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1.
BMC Med ; 22(1): 189, 2024 May 07.
Article En | MEDLINE | ID: mdl-38715017

BACKGROUND: Sleep loss is a common public health problem that causes hyperalgesia, especially that after surgery, which reduces the quality of life seriously. METHODS: The 48-h sleep restriction (SR) mouse model was created using restriction chambers. In vivo imaging, transmission electron microscopy (TEM), immunofluorescence staining and Western blot were performed to detect the status of the blood-spinal cord barrier (BSCB). Paw withdrawal mechanical threshold (PWMT) was measured to track mouse pain behavior. The role of infiltrating regulatory T cells (Tregs) and endothelial cells (ECs) in mouse glycolysis and BSCB damage were analyzed using flow cytometry, Western blot, CCK-8 assay, colorimetric method and lactate administration. RESULTS: The 48-h SR made mice in sleep disruption status and caused an acute damage to the BSCB, resulting in hyperalgesia and neuroinflammation in the spinal cord. In SR mice, the levels of glycolysis and glycolysis enzymes of ECs in the BSCB were found significantly decreased [CON group vs. SR group: CD31+Glut1+ cells: p < 0.001], which could cause dysfunction of ECs and this was confirmed in vitro. Increased numbers of infiltrating T cells [p < 0.0001] and Treg population [p < 0.05] were detected in the mouse spinal cord after 48-h SR. In the co-cultured system of ECs and Tregs in vitro, the competition of Tregs for glucose resulted in the glycolysis disorder of ECs [Glut1: p < 0.01, ENO1: p < 0.05, LDHα: p < 0.05; complete tubular structures formed: p < 0.0001; CCK8 assay: p < 0.001 on 24h, p < 0.0001 on 48h; glycolysis level: p < 0.0001]. An administration of sodium lactate partially rescued the function of ECs and relieved SR-induced hyperalgesia. Furthermore, the mTOR signaling pathway was excessively activated in ECs after SR in vivo and those under the inhibition of glycolysis or co-cultured with Tregs in vitro. CONCLUSIONS: Affected by glycolysis disorders of ECs due to glucose competition with infiltrating Tregs through regulating the mTOR signaling pathway, hyperalgesia induced by 48-h SR is attributed to neuroinflammation and damages to the barriers, which can be relieved by lactate supplementation.


Endothelial Cells , Glucose , Hyperalgesia , Sleep Deprivation , Spinal Cord , T-Lymphocytes, Regulatory , Animals , T-Lymphocytes, Regulatory/immunology , Mice , Glucose/metabolism , Endothelial Cells/metabolism , Spinal Cord/metabolism , Spinal Cord/pathology , Male , Sleep Deprivation/complications , Glycolysis/physiology , Disease Models, Animal , Mice, Inbred C57BL
2.
J Neuroinflammation ; 21(1): 117, 2024 May 07.
Article En | MEDLINE | ID: mdl-38715127

BACKGROUND: Despite the high prevalence of neuropathic pain, treating this neurological disease remains challenging, given the limited efficacy and numerous side effects associated with current therapies. The complexity in patient management is largely attributed to an incomplete understanding of the underlying pathological mechanisms. Central sensitization, that refers to the adaptation of the central nervous system to persistent inflammation and heightened excitatory transmission within pain pathways, stands as a significant contributor to persistent pain. Considering the role of the cystine/glutamate exchanger (also designated as system xc-) in modulating glutamate transmission and in supporting neuroinflammatory responses, we investigated the contribution of this exchanger in the development of neuropathic pain. METHODS: We examined the implication of system xc- by evaluating changes in the expression/activity of this exchanger in the dorsal spinal cord of mice after unilateral partial sciatic nerve ligation. In this surgical model of neuropathic pain, we also examined the consequence of the genetic suppression of system xc- (using mice lacking the system xc- specific subunit xCT) or its pharmacological manipulation (using the pharmacological inhibitor sulfasalazine) on the pain-associated behavioral responses. Finally, we assessed the glial activation and the inflammatory response in the spinal cord by measuring mRNA and protein levels of GFAP and selected M1 and M2 microglial markers. RESULTS: The sciatic nerve lesion was found to upregulate system xc- at the spinal level. The genetic deletion of xCT attenuated both the amplitude and the duration of the pain sensitization after nerve surgery, as evidenced by reduced responses to mechanical and thermal stimuli, and this was accompanied by reduced glial activation. Consistently, pharmacological inhibition of system xc- had an analgesic effect in lesioned mice. CONCLUSION: Together, these observations provide evidence for a role of system xc- in the biochemical processes underlying central sensitization. We propose that the reduced hypersensitivity observed in the transgenic mice lacking xCT or in sulfasalazine-treated mice is mediated by a reduced gliosis in the lumbar spinal cord and/or a shift in microglial M1/M2 polarization towards an anti-inflammatory phenotype in the absence of system xc-. These findings suggest that drugs targeting system xc- could contribute to prevent or reduce neuropathic pain.


