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1.
Nat Commun ; 15(1): 4721, 2024 Jun 03.
Article in English | MEDLINE | ID: mdl-38830884

ABSTRACT

Optoelectronic neural interfaces can leverage the photovoltaic effect to convert light into electrical current, inducing charge redistribution and enabling nerve stimulation. This method offers a non-genetic and remote approach for neuromodulation. Developing biodegradable and efficient optoelectronic neural interfaces is important for achieving transdermal stimulation while minimizing infection risks associated with device retrieval, thereby maximizing therapeutic outcomes. We propose a biodegradable, flexible, and miniaturized silicon-based neural interface capable of transdermal optoelectronic stimulation for neural modulation and nerve regeneration. Enhancing the device interface with thin-film molybdenum significantly improves the efficacy of neural stimulation. Our study demonstrates successful activation of the sciatic nerve in rodents and the facial nerve in rabbits. Moreover, transdermal optoelectronic stimulation accelerates the functional recovery of injured facial nerves.


Subject(s)
Nerve Regeneration , Sciatic Nerve , Animals , Rabbits , Nerve Regeneration/physiology , Nerve Regeneration/drug effects , Sciatic Nerve/physiology , Facial Nerve/physiology , Peripheral Nerves/physiology , Male , Rats , Silicon/chemistry , Rats, Sprague-Dawley , Electric Stimulation
2.
Stem Cell Res Ther ; 15(1): 158, 2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38824568

ABSTRACT

BACKGROUND: Nerve guide conduits are a promising strategy for reconstructing peripheral nerve defects. Improving the survival rate of seed cells in nerve conduits is still a challenge and microcarriers are an excellent three-dimensional (3D) culture scaffold. Here, we investigate the effect of the 3D culture of microcarriers on the biological characteristics of adipose mesenchymal stem cells (ADSCs) and to evaluate the efficacy of chitosan nerve conduits filled with microcarriers loaded with ADSCs in repairing nerve defects. METHODS: In vitro, we prepared porous chitosan microspheres by a modified emulsion cross-linking method for loading ADSCs and evaluated the growth status and function of ADSCs. In vivo, ADSCs-loaded microcarriers were injected into chitosan nerve conduits to repair a 12 mm sciatic nerve defect in rats. RESULTS: Compared to the conventional two-dimensional (2D) culture, the prepared microcarriers were more conducive to the proliferation, migration, and secretion of trophic factors of ADSCs. In addition, gait analysis, neuro-electrophysiology, and histological evaluation of nerves and muscles showed that the ADSC microcarrier-loaded nerve conduits were more effective in improving nerve regeneration. CONCLUSIONS: The ADSCs-loaded chitosan porous microcarrier prepared in this study has a high cell engraftment rate and good potential for peripheral nerve repair.


Subject(s)
Adipose Tissue , Chitosan , Mesenchymal Stem Cells , Microspheres , Nerve Regeneration , Rats, Sprague-Dawley , Chitosan/chemistry , Nerve Regeneration/physiology , Animals , Rats , Mesenchymal Stem Cells/cytology , Mesenchymal Stem Cells/metabolism , Adipose Tissue/cytology , Sciatic Nerve/physiology , Porosity , Tissue Scaffolds/chemistry , Male , Mesenchymal Stem Cell Transplantation/methods , Cell Proliferation , Cells, Cultured
3.
Handb Clin Neurol ; 201: 1-17, 2024.
Article in English | MEDLINE | ID: mdl-38697733

ABSTRACT

Peripheral nerves are functional networks in the body. Disruption of these networks induces varied functional consequences depending on the types of nerves and organs affected. Despite the advances in microsurgical repair and understanding of nerve regeneration biology, restoring full functions after severe traumatic nerve injuries is still far from achieved. While a blunted growth response from axons and errors in axon guidance due to physical barriers may surface as the major hurdles in repairing nerves, critical additional cellular and molecular aspects challenge the orderly healing of injured nerves. Understanding the systematic reprogramming of injured nerves at the cellular and molecular levels, referred to here as "hallmarks of nerve injury regeneration," will offer better ideas. This chapter discusses the hallmarks of nerve injury and regeneration and critical points of failures in the natural healing process. Potential pharmacological and nonpharmacological intervention points for repairing nerves are also discussed.


