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1.
Handb Clin Neurol ; 201: 1-17, 2024.
Artículo en Inglés | MEDLINE | ID: mdl-38697733

RESUMEN

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.


Asunto(s)
Regeneración Nerviosa , Traumatismos de los Nervios Periféricos , Humanos , Regeneración Nerviosa/fisiología , Traumatismos de los Nervios Periféricos/terapia , Traumatismos de los Nervios Periféricos/fisiopatología , Animales , Nervios Periféricos , Axones/fisiología , Axones/patología
2.
Elife ; 122024 May 14.
Artículo en Inglés | MEDLINE | ID: mdl-38742628

RESUMEN

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.


Asunto(s)
Traumatismos de los Nervios Periféricos , Animales , Ratones , Traumatismos de los Nervios Periféricos/genética , Traumatismos de los Nervios Periféricos/metabolismo , Regeneración Nerviosa/fisiología , Neuronas Motoras/fisiología , Nociceptores/fisiología , Nociceptores/metabolismo , Análisis de Secuencia de ARN , Mecanorreceptores/fisiología , Mecanorreceptores/metabolismo , Axotomía , Masculino , Nervio Ciático/lesiones , Neuronas/fisiología
3.
J Nanobiotechnology ; 22(1): 244, 2024 May 12.
Artículo en Inglés | MEDLINE | ID: mdl-38735969

RESUMEN

Biomaterials can modulate the local immune microenvironments to promote peripheral nerve regeneration. Inspired by the spatial orderly distribution and endogenous electric field of nerve fibers, we aimed to investigate the synergistic effects of electrical and topological cues on immune microenvironments of peripheral nerve regeneration. Nerve guidance conduits (NGCs) with aligned electrospun nanofibers were fabricated using a polyurethane copolymer containing a conductive aniline trimer and degradable L-lysine (PUAT). In vitro experiments showed that the aligned PUAT (A-PUAT) membranes promoted the recruitment of macrophages and induced their polarization towards the pro-healing M2 phenotype, which subsequently facilitated the migration and myelination of Schwann cells. Furthermore, NGCs fabricated from A-PUAT increased the proportion of pro-healing macrophages and improved peripheral nerve regeneration in a rat model of sciatic nerve injury. In conclusion, this study demonstrated the potential application of NGCs in peripheral nerve regeneration from an immunomodulatory perspective and revealed A-PUAT as a clinically-actionable strategy for peripheral nerve injury.


Asunto(s)
Macrófagos , Regeneración Nerviosa , Traumatismos de los Nervios Periféricos , Poliuretanos , Ratas Sprague-Dawley , Células de Schwann , Animales , Regeneración Nerviosa/efectos de los fármacos , Poliuretanos/química , Ratas , Macrófagos/efectos de los fármacos , Células de Schwann/efectos de los fármacos , Nanofibras/química , Nervio Ciático/efectos de los fármacos , Regeneración Tisular Dirigida/métodos , Masculino , Materiales Biocompatibles/química , Materiales Biocompatibles/farmacología , Andamios del Tejido/química , Ratones , Células RAW 264.7
4.
Biotechnol J ; 19(5): e2300734, 2024 May.
Artículo en Inglés | MEDLINE | ID: mdl-38719571

RESUMEN

Self-assembly of biological elements into biomimetic cargo carriers for targeting and delivery is a promising approach. However, it still holds practical challenges. We developed a functionalization approach of DNA origami (DO) nanostructures with neuronal growth factor (NGF) for manipulating neuronal systems. NGF bioactivity and its interactions with the neuronal system were demonstrated in vitro and in vivo models. The DO elements fabricated by molecular self-assembly have manipulated the surrounding environment through static spatially and temporally controlled presentation of ligands to the cell surface receptors. Our data showed effective bioactivity in differentiating PC12 cells in vitro. Furthermore, the DNA origami NGF (DON) affected the growth directionality and spatial capabilities of dorsal root ganglion neurons in culture by introducing a chemotaxis effect along a gradient of functionalized DO structures. Finally, we showed that these elements provide enhanced axonal regeneration in a rat sciatic nerve injury model in vivo. This study is a proof of principle for the functionality of DO in neuronal manipulation and regeneration. The approach proposed here, of an engineered platform formed out of programmable nanoscale elements constructed of DO, could be extended beyond the nervous system and revolutionize the fields of regenerative medicine, tissue engineering, and cell biology.