Amino Acid Transport System y+ , Mice, Inbred C57BL , Neuralgia , Neuroinflammatory Diseases , Spinal Cord , Animals , Mice , Neuralgia/metabolism , Neuroinflammatory Diseases/metabolism , Male , Spinal Cord/metabolism , Spinal Cord/pathology , Amino Acid Transport System y+/metabolism , Amino Acid Transport System y+/genetics , Disease Models, Animal , Mice, Knockout , Sulfasalazine/pharmacology , Sulfasalazine/therapeutic use , Hyperalgesia/metabolism , Hyperalgesia/etiology , Mice, Transgenic
3.
Sci Adv ; 10(19): eadl1230, 2024 May 10.
Article En | MEDLINE | ID: mdl-38718109

The spinal cord is crucial for transmitting motor and sensory information between the brain and peripheral systems. Spinal cord injuries can lead to severe consequences, including paralysis and autonomic dysfunction. We introduce thin-film, flexible electronics for circumferential interfacing with the spinal cord. This method enables simultaneous recording and stimulation of dorsal, lateral, and ventral tracts with a single device. Our findings include successful motor and sensory signal capture and elicitation in anesthetized rats, a proof-of-concept closed-loop system for bridging complete spinal cord injuries, and device safety verification in freely moving rodents. Moreover, we demonstrate potential for human application through a cadaver model. This method sees a clear route to the clinic by using materials and surgical practices that mitigate risk during implantation and preserve cord integrity.


Spinal Cord Injuries , Spinal Cord , Animals , Spinal Cord/physiology , Rats , Spinal Cord Injuries/therapy , Spinal Cord Injuries/physiopathology , Humans , Electric Stimulation/methods , Electrodes, Implanted
4.
Curr Top Dev Biol ; 159: 168-231, 2024.
Article En | MEDLINE | ID: mdl-38729676

The development of the vertebrate spinal cord involves the formation of the neural tube and the generation of multiple distinct cell types. The process starts during gastrulation, combining axial elongation with specification of neural cells and the formation of the neuroepithelium. Tissue movements produce the neural tube which is then exposed to signals that provide patterning information to neural progenitors. The intracellular response to these signals, via a gene regulatory network, governs the spatial and temporal differentiation of progenitors into specific cell types, facilitating the assembly of functional neuronal circuits. The interplay between the gene regulatory network, cell movement, and tissue mechanics generates the conserved neural tube pattern observed across species. In this review we offer an overview of the molecular and cellular processes governing the formation and patterning of the neural tube, highlighting how the remarkable complexity and precision of vertebrate nervous system arises. We argue that a multidisciplinary and multiscale understanding of the neural tube development, paired with the study of species-specific strategies, will be crucial to tackle the open questions.


Body Patterning , Gene Expression Regulation, Developmental , Neural Tube , Signal Transduction , Neural Tube/embryology , Neural Tube/metabolism , Neural Tube/cytology , Animals , Body Patterning/genetics , Humans , Gene Regulatory Networks , Spinal Cord/embryology , Spinal Cord/cytology , Spinal Cord/metabolism , Cell Differentiation , Cell Movement
5.
Int J Nanomedicine ; 19: 4081-4101, 2024.
Article En | MEDLINE | ID: mdl-38736654