Subject(s)
Nerve Regeneration , Peripheral Nerve Injuries , Humans , Nerve Regeneration/physiology , Peripheral Nerve Injuries/therapy , Peripheral Nerve Injuries/physiopathology , Animals , Peripheral Nerves , Axons/physiology , Axons/pathology
4.
Invest Ophthalmol Vis Sci ; 65(5): 3, 2024 May 01.
Article in English | MEDLINE | ID: mdl-38691090

ABSTRACT

Purpose: Forty-hertz light flicker stimulation has been proven to reduce neurodegeneration, but its effect on optic nerve regeneration is unclear. This study explores the effect of 40-Hz light flicker in promoting optic nerve regeneration in zebrafish and investigates the underlying mechanisms. Methods: Wild-type and mpeg1:EGFP zebrafish were used to establish a model of optic nerve crush. Biocytin tracing and hematoxylin and eosin staining were employed to observe whether 40-Hz light flicker promotes regeneration of retinal ganglion cell axons and dendrites. Optomotor and optokinetic responses were evaluated to assess recovery of visual function. Immunofluorescence staining of mpeg1:EGFP zebrafish was performed to observe changes in microglia. Differentially expressed genes that promote optic nerve regeneration following 40-Hz light flicker stimulation were identified and validated through RNA-sequencing analysis and quantitative real-time PCR (qRT-PCR). Results: Zebrafish exhibited spontaneous optic nerve regeneration after optic nerve injury and restored visual function. We observed that 40-Hz light flicker significantly activated microglia following optic nerve injury and promoted regeneration of retinal ganglion cell axons and dendrites, as well as recovery of visual function. Transcriptomics and qRT-PCR analyses revealed that 40-Hz light flicker increased the expression of genes associated with neuronal plasticity, including bdnf, npas4a, fosab, fosb, egr4, and ier2a. Conclusions: To our knowledge, this study is the first to demonstrate that 40-Hz light flicker stimulation promotes regeneration of retinal ganglion cell axons and dendrites and recovery of visual function in zebrafish, which is associated with microglial activation and enhancement of neural plasticity.


Subject(s)
Microglia , Nerve Regeneration , Neuronal Plasticity , Optic Nerve Injuries , Retinal Ganglion Cells , Zebrafish , Animals , Microglia/physiology , Nerve Regeneration/physiology , Optic Nerve Injuries/physiopathology , Neuronal Plasticity/physiology , Retinal Ganglion Cells/physiology , Photic Stimulation , Disease Models, Animal , Optic Nerve/physiology , Axons/physiology , Real-Time Polymerase Chain Reaction
5.
Invest Ophthalmol Vis Sci ; 65(5): 8, 2024 May 01.
Article in English | MEDLINE | ID: mdl-38700874

ABSTRACT

Purpose: In the present study, we aim to elucidate the underlying molecular mechanism of endoplasmic reticulum (ER) stress induced delayed corneal epithelial wound healing and nerve regeneration. Methods: Human limbal epithelial cells (HLECs) were treated with thapsigargin to induce excessive ER stress and then RNA sequencing was performed. Immunofluorescence, qPCR, Western blot, and ELISA were used to detect the expression changes of SLIT3 and its receptors ROBO1-4. The role of recombinant SLIT3 protein in corneal epithelial proliferation and migration were assessed by CCK8 and cell scratch assay, respectively. Thapsigargin, exogenous SLIT3 protein, SLIT3-specific siRNA, and ROBO4-specific siRNA was injected subconjunctivally to evaluate the effects of different intervention on corneal epithelial and nerve regeneration. In addition, Ki67 staining was performed to evaluate the proliferation ability of epithelial cells. Results: Thapsigargin suppressed normal corneal epithelial and nerve regeneration significantly. RNA sequencing genes related to development and regeneration revealed that thapsigargin induced ER stress significantly upregulated the expression of SLIT3 and ROBO4 in corneal epithelial cells. Exogenous SLIT3 inhibited normal corneal epithelial injury repair and nerve regeneration, and significantly suppressed the proliferation and migration ability of cultured mouse corneal epithelial cells. SLIT3 siRNA inhibited ROBO4 expression and promoted epithelial wound healing under thapsigargin treatment. ROBO4 siRNA significantly attenuated the delayed corneal epithelial injury repair and nerve regeneration induced by SLIT3 treatment or thapsigargin treatment. Conclusions: ER stress inhibits corneal epithelial injury repair and nerve regeneration may be related with the upregulation of SLIT3-ROBO4 pathway.