Asunto(s)
ADN , Ganglios Espinales , Factor de Crecimiento Nervioso , Regeneración Nerviosa , Animales , Ratas , Células PC12 , ADN/química , Ganglios Espinales/citología , Factor de Crecimiento Nervioso/química , Factor de Crecimiento Nervioso/farmacología , Nanoestructuras/química , Neuronas , Nervio Ciático , Andamios del Tejido/química , Ratas Sprague-Dawley
5.
Artículo en Inglés | MEDLINE | ID: mdl-38723788

RESUMEN

The extracellular matrix (ECM) is a dynamic and complex network of proteins and molecules that surrounds cells and tissues in the nervous system and orchestrates a myriad of biological functions. This review carefully examines the diverse interactions between cells and the ECM, as well as the transformative chemical and physical changes that the ECM undergoes during neural development, aging, and disease. These transformations play a pivotal role in shaping tissue morphogenesis and neural activity, thereby influencing the functionality of the central nervous system (CNS). In our comprehensive review, we describe the diverse behaviors of the CNS ECM in different physiological and pathological scenarios and explore the unique properties that make ECM-based strategies attractive for CNS repair and regeneration. Addressing the challenges of scalability, variability, and integration with host tissues, we review how advanced natural, synthetic, and combinatorial matrix approaches enhance biocompatibility, mechanical properties, and functional recovery. Overall, this review highlights the potential of decellularized ECM as a powerful tool for CNS modeling and regenerative purposes and sets the stage for future research in this exciting field. This article is categorized under: Implantable Materials and Surgical Technologies > Nanotechnology in Tissue Repair and Replacement Therapeutic Approaches and Drug Discovery > Nanomedicine for Neurological Disease Implantable Materials and Surgical Technologies > Nanomaterials and Implants.


Asunto(s)
Matriz Extracelular , Medicina Regenerativa , Humanos , Matriz Extracelular/metabolismo , Animales , Ingeniería de Tejidos , Sistema Nervioso Central , Regeneración Nerviosa
6.
Invest Ophthalmol Vis Sci ; 65(5): 3, 2024 May 01.
Artículo en Inglés | MEDLINE | ID: mdl-38691090

RESUMEN

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.


Asunto(s)
Microglía , Regeneración Nerviosa , Plasticidad Neuronal , Traumatismos del Nervio Óptico , Células Ganglionares de la Retina , Pez Cebra , Animales , Microglía/fisiología , Regeneración Nerviosa/fisiología , Traumatismos del Nervio Óptico/fisiopatología , Plasticidad Neuronal/fisiología , Células Ganglionares de la Retina/fisiología , Estimulación Luminosa , Modelos Animales de Enfermedad , Nervio Óptico/fisiología , Axones/fisiología , Reacción en Cadena en Tiempo Real de la Polimerasa
7.
Invest Ophthalmol Vis Sci ; 65(5): 8, 2024 May 01.
Artículo en Inglés | MEDLINE | ID: mdl-38700874

RESUMEN

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.


Asunto(s)
Proliferación Celular , Estrés del Retículo Endoplásmico , Epitelio Corneal , Regeneración Nerviosa , Receptores Inmunológicos , Proteínas Roundabout , Transducción de Señal , Cicatrización de Heridas , Animales , Humanos , Ratones , Western Blotting , Movimiento Celular/fisiología , Células Cultivadas , Estrés del Retículo Endoplásmico/fisiología , Ensayo de Inmunoadsorción Enzimática , Epitelio Corneal/metabolismo , Limbo de la Córnea/citología , Regeneración Nerviosa/fisiología , Proteínas del Tejido Nervioso/genética , Proteínas del Tejido Nervioso/metabolismo , Receptores de Superficie Celular/metabolismo , Receptores de Superficie Celular/genética , Receptores Inmunológicos/genética , Receptores Inmunológicos/metabolismo , Transducción de Señal/fisiología , Cicatrización de Heridas/fisiología
8.
Cell Stem Cell ; 31(5): 585-586, 2024 May 02.
Artículo en Inglés | MEDLINE | ID: mdl-38701752

RESUMEN

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.