Purpose: Spinal cord injury (SCI) is an incurable and disabling event that is accompanied by complex inflammation-related pathological processes, such as the production of excessive reactive oxygen species (ROS) by infiltrating inflammatory immune cells and their release into the extracellular microenvironment, resulting in extensive apoptosis of endogenous neural stem cells. In this study, we noticed the neuroregeneration-promoting effect as well as the ability of the innovative treatment method of FTY720-CDs@GelMA paired with NSCs to increase motor function recovery in a rat spinal cord injury model. Methods: Carbon dots (CDs) and fingolimod (FTY720) were added to a hydrogel created by chemical cross-linking GelMA (FTY720-CDs@GelMA). The basic properties of FTY720-CDs@GelMA hydrogels were investigated using TEM, SEM, XPS, and FTIR. The swelling and degradation rates of FTY720-CDs@GelMA hydrogels were measured, and each group's ability to scavenge reactive oxygen species was investigated. The in vitro biocompatibility of FTY720-CDs@GelMA hydrogels was assessed using neural stem cells. The regeneration of the spinal cord and recovery of motor function in rats were studied following co-treatment of spinal cord injury using FTY720-CDs@GelMA hydrogel in combination with NSCs, utilising rats with spinal cord injuries as a model. Histological and immunofluorescence labelling were used to determine the regeneration of axons and neurons. The recovery of motor function in rats was assessed using the BBB score. Results: The hydrogel boosted neurogenesis and axonal regeneration by eliminating excess ROS and restoring the regenerative environment. The hydrogel efficiently contained brain stem cells and demonstrated strong neuroprotective effects in vivo by lowering endogenous ROS generation and mitigating ROS-mediated oxidative stress. In a follow-up investigation, we discovered that FTY720-CDs@GelMA hydrogel could dramatically boost NSC proliferation while also promoting neuronal regeneration and synaptic formation, hence lowering cavity area. Conclusion: Our findings suggest that the innovative treatment of FTY720-CDs@GelMA paired with NSCs can effectively improve functional recovery in SCI patients, making it a promising therapeutic alternative for SCI.


Fingolimod Hydrochloride , Hydrogels , Neural Stem Cells , Rats, Sprague-Dawley , Spinal Cord Injuries , Animals , Spinal Cord Injuries/drug therapy , Spinal Cord Injuries/therapy , Fingolimod Hydrochloride/pharmacology , Fingolimod Hydrochloride/chemistry , Fingolimod Hydrochloride/administration & dosage , Neural Stem Cells/drug effects , Hydrogels/chemistry , Hydrogels/pharmacology , Hydrogels/administration & dosage , Rats , Recovery of Function/drug effects , Reactive Oxygen Species/metabolism , Quantum Dots/chemistry , Disease Models, Animal , Female , Spinal Cord/drug effects
6.
Synapse ; 78(3): e22291, 2024 May.
Article En | MEDLINE | ID: mdl-38733105

Spinal serotonin enables neuro-motor recovery (i.e., plasticity) in patients with debilitating paralysis. While there exists time of day fluctuations in serotonin-dependent spinal plasticity, it is unknown, in humans, whether this is due to dynamic changes in spinal serotonin levels or downstream signaling processes. The primary objective of this study was to determine if time of day variations in spinal serotonin levels exists in humans. To assess this, intrathecal drains were placed in seven adults with cerebrospinal fluid (CSF) collected at diurnal (05:00 to 07:00) and nocturnal (17:00 to 19:00) intervals. High performance liquid chromatography with mass spectrometry was used to quantify CSF serotonin levels with comparisons being made using univariate analysis. From the 7 adult patients, 21 distinct CSF samples were collected: 9 during the diurnal interval and 12 during nocturnal. Diurnal CSF samples demonstrated an average serotonin level of 216.6 ± $ \pm $ 67.7 nM. Nocturnal CSF samples demonstrated an average serotonin level of 206.7 ± $ \pm $ 75.8 nM. There was no significant difference between diurnal and nocturnal CSF serotonin levels (p = .762). Within this small cohort of spine healthy adults, there were no differences in diurnal versus nocturnal spinal serotonin levels. These observations exclude spinal serotonin levels as the etiology for time of day fluctuations in serotonin-dependent spinal plasticity expression.