Subject(s)
Cell Proliferation , Endoplasmic Reticulum Stress , Epithelium, Corneal , Nerve Regeneration , Receptors, Immunologic , Roundabout Proteins , Signal Transduction , Wound Healing , Animals , Humans , Mice , Blotting, Western , Cell Movement/physiology , Cells, Cultured , Endoplasmic Reticulum Stress/physiology , Enzyme-Linked Immunosorbent Assay , Epithelium, Corneal/metabolism , Limbus Corneae/cytology , Nerve Regeneration/physiology , Nerve Tissue Proteins/genetics , Nerve Tissue Proteins/metabolism , Receptors, Cell Surface/metabolism , Receptors, Cell Surface/genetics , Receptors, Immunologic/genetics , Receptors, Immunologic/metabolism , Signal Transduction/physiology , Wound Healing/physiology
6.
J Vis Exp ; (207)2024 May 03.
Article in English | MEDLINE | ID: mdl-38767361

ABSTRACT

Schwann cells (SCs) are myelinating cells of the peripheral nervous system, playing a crucial role in peripheral nerve regeneration. Nanosecond Pulse Electric Field (nsPEF) is an emerging method applicable in nerve electrical stimulation that has been demonstrated to be effective in stimulating cell proliferation and other biological processes. Aiming to assess whether SCs undergo significant changes under nsPEF and help explore the potential for new peripheral nerve regeneration methods, cultured RSC96 cells were subjected to nsPEF stimulation at 5 kV and 10 kV, followed by continued cultivation for 3-4 days. Subsequently, some relevant factors expressed by SCs were assessed to demonstrate the successful stimulation, including the specific marker protein, neurotrophic factor, transcription factor, and myelination regulator. The representative results showed that nsPEF significantly enhanced the proliferation and migration of SCs and the ability to synthesize relevant factors that contribute positively to the regeneration of peripheral nerves. Simultaneously, lower expression of GFAP indicated the benign prognosis of peripheral nerve injuries. All these outcomes show that nsPEF has great potential as an efficient treatment method for peripheral nerve injuries by stimulating SCs.


Subject(s)
Nerve Regeneration , Schwann Cells , Schwann Cells/cytology , Schwann Cells/physiology , Nerve Regeneration/physiology , Animals , Rats , Peripheral Nerves/physiology , Peripheral Nerves/cytology , Cell Proliferation/physiology , Electric Stimulation/methods , Peripheral Nerve Injuries/therapy
7.
Neurosci Lett ; 833: 137813, 2024 Jun 11.
Article in English | MEDLINE | ID: mdl-38723761

ABSTRACT

A significant public health burden is peripheral nerve damage (PNI), which is frequently brought on by trauma. Macrophages were essential to the effective regeneration of nerves and restoration of function. It is still not entirely understood how macrophages and Schwann cells interact after damage during remyelination. Here, we established an inflammatory model in bone marrow-derived macrophages (BMDMs) and a rat sciatic nerve damage model to investigate the possible relationship between lipopolysaccharides (LPS)-induced exosomes derived from Schwann cells (LPS SCs-Exos) and peripheral nerve repair. The pro-inflammatory macrophage was changed into a pro-regeneration macrophage by LPS SC-Exos. Notably, it was discovered that SC-Exos had a substantial enrichment of OTULIN. OTULIN was a key mediator in the regulatory effects of LPS SC-Exos by deubiquitinating ERBB2 and preventing its degradation. The local injection of SC-Exos into the nerve damage site led in a faster functional recovery, axon regeneration and remyelination, and an increased M2 macrophage polarization, whereas OTULIN knockdown reversed these effects in vivo. Our results indicate that LPS SC-Exos may offer a therapeutic avenue for peripheral nerve regeneration by promoting macrophage polarization toward an M2 phenotype through the shuttling of OTULIN and deubiquitination of ERBB2. SIGNIFICANCE STATEMENT: OTULIN protein from SC-Exos mediated the macrophages polarization and axonal growth in BMDMs through promoting ubiquitination of ERBB2 and triggering the degradation of ERBB2. The findings offered prospective therapeutic hints for PNI therapy approaches that target axonal regrowth.