Asunto(s)
Traumatismos de la Médula Espinal , Médula Espinal , Humanos , Traumatismos de la Médula Espinal/terapia , Animales , Recién Nacido , Matriz Extracelular/metabolismo , Adulto , Regeneración Nerviosa
9.
Artículo en Inglés | MEDLINE | ID: mdl-38740385

RESUMEN

Nervous system injuries, encompassing peripheral nerve injury (PNI), spinal cord injury (SCI), and traumatic brain injury (TBI), present significant challenges to patients' wellbeing. Traditional treatment approaches have limitations in addressing the complexity of neural tissue regeneration and require innovative solutions. Among emerging strategies, implantable materials, particularly electrospun drug-loaded scaffolds, have gained attention for their potential to simultaneously provide structural support and controlled release of therapeutic agents. This review provides a thorough exploration of recent developments in the design and application of electrospun drug-loaded scaffolds for nervous system repair. The electrospinning process offers precise control over scaffold characteristics, including mechanical properties, biocompatibility, and topography, crucial for creating a conducive environment for neural tissue regeneration. The large surface area of the resulting fibrous networks enhances biomolecule attachment, influencing cellular behaviors such as adhesion, proliferation, and migration. Polymeric electrospun materials demonstrate versatility in accommodating a spectrum of therapeutics, from small molecules to proteins. This enables tailored interventions to accelerate neuroregeneration and mitigate inflammation at the injury site. A critical aspect of this review is the examination of the interplay between structural properties and pharmacological effects, emphasizing the importance of optimizing both aspects for enhanced therapeutic outcomes. Drawing upon the latest advancements in the field, we discuss the promising outcomes of preclinical studies using electrospun drug-loaded scaffolds for nervous system repair, as well as future perspectives and considerations for their design and implementation. This article is categorized under: Implantable Materials and Surgical Technologies > Nanomaterials and Implants Implantable Materials and Surgical Technologies > Nanotechnology in Tissue Repair and Replacement Therapeutic Approaches and Drug Discovery > Emerging Technologies.


Asunto(s)
Regeneración Nerviosa , Andamios del Tejido , Humanos , Animales , Andamios del Tejido/química , Regeneración Nerviosa/efectos de los fármacos , Ingeniería de Tejidos , Sistemas de Liberación de Medicamentos
10.
Front Neuroendocrinol ; 73: 101136, 2024 Apr.
Artículo en Inglés | MEDLINE | ID: mdl-38670433

RESUMEN

Nestorone® (segesterone acetate) is a progestin with a chemical structure closely related to progesterone with high affinity and selectivity for the progesterone receptor without significant interaction with other steroid receptors. It has been developed for female and male contraception and is FDA-approved in a first long-acting contraceptive vaginal system for female contraception. Its safety has been extensively demonstrated in both preclinical and clinical studies for contraceptive indications. Nestorone was found to display neuroprotective and neuroregenerative activity in animal models of various central nervous system diseases, including multiple sclerosis, stroke, and amyotrophic lateral sclerosis. Reviewed herein are neuroprotective and myelin- regenerating properties of Nestorone in various animal models and its translational potential as a therapeutic agent for debilitating neurological diseases for which limited therapeutic options are available (Table 1).