Circadian Rhythm , Serotonin , Humans , Serotonin/cerebrospinal fluid , Male , Adult , Female , Circadian Rhythm/physiology , Middle Aged , Spinal Cord/metabolism , Chromatography, High Pressure Liquid , Aged
7.
Int J Mol Sci ; 25(9)2024 Apr 25.
Article En | MEDLINE | ID: mdl-38731901

Growing demand for therapeutic tissue repair recurrently focusses scientists' attention on critical assessment of postmortal collection of live cells, especially stem cells. Our study aimed to assess the survival of neuronal progenitors in postmortal spinal cord and their differentiation potential. Postmortal samples of spinal cords were obtained from human-sized animals (goats) at 6, 12, 24, 36, and 54 h after slaughter. Samples were studied by immunohistology, differentiation assay, Western blot and flow cytometry for the presence and location of GD2-positive neural progenitors and their susceptibility to cell death. TUNEL staining of the goat spinal cord samples over 6-54 h postmortem revealed no difference in the number of positive cells per cross-section. Many TUNEL-positive cells were located in the gray commissure around the central canal of the spinal cord; no increase in TUNEL-positive cells was recorded in either posterior or anterior horns of the gray matter where many GD2-positive neural progenitors can be found. The active caspase 3 amount as measured by Western blot at the same intervals was moderately increasing over time. Neuronal cells were enriched by magnetic separation with antibodies against CD24; among them, the GD2-positive neural progenitor subpopulation did not overlap with apoptotic cells having high pan-caspase activity. Apoptotic cell death events are relatively rare in postmortal spinal cords and are not increased in areas of the neural progenitor cell's location, within measured postmortal intervals, or among the CD24/GD2-positive cells. Data from our study suggest postmortal spinal cords as a valuable source for harvesting highly viable allogenic neural progenitor cells.


Apoptosis , Goats , Neural Stem Cells , Spinal Cord , Animals , Neural Stem Cells/cytology , Neural Stem Cells/metabolism , Spinal Cord/metabolism , Spinal Cord/cytology , Cell Differentiation , Cell Survival , Caspase 3/metabolism
8.
Mol Brain ; 17(1): 24, 2024 May 18.
Article En | MEDLINE | ID: mdl-38762724

CD11c-positive (CD11c+) microglia have attracted considerable attention because of their potential implications in central nervous system (CNS) development, homeostasis, and disease. However, the spatiotemporal dynamics of the proportion of CD11c+ microglia in individual CNS regions are poorly understood. Here, we investigated the proportion of CD11c+ microglia in six CNS regions (forebrain, olfactory bulb, diencephalon/midbrain, cerebellum, pons/medulla, and spinal cord) from the developmental to adult stages by flow cytometry and immunohistochemical analyses using a CD11c reporter transgenic mouse line, Itgax-Venus. We found that the proportion of CD11c+ microglia in total microglia varied between CNS regions during postnatal development. Specifically, the proportion was high in the olfactory bulb and cerebellum at postnatal day P(4) and P7, respectively, and approximately half of the total microglia were CD11c+. The proportion declined sharply in all regions to P14, and the low percentage persisted over P56. In the spinal cord, the proportion of CD11c+ microglia was also high at P4 and declined to P14, but increased again at P21 and thereafter. Interestingly, the distribution pattern of CD11c+ microglia in the spinal cord markedly changed from gray matter at P4 to white matter at P21. Collectively, our findings reveal the differences in the spatiotemporal dynamics of the proportion of CD11c+ microglia among CNS regions from early development to adult stages in normal mice. These findings improve our understanding of the nature of microglial heterogeneity and its dynamics in the CNS.


Brain , Mice, Transgenic , Microglia , Spinal Cord , Animals , Microglia/metabolism , Microglia/cytology , Spinal Cord/growth & development , Brain/growth & development , Brain/cytology , Spatio-Temporal Analysis , Aging , CD11c Antigen/metabolism , Mice, Inbred C57BL , Mice , Animals, Newborn
9.
Mol Brain ; 17(1): 25, 2024 May 21.
Article En | MEDLINE | ID: mdl-38773624

A growing body of evidence indicates intra- and inter-regional heterogeneity of astrocytes in the brain. However, because of a lack of an efficient method for isolating astrocytes from the spinal cord, little is known about how much spinal cord astrocytes are heterogeneous in adult mice. In this study, we developed a new method for isolating spinal astrocytes from adult mice using a cold-active protease from Bacillus licheniformis with an astrocyte cell surface antigen-2 (ACSA-2) antibody. Using fluorescence-activated cell sorting, isolated spinal ACSA-2+ cells were divided into two distinct populations, ACSA-2high and ACSA-2low. By analyzing the expression of cell-type marker genes, the ACSA-2high and ACSA-2low populations were identified as astrocytes and ependymal cells, respectively. Furthermore, ACSA-2high cells had mRNAs encoding genes that were abundantly expressed in the gray matter (GM) but not white matter astrocytes. By optimizing enzymatic isolation procedures, the yield of GM astrocytes also increased. Therefore, our newly established method enabled the selective and efficient isolation of GM astrocytes from the spinal cord of adult mice and may be useful for bulk- or single-cell RNA-sequencing under physiological and pathological conditions.