Subject(s)
Exosomes , Macrophages , Nerve Regeneration , Peripheral Nerve Injuries , Rats, Sprague-Dawley , Schwann Cells , Animals , Schwann Cells/metabolism , Exosomes/metabolism , Macrophages/metabolism , Peripheral Nerve Injuries/metabolism , Rats , Nerve Regeneration/physiology , Nerve Regeneration/drug effects , Receptor, ErbB-2/metabolism , Male , Ubiquitination , Mice , Sciatic Nerve/injuries , Sciatic Nerve/metabolism , Mice, Inbred C57BL , Lipopolysaccharides
8.
Biomed Pharmacother ; 175: 116645, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38729050

ABSTRACT

Peripheral nerve injuries (PNIs) frequently occur due to various factors, including mechanical trauma such as accidents or tool-related incidents, as well as complications arising from diseases like tumor resection. These injuries frequently result in persistent numbness, impaired motor and sensory functions, neuropathic pain, or even paralysis, which can impose a significant financial burden on patients due to outcomes that often fall short of expectations. The most frequently employed clinical treatment for PNIs involves either direct sutures of the severed ends or bridging the proximal and distal stumps using autologous nerve grafts. However, autologous nerve transplantation may result in sensory and motor functional loss at the donor site, as well as neuroma formation and scarring. Transplantation of Schwann cells/Schwann cell-like cells has emerged as a promising cellular therapy to reconstruct the microenvironment and facilitate peripheral nerve regeneration. In this review, we summarize the role of Schwann cells and recent advances in Schwann cell therapy in peripheral nerve regeneration. We summarize current techniques used in cell therapy, including cell injection, 3D-printed scaffolds for cell delivery, cell encapsulation techniques, as well as the cell types employed in experiments, experimental models, and research findings. At the end of the paper, we summarize the challenges and advantages of various cells (including ESCs, iPSCs, and BMSCs) in clinical cell therapy. Our goal is to provide the theoretical and experimental basis for future treatments targeting peripheral nerves, highlighting the potential of cell therapy and tissue engineering as invaluable resources for promoting nerve regeneration.


Subject(s)
Nerve Regeneration , Peripheral Nerve Injuries , Schwann Cells , Schwann Cells/physiology , Humans , Animals , Nerve Regeneration/physiology , Peripheral Nerve Injuries/therapy , Cell- and Tissue-Based Therapy/methods , Peripheral Nerves/physiology
10.
Elife ; 122024 May 14.
Article in English | MEDLINE | ID: mdl-38742628

ABSTRACT

Peripheral neurons are heterogeneous and functionally diverse, but all share the capability to switch to a pro-regenerative state after nerve injury. Despite the assumption that the injury response is similar among neuronal subtypes, functional recovery may differ. Understanding the distinct intrinsic regenerative properties between neurons may help to improve the quality of regeneration, prioritizing the growth of axon subpopulations to their targets. Here, we present a comparative analysis of regeneration across four key peripheral neuron populations: motoneurons, proprioceptors, cutaneous mechanoreceptors, and nociceptors. Using Cre/Ai9 mice that allow fluorescent labeling of neuronal subtypes, we found that nociceptors showed the greater regeneration after a sciatic crush, followed by motoneurons, mechanoreceptors, and, finally, proprioceptors. By breeding these Cre mice with Ribotag mice, we isolated specific translatomes and defined the regenerative response of these neuronal subtypes after axotomy. Only 20% of the regulated genes were common, revealing a diverse response to injury among neurons, which was also supported by the differential influence of neurotrophins among neuron subtypes. Among differentially regulated genes, we proposed MED12 as a specific regulator of the regeneration of proprioceptors. Altogether, we demonstrate that the intrinsic regenerative capacity differs between peripheral neuron subtypes, opening the door to selectively modulate these responses.


Subject(s)
Peripheral Nerve Injuries , Animals , Mice , Peripheral Nerve Injuries/genetics , Peripheral Nerve Injuries/metabolism , Nerve Regeneration/physiology , Motor Neurons/physiology , Nociceptors/physiology , Nociceptors/metabolism , Sequence Analysis, RNA , Mechanoreceptors/physiology , Mechanoreceptors/metabolism , Axotomy , Male , Sciatic Nerve/injuries , Neurons/physiology
11.
Cell Rep Med ; 5(5): 101554, 2024 May 21.
Article in English | MEDLINE | ID: mdl-38729157

ABSTRACT

The axons of retinal ganglion cells (RGCs) form the optic nerve, transmitting visual information from the eye to the brain. Damage or loss of RGCs and their axons is the leading cause of visual functional defects in traumatic injury and degenerative diseases such as glaucoma. However, there are no effective clinical treatments for nerve damage in these neurodegenerative diseases. Here, we report that LIM homeodomain transcription factor Lhx2 promotes RGC survival and axon regeneration in multiple animal models mimicking glaucoma disease. Furthermore, following N-methyl-D-aspartate (NMDA)-induced excitotoxicity damage of RGCs, Lhx2 mitigates the loss of visual signal transduction. Mechanistic analysis revealed that overexpression of Lhx2 supports axon regeneration by systematically regulating the transcription of regeneration-related genes and inhibiting transcription of Semaphorin 3C (Sema3C). Collectively, our studies identify a critical role of Lhx2 in promoting RGC survival and axon regeneration, providing a promising neural repair strategy for glaucomatous neurodegeneration.


