoporosis after SCI through the miR-29b-3p/DKK1 axis and by directly inhibiting the ß-catenin signalling pathway.


Subject(s)
Cell Differentiation , Intercellular Signaling Peptides and Proteins , Mesenchymal Stem Cells , MicroRNAs , Osteogenesis , Osteoporosis , RNA, Long Noncoding , RNA, Long Noncoding/genetics , RNA, Long Noncoding/metabolism , Mesenchymal Stem Cells/metabolism , Mesenchymal Stem Cells/cytology , MicroRNAs/genetics , MicroRNAs/metabolism , Osteogenesis/genetics , Cell Differentiation/genetics , Intercellular Signaling Peptides and Proteins/metabolism , Intercellular Signaling Peptides and Proteins/genetics , Animals , Osteoporosis/genetics , Osteoporosis/pathology , Osteoporosis/metabolism , Humans , Gene Expression Regulation , Male , Rats , Spinal Cord Injuries/genetics , Spinal Cord Injuries/metabolism , Spinal Cord Injuries/pathology
18.
Glia ; 72(7): 1259-1272, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38587137

ABSTRACT

After spinal cord injury (SCI), re-establishing cellular homeostasis is critical to optimize functional recovery. Central to that response is PERK signaling, which ultimately initiates a pro-apoptotic response if cellular homeostasis cannot be restored. Oligodendrocyte (OL) loss and white matter damage drive functional consequences and determine recovery potential after thoracic contusive SCI. We examined acute (<48 h post-SCI) and chronic (6 weeks post-SCI) effects of conditionally deleting Perk from OLs prior to SCI. While Perk transcript is expressed in many types of cells in the adult spinal cord, its levels are disproportionately high in OL lineage cells. Deletion of OL-Perk prior to SCI resulted in: (1) enhanced acute phosphorylation of eIF2α, a major PERK substrate and the critical mediator of the integrated stress response (ISR), (2) enhanced acute expression of the downstream ISR genes Atf4, Ddit3/Chop, and Tnfrsf10b/Dr5, (3) reduced acute OL lineage-specific Olig2 mRNA, but not neuronal or astrocytic mRNAs, (4) chronically decreased OL content in the spared white matter at the injury epicenter, (5) impaired hindlimb locomotor recovery, and (6) reduced chronic epicenter white matter sparing. Cultured primary OL precursor cells with reduced PERK expression and activated ER stress response showed: (1) unaffected phosphorylation of eIF2α, (2) enhanced ISR gene induction, and (3) increased cytotoxicity. Therefore, OL-Perk deficiency exacerbates ISR signaling and potentiates white matter damage after SCI. The latter effect is likely mediated by increased loss of Perk-/- OLs.


Subject(s)
Oligodendroglia , Recovery of Function , Spinal Cord Injuries , eIF-2 Kinase , Animals , Spinal Cord Injuries/metabolism , Spinal Cord Injuries/genetics , Spinal Cord Injuries/pathology , Oligodendroglia/metabolism , eIF-2 Kinase/metabolism , eIF-2 Kinase/genetics , Recovery of Function/physiology , Mice , Mice, Transgenic , Female , Disease Models, Animal , Mice, Inbred C57BL
19.
Cell Mol Life Sci ; 81(1): 137, 2024 Mar 13.
Article in English | MEDLINE | ID: mdl-38478109