Astrocytes , Cell Separation , Gray Matter , Spinal Cord , Animals , Astrocytes/metabolism , Astrocytes/cytology , Spinal Cord/cytology , Cell Separation/methods , Mice, Inbred C57BL , Mice , Male , RNA, Messenger/metabolism , RNA, Messenger/genetics , Aging
10.
Bull Exp Biol Med ; 176(5): 666-671, 2024 Mar.
Article En | MEDLINE | ID: mdl-38727956

This paper shows for the first time that co-transplantation of human olfactory ensheathing cells with neurotrophin-3 into spinal cord cysts is more effective for activation of remyelination than transplantation of cells with brain-derived neurotrophic factor and a combination of these two factors. The studied neurotrophic factors do not affect proliferation and migration of ensheathing cells in vitro. It can be concluded that the maximum improvement of motor function in rats receiving ensheathing cells with neurotrophin-3 is largely determined by activation of remyelination.


Brain-Derived Neurotrophic Factor , Neurotrophin 3 , Olfactory Bulb , Remyelination , Animals , Rats , Neurotrophin 3/metabolism , Humans , Brain-Derived Neurotrophic Factor/metabolism , Brain-Derived Neurotrophic Factor/pharmacology , Remyelination/physiology , Olfactory Bulb/cytology , Cell Proliferation , Spinal Cord/metabolism , Myelin Sheath/metabolism , Myelin Sheath/physiology , Cells, Cultured , Cell Movement , Cysts/pathology , Female , Central Nervous System Cysts/surgery , Central Nervous System Cysts/pathology
11.
Mol Brain ; 17(1): 23, 2024 May 15.
Article En | MEDLINE | ID: mdl-38750560

This study aimed to unveil the central mechanism of moxibustion treating chronic inflammatory visceral pain (CIVP) from the angle of circRNA-miRNA-mRNA networks in the spinal cord. The rat CIVP model was established using a mixture of 5% (w/v) 2,4,6-trinitrobenzene sulfonic acid and 50% ethanol at a volume ratio of 2:1 via enema. Rats in the moxibustion group received herb-partitioned moxibustion at Tianshu (ST25, bilateral) and Qihai (CV6) points. The abdominal withdrawal reflex (AWR), mechanical withdrawal threshold (MWT), and thermal withdrawal latency (TWL) were adopted for pain behavior observation and pain sensitivity assessment. The circRNA, miRNA, and mRNA expression profiles were detected using the high-throughput sequencing technique. Relevant databases and bioinformatics analysis methods were used to screen for differentially expressed (DE) RNAs and build a circRNA-miRNA-mRNA (competing endogenous RNA) ceRNA regulatory network. The real-time quantitative PCR was employed to verify the sequencing result. CIVP rat models had a significantly higher AWR and lower TWL and MWT than normal rats. Between normal and model rats, there were 103 DE-circRNAs, 16 DE-miRNAs, and 397 DE-mRNAs in the spinal cord. Compared with the model group, the moxibustion group had a lower AWR and higher TWL and MWT; between these two groups, there were 118 DE-circRNAs, 15 DE-miRNAs, and 804 DE-mRNAs in the spinal cord. Two ceRNA networks were chosen to be verified. As a result, moxibustion's analgesic effect on visceral pain in CIVP rats may be associated with regulating the circRNA_02767/rno-miR-483-3p/Gfap network in the spinal cord and improving central sensitization.


Gene Regulatory Networks , MicroRNAs , Moxibustion , RNA, Circular , RNA, Messenger , Rats, Sprague-Dawley , Spinal Cord , Visceral Pain , Animals , Moxibustion/methods , MicroRNAs/genetics , MicroRNAs/metabolism , RNA, Circular/genetics , RNA, Circular/metabolism , RNA, Messenger/genetics , RNA, Messenger/metabolism , Spinal Cord/metabolism , Spinal Cord/pathology , Visceral Pain/genetics , Visceral Pain/therapy , Male , Inflammation/genetics , Inflammation/pathology , Chronic Pain/therapy , Chronic Pain/genetics , Rats , Gene Expression Regulation
12.
Zhonghua Yi Xue Za Zhi ; 104(17): 1521-1528, 2024 May 07.
Article Zh | MEDLINE | ID: mdl-38706060