Subject(s)
Axons , Disease Models, Animal , Glaucoma , LIM-Homeodomain Proteins , Nerve Regeneration , Retinal Ganglion Cells , Transcription Factors , Animals , Retinal Ganglion Cells/metabolism , Retinal Ganglion Cells/pathology , LIM-Homeodomain Proteins/metabolism , LIM-Homeodomain Proteins/genetics , Glaucoma/genetics , Glaucoma/pathology , Glaucoma/metabolism , Transcription Factors/metabolism , Transcription Factors/genetics , Axons/metabolism , Axons/pathology , Mice , Nerve Regeneration/genetics , Nerve Regeneration/physiology , Mice, Inbred C57BL , Cell Survival/genetics , Semaphorins/metabolism , Semaphorins/genetics , N-Methylaspartate/metabolism
12.
J Neuroinflammation ; 21(1): 134, 2024 May 27.
Article in English | MEDLINE | ID: mdl-38802868

ABSTRACT

BACKGROUND: Since the 1990s, evidence has accumulated that macrophages promote peripheral nerve regeneration and are required for enhancing regeneration in the conditioning lesion (CL) response. After a sciatic nerve injury, macrophages accumulate in the injury site, the nerve distal to that site, and the axotomized dorsal root ganglia (DRGs). In the peripheral nervous system, as in other tissues, the macrophage response is derived from both resident macrophages and recruited monocyte-derived macrophages (MDMs). Unresolved questions are: at which sites do macrophages enhance nerve regeneration, and is a particular population needed. METHODS: Ccr2 knock-out (KO) and Ccr2gfp/gfp knock-in/KO mice were used to prevent MDM recruitment. Using these strains in a sciatic CL paradigm, we examined the necessity of MDMs and residents for CL-enhanced regeneration in vivo and characterized injury-induced nerve inflammation. CL paradigm variants, including the addition of pharmacological macrophage depletion methods, tested the role of various macrophage populations in initiating or sustaining the CL response. In vivo regeneration, measured from bilateral proximal test lesions (TLs) after 2 d, and macrophages were quantified by immunofluorescent staining. RESULTS: Peripheral CL-enhanced regeneration was equivalent between crush and transection CLs and was sustained for 28 days in both Ccr2 KO and WT mice despite MDM depletion. Similarly, the central CL response measured in dorsal roots was unchanged in Ccr2 KO mice. Macrophages at both the TL and CL, but not between them, stained for the pro-regenerative marker, arginase 1. TL macrophages were primarily CCR2-dependent MDMs and nearly absent in Ccr2 KO and Ccr2gfp/gfp KO mice. However, there were only slightly fewer Arg1+ macrophages in CCR2 null CLs than controls due to resident macrophage compensation. Zymosan injection into an intact WT sciatic nerve recruited Arg1+ macrophages but did not enhance regeneration. Finally, clodronate injection into Ccr2gfp KO CLs dramatically reduced CL macrophages. Combined with the Ccr2gfp KO background, depleting MDMs and TL macrophages, and a transection CL, physically removing the distal nerve environment, nearly all macrophages in the nerve were removed, yet CL-enhanced regeneration was not impaired. CONCLUSIONS: Macrophages in the sciatic nerve are neither necessary nor sufficient to produce a CL response.


Subject(s)
Macrophages , Nerve Regeneration , Peripheral Nerve Injuries , Receptors, CCR2 , Wallerian Degeneration , Animals , Macrophages/metabolism , Macrophages/pathology , Mice , Nerve Regeneration/physiology , Wallerian Degeneration/pathology , Receptors, CCR2/metabolism , Receptors, CCR2/genetics , Receptors, CCR2/deficiency , Peripheral Nerve Injuries/pathology , Peripheral Nerve Injuries/metabolism , Mice, Inbred C57BL , Mice, Knockout , Sciatic Neuropathy/pathology , Axons/pathology , Mice, Transgenic , Disease Models, Animal , Sciatic Nerve/injuries , Sciatic Nerve/pathology , Ganglia, Spinal/metabolism , Ganglia, Spinal/pathology , Green Fluorescent Proteins/genetics , Green Fluorescent Proteins/metabolism
13.
Neurosci Lett ; 833: 137832, 2024 Jun 11.
Article in English | MEDLINE | ID: mdl-38796094