ABSTRACT

Improving the function of the blood-spinal cord barrier (BSCB) benefits the functional recovery of mice following spinal cord injury (SCI). The death of endothelial cells and disruption of the BSCB at the injury site contribute to secondary damage, and the ubiquitin-proteasome system is involved in regulating protein function. However, little is known about the regulation of deubiquitinated enzymes in endothelial cells and their effect on BSCB function after SCI. We observed that Sox17 is predominantly localized in endothelial cells and is significantly upregulated after SCI and in LPS-treated brain microvascular endothelial cells. In vitro Sox17 knockdown attenuated endothelial cell proliferation, migration, and tube formation, while in vivo Sox17 knockdown inhibited endothelial regeneration and barrier recovery, leading to poor functional recovery after SCI. Conversely, in vivo overexpression of Sox17 promoted angiogenesis and functional recovery after injury. Additionally, immunoprecipitation-mass spectrometry revealed the interaction between the deubiquitinase UCHL1 and Sox17, which stabilized Sox17 and influenced angiogenesis and BSCB repair following injury. By generating UCHL1 conditional knockout mice and conducting rescue experiments, we further validated that the deubiquitinase UCHL1 promotes angiogenesis and restoration of BSCB function after injury by stabilizing Sox17. Collectively, our findings present a novel therapeutic target for treating SCI by revealing a potential mechanism for endothelial cell regeneration and BSCB repair after SCI.


Subject(s)
Endothelial Cells , Spinal Cord Injuries , Animals , Mice , Rats , Angiogenesis , Blood-Brain Barrier/metabolism , Deubiquitinating Enzymes/metabolism , Endothelial Cells/metabolism , HMGB Proteins/metabolism , HMGB Proteins/pharmacology , Rats, Sprague-Dawley , Recovery of Function/physiology , SOXF Transcription Factors/genetics , Spinal Cord/metabolism , Spinal Cord Injuries/metabolism , Ubiquitin Thiolesterase/genetics , Ubiquitin Thiolesterase/metabolism
20.
Sci Rep ; 14(1): 6553, 2024 03 19.
Article in English | MEDLINE | ID: mdl-38504116

ABSTRACT

Spinal cord injury (SCI) can cause a range of functional impairments, and patients with SCI have limited potential for functional recovery. Previous studies have demonstrated that autophagy plays a role in the pathological process of SCI, but the specific mechanism of autophagy in this context remains unclear. Therefore, we explored the role of autophagy in SCI by identifying key autophagy-related genes and pathways. This study utilized the GSE132242 expression profile dataset, which consists of four control samples and four SCI samples; autophagy-related genes were sourced from GeneCards. R software was used to screen differentially expressed genes (DEGs) in the GSE132242 dataset, which were then intersected with autophagy-related genes to identify autophagy-related DEGs in SCI. Subsequently, the expression levels of these genes were confirmed and analyzed with gene ontology (GO) and the Kyoto Encyclopedia of Genes and Genomes (KEGG). A protein-protein interaction (PPI) analysis was conducted to identify interaction genes, and the resulting network was visualized with Cytoscape. The MCODE plug-in was used to build gene cluster modules, and the cytoHubba plug-in was applied to screen for hub genes. Finally, the GSE5296 dataset was used to verify the reliability of the hub genes. We screened 129 autophagy-related DEGs, including 126 up-regulated and 3 down-regulated genes. GO and KEGG pathway enrichment analysis showed that these 129 genes were mainly involved in the process of cell apoptosis, angiogenesis, IL-1 production, and inflammatory reactions, the TNF signaling pathway and the p53 signaling pathway. PPI identified 10 hub genes, including CCL2, TGFB1, PTGS2, FN1, HGF, MYC, IGF1, CD44, CXCR4, and SERPINEL1. The GSE5296 dataset revealed that the control group exhibited lower expression levels than the SCI group, although only CD44 and TGFB1 showed significant differences. This study identified 129 autophagy-related genes that might play a role in SCI. CD44 and TGFB1 were identified as potentially important genes in the autophagy process after SCI. These findings provide new targets for future research and offer new perspectives on the pathogenesis of SCI.


Subject(s)
Gene Expression Profiling , Spinal Cord Injuries , Humans , Gene Expression Profiling/methods , Protein Interaction Maps/genetics , Reproducibility of Results , Spinal Cord Injuries/genetics , Spinal Cord Injuries/metabolism , Autophagy/genetics , Computational Biology/methods
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