Objective: To investigate the therapeutic effect of sodium oligomannate on experimental autoimmune encephalomyelitis (EAE) mice and its effect on intestinal flora and microglia polarization. Methods: Fifty female C57BL/6 mice were randomly divided by the random number table method into the control group, EAE model group and low-dose, medium-dose and high-dose group of sodium oligomannate with 10 mice each. The EAE model group and each dose group of sodium oligomannate were induced by subcutaneous multi-point injection of MOG35-55 peptide for the EAE model. Mice in the low-dose, medium-dose and high-dose group of sodium oligomannate were gavaged sodium oligomannate 40, 80, and 160 mg/kg twice a day, respectively, starting from the day after modeling. The intervention continued until the mice were euthanized. Observe the incidence of disease, infiltration of inflammatory cells in spinal cord tissue, and demyelination in each group of mice.. The mice feces were collected and tested for intestinal flora by 16S rRNA sequencing. Immunofluorescence staining was used to observe the expression of Iba-1 protein, an activation indicator of microglia, in spinal cord tissue. The protein levels of M1 type markers iNOS, CD16, and M2 type markers Arg1 and CD206 were tsested in the spinal cord by Western blotting and immunofluorescence staining. Results: None of the mice in the control group developed any disease, while the mice in other groups showed varying degrees of disease, including tail sag, unstable walking, and hind limb weakness. Compared with the EAE model group, the incubation period was prolonged, the peak was delayed and the peak neurological dysfunction score was reduced (3.6±0.6 vs 3.0±0.6, 2.8±0.5, 1.8±0.6, P<0.05) in all sodium oligomannate groups, with milder symptoms at higher doses. The differences in pairwise comparisons between the groups were all statistically significant (all P<0.05). In the control group, no inflammatory cell infiltration or demyelinating changes were observed in spinal cord tissue. In the EAE model group, inflammatory cell infiltration and demyelination changes were evident in the spinal cord tissues at the onset peak. Compared with the EAE model group, inflammatory cell infiltration and demyelination were ameliorated in all sodium oligomannate groups. Compared with the control group, the relative abundance of Bacteroidota decreased and that of Firmicutes increased in the EAE model group. Compared with the EAE model group, the relative abundance of Bacteroidota increased and that of Firmicutes decreased, the ratio of Bacteroidetes to Firmicutes increased (0.20±0.05 vs 0.37±0.02,0.61±0.03,0.91±0.08,P<0.01) in the respective dose groups. The difference in pairwise comparison between groups was statistically significant (P<0.01), with greater changes at higher doses. Compared with the control group, the levels of Iba-1、CD16 and iNOS increased, while the levels of Arg-1 and CD206 decreased in the EAE model group. Compared with the EAE model group, the levels of Iba-1、CD16 and iNOS decreased, while the levels of Arg-1 and CD206 increased in all sodium oligomannate groups(P<0.01), with greater changes at higher doses. The difference between groups was statistically significant (P<0.01). Conclusions: Sodium oligomannate has a therapeutic effect on EAE and is dose-dependent. Its mechanism of action may be related toimproving intestinal microecology and the modulation of microglial polarization.


Encephalomyelitis, Autoimmune, Experimental , Gastrointestinal Microbiome , Mice, Inbred C57BL , Microglia , Spinal Cord , Animals , Mice , Female , Disease Models, Animal , Mannose
13.
Acta Neurochir (Wien) ; 166(1): 201, 2024 May 02.
Article En | MEDLINE | ID: mdl-38698241