ABSTRACT

Axonal regeneration is restricted in adults and causes irreversible motor dysfunction following spinal cord injury (SCI). In contrast, neonates have prominent regenerative potential and can restore their neural function. Although the distinct cellular responses in neonates have been studied, how they contribute to neural recovery remains unclear. To assess whether the secreted molecules in neonatal SCI can enhance neural regeneration, we re-analyzed the previously performed single-nucleus RNA-seq (snRNA-seq) and focused on Asporin and Cd109, the highly expressed genes in the injured neonatal spinal cord. In the present study, we showed that both these molecules were expressed in the injured spinal cords of adults and neonates. We treated the cortical neurons with recombinant Asporin or CD109 to observe their direct effects on neurons in vitro. We demonstrated that these molecules enhance neurite outgrowth in neurons. However, these molecules did not enhance re-growth of severed axons. Our results suggest that Asporin and CD109 influence neurites at the lesion site, rather than promoting axon regeneration, to restore neural function in neonates after SCI.


Subject(s)
Animals, Newborn , Axons , Nerve Regeneration , Spinal Cord Injuries , Spinal Cord Injuries/metabolism , Animals , Axons/metabolism , Nerve Regeneration/physiology , Nerve Regeneration/drug effects , Nerve Tissue Proteins/metabolism , Nerve Tissue Proteins/genetics , Cells, Cultured , Neuronal Outgrowth/physiology , Spinal Cord/metabolism , Antigens, CD/metabolism , Neurons/metabolism , Rats , Neurites/metabolism , Neurites/drug effects , Female
14.
Cell Reprogram ; 26(2): 67-78, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38598278

ABSTRACT

Repair strategies for injured peripheral nerve have achieved great progresses in recent years. However, the clinical outcomes remain unsatisfactory. Recent studies have found that exosomes secreted by dental pulp stem cells (DPSC-exos) have great potential for applications in nerve repair. In this study, we evaluated the effects of human DPSC-exos on improving peripheral nerve regeneration. Initially, we established a coculture system between DPSCs and Schwann cells (SCs) in vitro to assess the effect of DPSC-exos on the activity of embryonic dorsal root ganglion neurons (DRGs) growth in SCs. We extracted and labeled human DPSC-exos, which were subsequently utilized in uptake experiments in DRGs and SCs. Subsequently, we established a rat sciatic nerve injury model to evaluate the therapeutic potential of DPSC-exos in repairing sciatic nerve damage. Our findings revealed that DPSC-exos significantly promoted neurite elongation by enhancing the proliferation, migration, and secretion of neurotrophic factors by SCs. In vivo, DPSC-exos administration significantly improved the walking behavior, axon regeneration, and myelination in rats with sciatic nerve injuries. Our study underscores the vast potential of DPSC-exos as a therapeutic tool for tissue-engineered nerve construction.


Subject(s)
Exosomes , Nerve Regeneration , Rats , Humans , Animals , Nerve Regeneration/physiology , Rats, Sprague-Dawley , Axons , Dental Pulp , Sciatic Nerve/physiology , Stem Cells , Schwann Cells
15.
Biomed Eng Online ; 23(1): 40, 2024 Apr 06.
Article in English | MEDLINE | ID: mdl-38582838

ABSTRACT

Severely damaged peripheral nerves will regenerate incompletely due to lack of directionality in their regeneration, leading to loss of nerve function. To address this problem, various nerve guidance conduits (NGCs) have been developed to provide guidance for nerve repair. However, their clinical application is still limited, mainly because its effect in promoting nerve repair is not as good as autologous nerve transplantation. Therefore, it is necessary to enhance the ability of NGCs to promote directional nerve growth. Strategies include preparing various directional structures on NGCs to provide contact guidance, and loading various substances on them to provide electrical stimulation or neurotrophic factor concentration gradient to provide directional physical or biological signals.