Asunto(s)
Fármacos Neuroprotectores , Norprogesteronas , Animales , Humanos , Norprogesteronas/farmacología , Fármacos Neuroprotectores/farmacología , Regeneración Nerviosa/efectos de los fármacos , Regeneración Nerviosa/fisiología , Femenino
11.
Biofabrication ; 16(3)2024 May 09.
Artículo en Inglés | MEDLINE | ID: mdl-38565133

RESUMEN

Spinal cord injury (SCI) can cause permanent impairment to motor or sensory functions. Pre-cultured neural stem cell (NSC) hydrogel scaffolds have emerged as a promising approach to treat SCI by promoting anti-inflammatory effects, axon regrowth, and motor function restoration. Here, in this study, we performed a coaxial extrusion process to fabricate a core-shell hydrogel microfiber with high NSC density in the core portion. Oxidized hyaluronic acid, carboxymethyl chitosan, and matrigel blend were used as a matrix for NSC growth and to facilitate the fabrication process. During thein vitrodifferentiation culture, it was found that NSC microfibers could differentiate into neurons and astrocytes with higher efficiency compared to NSC cultured in petri dishes. Furthermore, duringin vivotransplantation, NSC microfibers were coated with polylactic acid nanosheets by electrospinning for reinforcement. The coated NSC nanofibers exhibited higher anti-inflammatory effect and lesion cavity filling rate compared with the control group. Meanwhile, more neuron- and oligodendrocyte-like cells were visualized at the lesion epicenter. Finally, axon regrowth across the whole lesion site was observed, demonstrating that the microfiber could guide renascent axon regrowth. Experiment results indicate that the NSC microfiber is a promising bioactive treatment for complete SCI treatment with superior outcomes.


Asunto(s)
Axones , Diferenciación Celular , Células-Madre Neurales , Neuronas , Traumatismos de la Médula Espinal , Andamios del Tejido , Animales , Células-Madre Neurales/efectos de los fármacos , Células-Madre Neurales/citología , Células-Madre Neurales/metabolismo , Traumatismos de la Médula Espinal/terapia , Traumatismos de la Médula Espinal/patología , Axones/efectos de los fármacos , Axones/fisiología , Axones/metabolismo , Diferenciación Celular/efectos de los fármacos , Neuronas/citología , Neuronas/efectos de los fármacos , Andamios del Tejido/química , Ratas Sprague-Dawley , Hidrogeles/química , Hidrogeles/farmacología , Quitosano/química , Quitosano/farmacología , Quitosano/análogos & derivados , Células Cultivadas , Regeneración Nerviosa/efectos de los fármacos , Nanofibras/química , Ratas , Femenino
12.
Biofabrication ; 16(3)2024 May 07.
Artículo en Inglés | MEDLINE | ID: mdl-38604162

RESUMEN

Peripheral nerve injuries can lead to sensory or motor deficits that have a serious impact on a patient's mental health and quality of life. Nevertheless, it remains a major clinical challenge to develop functional nerve conduits as an alternative to autologous grafts. We applied reduced graphene oxide (rGO) as a bioactive conductive material to impart electrophysiological properties to a 3D printed scaffold and the application of a pulsed magnetic field to excite the formation of microcurrents and induce nerve regeneration.In vitrostudies showed that the nerve scaffold and the pulsed magnetic field made no effect on cell survival, increased S-100ßprotein expression, enhanced cell adhesion, and increased the expression level of nerve regeneration-related mRNAs.In vivoexperiments suggested that the protocol was effective in promoting nerve regeneration, resulting in functional recovery of sciatic nerves in rats, when they were damaged close to that of the autologous nerve graft, and increased expression of S-100ß, NF200, and GAP43. These results indicate that rGO composite nerve scaffolds combined with pulsed magnetic field stimulation have great potential for peripheral nerve rehabilitation.


Asunto(s)
Campos Electromagnéticos , Grafito , Regeneración Nerviosa , Impresión Tridimensional , Ratas Sprague-Dawley , Nervio Ciático , Andamios del Tejido , Animales , Grafito/química , Nervio Ciático/fisiología , Nervio Ciático/lesiones , Regeneración Nerviosa/efectos de los fármacos , Andamios del Tejido/química , Ratas , Masculino
13.
Artículo en Chino | MEDLINE | ID: mdl-38686479

RESUMEN

This study reviews the latest progress on the research of electrical stimulation(ES) in peripheral nerve regeneration, summarizes the parameters in preclinical experiments and discusses the effect on nerve regeneration. A detailed description is given in the study of conditioning electrical stimulation and nerve conduit scaffolding technology combined with ES, which have been hotly researched in recent years.