BACKGROUND: Systematic descriptions of anatomical damage after brachial plexus injury (BPI) at the intradural level have been scarcely reported in detail. However, considering these damages, not only in the spinal nerve roots but also in the spinal cord itself, is crucial in determining the appropriate surgical approach to restore upper limb function and address refractory pain. Therefore, the authors present a descriptive study focusing on intradural findings observed during microsurgical DREZ-lesioning. METHODS: This study enrolled 19 consecutive patients under the same protocol. Microsurgical observation through exposure of C4 to Th1 medullary segments allowed to describe the lesions in spinal nerve roots, meninges, and spinal cord. Electrical stimulation of the ventral roots checked the muscle responses. RESULTS: Extensive damage was observed among the 114 explored roots (six roots per patient), with only 21 (18.4%) ventral (VR) and 17 (14.9%) dorsal (DR) roots retaining all rootlets intact. Damage distribution varied, with the most frequent impairments in C6 VRs (18 patients) and the least in Th1 VRs (14 patients), while in all the 19 patients for the C6 DRs (the most frequently impaired) and in 14 patients for Th1 DRs (the less impaired). C4 roots were found damaged in 12 patients. Total or partial avulsions affected 63.3% and 69.8% of DRs and VRs, respectively, while 15.8% and 14.0% of the 114 DRs and VRs were atrophic, maintaining muscle responses to stimulation in half of those VRs. Pseudomeningoceles were present in 11 patients but absent in 46% of avulsed roots. Adhesive arachnoiditis was noted in 12 patients, and dorsal horn parenchymal alterations in 10. CONCLUSIONS: Knowledge of intradural lesions post-BPI helps in guiding surgical indications for repair and functional neurosurgery for pain control.


Brachial Plexus , Spinal Nerve Roots , Humans , Spinal Nerve Roots/surgery , Spinal Nerve Roots/injuries , Spinal Nerve Roots/pathology , Male , Female , Adult , Brachial Plexus/injuries , Brachial Plexus/surgery , Middle Aged , Spinal Cord/surgery , Spinal Cord/pathology , Young Adult , Brachial Plexus Neuropathies/surgery , Cohort Studies , Microsurgery/methods , Adolescent , Aged
14.
Cell Stem Cell ; 31(5): 585-586, 2024 May 02.
Article En | MEDLINE | ID: mdl-38701752

Stem cell therapy has emerged as a promising area of scientific investigation, sparking considerable interest, especially in spinal cord injury (SCI). Sun et al.1 discover that the extracellular matrix (ECM) from the neonatal spinal cord transmits biochemical signals to endogenous axons, thus promoting axonal regeneration.


Spinal Cord Injuries , Spinal Cord , Humans , Spinal Cord Injuries/therapy , Animals , Infant, Newborn , Extracellular Matrix/metabolism , Adult , Nerve Regeneration
15.
Med Eng Phys ; 127: 104170, 2024 May.
Article En | MEDLINE | ID: mdl-38692767

Recently, functional Near-Infrared Spectroscopy (fNIRS) was applied to obtain, non-invasively, the human peri­spinal Neuro-Vascular Response (NVR) under a non-noxious electrical stimulation of a peripheral nerve. This method allowed the measurements of changes in the concentration of oxyhemoglobin (O2Hb) and deoxyhemoglobin (HHb) from the peri­spinal vascular network. However, there is a lack of clarity about the potential differences in perispinal NVR recorded by the different fNIRS technologies currently available. In this work, the two main noninvasive fNIRS technologies were compared, i.e., LED and LASER-based. The recording of the human peri­spinal NVR induced by non-noxious electrical stimulation of a peripheral nerve was recorded simultaneously at C7 and T10 vertebral levels. The amplitude, rise time, and full width at half maximum duration of the perispinal NVRs were characterized in healthy volunteers and compared between both systems. The main difference was that the LED-based system shows about one order of magnitude higher values of amplitude than the LASER-based system. No statistical differences were found for rise time and for duration parameters (at thoracic level). The comparison of point-to-point wave patterns did not show significant differences between both systems. In conclusion, the peri­spinal NRV response obtained by different fNIRS technologies was reproducible, and only the amplitude showed differences, probably due to the power of the system which should be considered when assessing the human peri­spinal vascular network.


Lasers , Spectroscopy, Near-Infrared , Spinal Cord , Humans , Spectroscopy, Near-Infrared/methods , Male , Spinal Cord/blood supply , Spinal Cord/diagnostic imaging , Spinal Cord/physiology , Adult , Female , Young Adult , Electric Stimulation , Hemoglobins/analysis , Hemoglobins/metabolism
16.
PLoS One ; 19(5): e0303235, 2024.
Article En | MEDLINE | ID: mdl-38728287

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.