Subject(s)
Nerve Regeneration , Prostheses and Implants , Nerve Regeneration/physiology , Sciatic Nerve/physiology
16.
J Nanobiotechnology ; 22(1): 194, 2024 Apr 20.
Article in English | MEDLINE | ID: mdl-38643117

ABSTRACT

Several studies suggest that topographical patterns influence nerve cell fate. Efforts have been made to improve nerve cell functionality through this approach, focusing on therapeutic strategies that enhance nerve cell function and support structures. However, inadequate nerve cell orientation can impede long-term efficiency, affecting nerve tissue repair. Therefore, enhancing neurites/axons directional growth and cell orientation is crucial for better therapeutic outcomes, reducing nerve coiling, and ensuring accurate nerve fiber connections. Conflicting results exist regarding the effects of micro- or nano-patterns on nerve cell migration, directional growth, immunogenic response, and angiogenesis, complicating their clinical use. Nevertheless, advances in lithography, electrospinning, casting, and molding techniques to intentionally control the fate and neuronal cells orientation are being explored to rapidly and sustainably improve nerve tissue efficiency. It appears that this can be accomplished by combining micro- and nano-patterns with nanomaterials, biological gradients, and electrical stimulation. Despite promising outcomes, the unclear mechanism of action, the presence of growth cones in various directions, and the restriction of outcomes to morphological and functional nerve cell markers have presented challenges in utilizing this method. This review seeks to clarify how micro- or nano-patterns affect nerve cell morphology and function, highlighting the potential benefits of cell orientation, especially in combined approaches.


Subject(s)
Nerve Regeneration , Peripheral Nerves , Nerve Regeneration/physiology , Peripheral Nerves/physiology , Neurites/physiology , Axons/physiology , Neurons
17.
Elife ; 132024 Apr 09.
Article in English | MEDLINE | ID: mdl-38591541

ABSTRACT

Collective cell migration is fundamental for the development of organisms and in the adult for tissue regeneration and in pathological conditions such as cancer. Migration as a coherent group requires the maintenance of cell-cell interactions, while contact inhibition of locomotion (CIL), a local repulsive force, can propel the group forward. Here we show that the cell-cell interaction molecule, N-cadherin, regulates both adhesion and repulsion processes during Schwann cell (SC) collective migration, which is required for peripheral nerve regeneration. However, distinct from its role in cell-cell adhesion, the repulsion process is independent of N-cadherin trans-homodimerisation and the associated adherens junction complex. Rather, the extracellular domain of N-cadherin is required to present the repulsive Slit2/Slit3 signal at the cell surface. Inhibiting Slit2/Slit3 signalling inhibits CIL and subsequently collective SC migration, resulting in adherent, nonmigratory cell clusters. Moreover, analysis of ex vivo explants from mice following sciatic nerve injury showed that inhibition of Slit2 decreased SC collective migration and increased clustering of SCs within the nerve bridge. These findings provide insight into how opposing signals can mediate collective cell migration and how CIL pathways are promising targets for inhibiting pathological cell migration.


Subject(s)
Cadherins , Cell Movement , Contact Inhibition , Intercellular Signaling Peptides and Proteins , Membrane Proteins , Nerve Regeneration , Nerve Tissue Proteins , Schwann Cells , Schwann Cells/metabolism , Schwann Cells/physiology , Animals , Nerve Tissue Proteins/metabolism , Nerve Tissue Proteins/genetics , Mice , Cadherins/metabolism , Cadherins/genetics , Intercellular Signaling Peptides and Proteins/metabolism , Intercellular Signaling Peptides and Proteins/genetics , Nerve Regeneration/physiology , Locomotion/physiology , Cell Adhesion , Signal Transduction
18.
Ann Plast Surg ; 92(5): 585-590, 2024 May 01.
Article in English | MEDLINE | ID: mdl-38685498

ABSTRACT

BACKGROUND: Acellular nerve allografts (ANAs) were developed to replace the autologous nerve grafts (ANGs) to fill the peripheral nerve defects. Poor vascularization relative to ANGs has been a limitation of application of ANAs. METHODS: A total of 60 female Sprague-Dawley rats were assigned 3 groups. The rats in A group received ANGs, the rats in B group received ANAs, and the rats in C group were transplanted with ANA carrying endothelial cells (ANA + ECs). In the 1st, 2nd, 4th, and 12th postoperative weeks, 5 rats were selected from each group for evaluating sciatic function index (SFI), electrophysiology, maximum tetanic force recovery rate, tibialis anterior muscle weights recovery rate, and microvessel density. In the 12th postoperative week, the nerves were harvested and stained with toluidine blue and observed under an electron microscope to compare nerve fibers, myelin width, and G-ratio. RESULTS: All the rats survived. In the first and second postoperative weeks, more microvessels were found in the ANA + EC group. In the 12th postoperative week, the nerve fibers were more numerous, and G-ratio was smaller in the C group compared with the B group. The compound muscle action potential and maximum tetanic force recovery rate in the tibialis anterior muscle in the C group were better than those in the B group in the 12th postoperative week. The A group showed better performances in electrophysiology, maximum tetanic force, muscle wet weight, and nerve regeneration. CONCLUSION: ANA + ECs can promote early angiogenesis, promoting nerve regeneration and neurological function recovery.