Asunto(s)
Estimulación Eléctrica , Regeneración Nerviosa , Nervios Periféricos , Estimulación Eléctrica/métodos , Nervios Periféricos/fisiología , Animales , Traumatismos de los Nervios Periféricos/terapia , Humanos , Andamios del Tejido , Terapia por Estimulación Eléctrica/métodos
14.
Int J Biol Macromol ; 267(Pt 2): 131520, 2024 May.
Artículo en Inglés | MEDLINE | ID: mdl-38615859

RESUMEN

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.


Asunto(s)
Gelatina , Ácido Hialurónico , Janus Quinasa 2 , Enfermedades Neuroinflamatorias , Recuperación de la Función , Traumatismos de la Médula Espinal , Traumatismos de la Médula Espinal/tratamiento farmacológico , Traumatismos de la Médula Espinal/metabolismo , Animales , Ratones , Recuperación de la Función/efectos de los fármacos , Ácido Hialurónico/química , Ácido Hialurónico/farmacología , Enfermedades Neuroinflamatorias/tratamiento farmacológico , Gelatina/química , Gelatina/farmacología , Janus Quinasa 2/metabolismo , Dextranos/química , Andamios del Tejido/química , Microesferas , Factor de Transcripción STAT3/metabolismo , Microglía/efectos de los fármacos , Microglía/metabolismo , Regeneración Nerviosa/efectos de los fármacos , Metaloproteinasa 9 de la Matriz/metabolismo , Modelos Animales de Enfermedad , Neurogénesis/efectos de los fármacos , Transducción de Señal/efectos de los fármacos , Metaloproteinasa 2 de la Matriz/metabolismo , Hidrogeles/química , Hidrogeles/farmacología
15.
J Nanobiotechnology ; 22(1): 194, 2024 Apr 20.
Artículo en Inglés | MEDLINE | ID: mdl-38643117

RESUMEN

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.


Asunto(s)
Regeneración Nerviosa , Nervios Periféricos , Regeneración Nerviosa/fisiología , Nervios Periféricos/fisiología , Neuritas/fisiología , Axones/fisiología , Neuronas
16.
Stem Cell Res Ther ; 15(1): 114, 2024 Apr 23.
Artículo en Inglés | MEDLINE | ID: mdl-38650015

RESUMEN

BACKGROUND: Spinal cord injury (SCI) is an intractable neurological disease in which functions cannot be permanently restored due to nerve damage. Stem cell therapy is a promising strategy for neuroregeneration after SCI. However, experimental evidence of its therapeutic effect in SCI is lacking. This study aimed to investigate the efficacy of transplanted cells using stepwise combined cell therapy with human mesenchymal stem cells (hMSC) and induced pluripotent stem cell (iPSC)-derived motor neuron progenitor cells (iMNP) in a rat model of SCI. METHODS: A contusive SCI model was developed in Sprague-Dawley rats using multicenter animal spinal cord injury study (MASCIS) impactor. Three protocols were designed and conducted as follows: (Subtopic 1) chronic SCI + iMNP, (Subtopic 2) acute SCI + multiple hMSC injections, and (Main topic) chronic SCI + stepwise combined cell therapy using multiple preemptive hMSC and iMNP. Neurite outgrowth was induced by coculturing hMSC and iPSC-derived motor neuron (iMN) on both two-dimensional (2D) and three-dimensional (3D) spheroid platforms during mature iMN differentiation in vitro. RESULTS: Stepwise combined cell therapy promoted mature motor neuron differentiation and axonal regeneration at the lesional site. In addition, stepwise combined cell therapy improved behavioral recovery and was more effective than single cell therapy alone. In vitro results showed that hMSC and iMN act synergistically and play a critical role in the induction of neurite outgrowth during iMN differentiation and maturation. CONCLUSIONS: Our findings show that stepwise combined cell therapy can induce alterations in the microenvironment for effective cell therapy in SCI. The in vitro results suggest that co-culturing hMSC and iMN can synergistically promote induction of MN neurite outgrowth.