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
17.
Nat Commun ; 15(1): 4331, 2024 May 21.
Article En | MEDLINE | ID: mdl-38773121

The adult zebrafish spinal cord displays an impressive innate ability to regenerate after traumatic insults, yet the underlying adaptive cellular mechanisms remain elusive. Here, we show that while the cellular and tissue responses after injury are largely conserved among vertebrates, the large-size fast spinal zebrafish motoneurons are remarkably resilient by remaining viable and functional. We also reveal the dynamic changes in motoneuron glutamatergic input, excitability, and calcium signaling, and we underscore the critical role of calretinin (CR) in binding and buffering the intracellular calcium after injury. Importantly, we demonstrate the presence and the dynamics of a neuron-to-neuron bystander neuroprotective biochemical cooperation mediated through gap junction channels. Our findings support a model in which the intimate and dynamic interplay between glutamate signaling, calcium buffering, gap junction channels, and intercellular cooperation upholds cell survival and promotes the initiation of regeneration.


Gap Junctions , Motor Neurons , Spinal Cord Injuries , Spinal Cord , Zebrafish , Animals , Spinal Cord Injuries/metabolism , Spinal Cord/metabolism , Gap Junctions/metabolism , Motor Neurons/metabolism , Calcium/metabolism , Calcium Signaling , Calbindin 2/metabolism , Zebrafish Proteins/metabolism , Zebrafish Proteins/genetics , Glutamic Acid/metabolism , Cell Survival
18.
A A Pract ; 18(4): e01783, 2024 Apr 01.
Article En | MEDLINE | ID: mdl-38619143

Implanting neuromodulation devices requires that pain medicine physicians be well-versed in proper surgical technique and postoperative wound management. To be able to identify abnormal wound healing, a basic understanding of normal wound healing is required. When postoperative wounds deviate from expected healing, it is important that pain medicine physicians entertain a broad differential diagnosis, including nonsurgical dermatologic pathology.


Carcinoma, Basal Cell , Skin Neoplasms , Humans , Cicatrix , Carcinoma, Basal Cell/surgery , Skin Neoplasms/surgery , Spinal Cord , Pain
19.
J Vis Exp ; (205)2024 Mar 29.
Article En | MEDLINE | ID: mdl-38619261

Gene therapy is a powerful technology to deliver new genes to a patient for the treatment of disease, be it to introduce a functional gene, inactivate a toxic gene, or provide a gene whose product can modulate the biology of the disease. The delivery method for the therapeutic vector can take many forms, ranging from intravenous infusion for systemic delivery to direct injection into the target tissue. For neurodegenerative disorders, it is often desirable to skew transduction towards the brain and/or spinal cord. The least invasive approach to target the entire central nervous system involves injection into the cerebrospinal fluid (CSF), allowing the therapeutic to reach a large fraction of the central nervous system. The safest approach to deliver a vector into the CSF is the lumbar intrathecal injection, where a needle is introduced into the lumbar cistern of the spinal cord. This technique, also known as a lumbar puncture, has been widely used in neonatal and adult rodents and in large animal models. While the technique is similar across species and developmental stages, subtle differences in size, structure, and elasticity of tissues surrounding the intrathecal space require accommodations in the approach. This article describes a method for performing lumbar puncture in juvenile rats to deliver an adeno-associated serotype 9 vector. Here, 25-35 µL of vector were injected into the lumbar cistern, and a green fluorescent protein (GFP) reporter was used to evaluate the transduction profile resulting from each injection. The benefits and challenges of this approach are discussed.


Central Nervous System , Spinal Cord , Adult , Rats , Animals , Humans , Injections , Accommodation, Ocular , Brain
20.
Science ; 384(6692): 194-201, 2024 Apr 12.
Article En | MEDLINE | ID: mdl-38603479

Spinal circuits are central to movement adaptation, yet the mechanisms within the spinal cord responsible for acquiring and retaining behavior upon experience remain unclear. Using a simple conditioning paradigm, we found that dorsal inhibitory neurons are indispensable for adapting protective limb-withdrawal behavior by regulating the transmission of a specific set of somatosensory information to enhance the saliency of conditioning cues associated with limb position. By contrast, maintaining previously acquired motor adaptation required the ventral inhibitory Renshaw cells. Manipulating Renshaw cells does not affect the adaptation itself but flexibly alters the expression of adaptive behavior. These findings identify a circuit basis involving two distinct populations of spinal inhibitory neurons, which enables lasting sensorimotor adaptation independently from the brain.


Mental Recall , Motor Neurons , Neural Inhibition , Renshaw Cells , Spinal Cord , Mental Recall/physiology , Motor Neurons/physiology , Movement , Renshaw Cells/physiology , Spinal Cord/physiology , Animals , Mice , Transcription Factors/genetics , Adaptation, Physiological
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