Subject(s)
Allografts , Endothelial Cells , Nerve Regeneration , Rats, Sprague-Dawley , Sciatic Nerve , Animals , Female , Rats , Sciatic Nerve/surgery , Sciatic Nerve/injuries , Sciatic Nerve/transplantation , Nerve Regeneration/physiology , Peripheral Nerve Injuries/surgery , Recovery of Function , Random Allocation
19.
PLoS One ; 19(4): e0300539, 2024.
Article in English | MEDLINE | ID: mdl-38574058

ABSTRACT

Genetic and pharmacological perturbation of the cytoskeleton enhances the regenerative potential of neurons. This response requires Dual-leucine Zipper Kinase (DLK), a neuronal stress sensor that is a central regulator of axon regeneration and degeneration. The damage and repair aspects of this response are reminiscent of other cellular homeostatic systems, suggesting that a cytoskeletal homeostatic response exists. In this study, we propose a framework for understanding DLK mediated neuronal cytoskeletal homeostasis. We demonstrate that low dose nocodazole treatment activates DLK signaling. Activation of DLK signaling results in a DLK-dependent transcriptional signature, which we identify through RNA-seq. This signature includes genes likely to attenuate DLK signaling while simultaneously inducing actin regulating genes. We identify alterations to the cytoskeleton including actin-based morphological changes to the axon. These results are consistent with the model that cytoskeletal disruption in the neuron induces a DLK-dependent homeostatic mechanism, which we term the Cytoskeletal Stress Response (CSR) pathway.


Subject(s)
Actins , Axons , Axons/metabolism , Nocodazole/pharmacology , Actins/metabolism , Leucine Zippers , Nerve Regeneration/physiology , Cytoskeleton/metabolism , Homeostasis , MAP Kinase Kinase Kinases/genetics
20.
J Neural Eng ; 21(2)2024 Apr 04.
Article in English | MEDLINE | ID: mdl-38572924

ABSTRACT

Objective. Artificial nerve scaffolds composed of polymers have attracted great attention as an alternative for autologous nerve grafts recently. Due to their poor bioactivity, satisfactory nerve repair could not be achieved. To solve this problem, we introduced extracellular matrix (ECM) to optimize the materials.Approach.In this study, the ECM extracted from porcine nerves was mixed with Poly(L-Lactide-co-ϵ-caprolactone) (PLCL), and the innovative PLCL/ECM nerve repair conduits were prepared by electrostatic spinning technology. The novel conduits were characterized by scanning electron microscopy (SEM), tensile properties, and suture retention strength test for micromorphology and mechanical strength. The biosafety and biocompatibility of PLCL/ECM nerve conduits were evaluated by cytotoxicity assay with Mouse fibroblast cells and cell adhesion assay with RSC 96 cells, and the effects of PLCL/ECM nerve conduits on the gene expression in Schwann cells was analyzed by real-time polymerase chain reaction (RT-PCR). Moreover, a 10 mm rat (Male Wistar rat) sciatic defect was bridged with a PLCL/ECM nerve conduit, and nerve regeneration was evaluated by walking track, mid-shank circumference, electrophysiology, and histomorphology analyses.Main results.The results showed that PLCL/ECM conduits have similar microstructure and mechanical strength compared with PLCL conduits. The cytotoxicity assay demonstrates better biosafety and biocompatibility of PLCL/ECM nerve conduits. And the cell adhesion assay further verifies that the addition of ECM is more beneficial to cell adhesion and proliferation. RT-PCR showed that the PLCL/ECM nerve conduit was more favorable to the gene expression of functional proteins of Schwann cells. Thein vivoresults indicated that PLCL/ECM nerve conduits possess excellent biocompatibility and exhibit a superior capacity to promote peripheral nerve repair.Significance.The addition of ECM significantly improved the biocompatibility and bioactivity of PLCL, while the PLCL/ECM nerve conduit gained the appropriate mechanical strength from PLCL, which has great potential for clinical repair of peripheral nerve injuries.


Subject(s)
Extracellular Matrix , Sciatic Nerve , Animals , Male , Mice , Rats , Nerve Regeneration/physiology , Polyesters/chemistry , Rats, Wistar , Sciatic Nerve/physiology , Static Electricity , Swine , Tissue Scaffolds/chemistry
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