Asunto(s)
Diferenciación Celular , Células Madre Pluripotentes Inducidas , Trasplante de Células Madre Mesenquimatosas , Células Madre Mesenquimatosas , Neuronas Motoras , Ratas Sprague-Dawley , Traumatismos de la Médula Espinal , Traumatismos de la Médula Espinal/terapia , Animales , Células Madre Pluripotentes Inducidas/citología , Trasplante de Células Madre Mesenquimatosas/métodos , Neuronas Motoras/citología , Ratas , Células Madre Mesenquimatosas/citología , Células Madre Mesenquimatosas/metabolismo , Humanos , Modelos Animales de Enfermedad , Regeneración Nerviosa
17.
Exp Neurol ; 376: 114774, 2024 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-38599367

RESUMEN

Peripheral nerve injury (PNI) resulting from trauma or neuropathies can cause significant disability, and its prognosis deteriorates with age. Emerging evidence suggests that gut dysbiosis and reduced fecal short-chain fatty acids (SCFAs) contribute to an age-related systemic hyperinflammation (inflammaging), which hinders nerve recovery after injury. This study thus aimed to evaluate the pro-regenerative effects of a rejuvenating fecal microbiota transplant (FMT) in a preclinical PNI model using aged mice. Aged C57BL/6 mice underwent bilateral crush injuries to their sciatic nerves. Subsequently, they either received FMT from young donors at three and four days after the injury or retained their aged gut microbiota. We analyzed gut microbiome composition and SCFA concentrations in fecal samples. The integrity of the ileac mucosal barrier was assessed by immunofluorescence staining of Claudin-1. Flow cytometry was utilized to examine immune cells and cytokine production in the ileum, spleen, and sciatic nerve. Various assessments, including behavioural tests, electrophysiological studies, and morphometrical analyses, were conducted to evaluate peripheral nerve function and repair following injury. Rejuvenating FMT reversed age-related gut dysbiosis by increasing Actinobacteria, especially Bifidobacteriales genera. This intervention also led to an elevation of gut SCFA levels and mitigated age-related ileac mucosal leakiness in aged recipients. Additionally, it augmented the number of T-helper 2 (Th2) and regulatory T (Treg) cells in the ileum and spleen, with the majority being positive for anti-inflammatory interleukin-10 (IL-10). In sciatic nerves, rejuvenating FMT resulted in increased M2 macrophage counts and a higher IL-10 production by IL-10+TNF-α- M2 macrophage subsets. Ultimately, restoring a youthful gut microbiome in aged mice led to improved nerve repair and enhanced functional recovery after PNI. Considering that FMT is already a clinically available technique, exploring novel translational strategies targeting the gut microbiome to enhance nerve repair in the elderly seems promising and warrants further evaluation.


Asunto(s)
Envejecimiento , Trasplante de Microbiota Fecal , Microbioma Gastrointestinal , Ratones Endogámicos C57BL , Regeneración Nerviosa , Animales , Ratones , Trasplante de Microbiota Fecal/métodos , Microbioma Gastrointestinal/fisiología , Regeneración Nerviosa/fisiología , Masculino , Traumatismos de los Nervios Periféricos/terapia , Inflamación/metabolismo , Inflamación/terapia , Disbiosis/terapia , Nervio Ciático/lesiones
18.
Cell Commun Signal ; 22(1): 236, 2024 Apr 22.
Artículo en Inglés | MEDLINE | ID: mdl-38650003

RESUMEN

BACKGROUND: The preservation of retinal ganglion cells (RGCs) and the facilitation of axon regeneration are crucial considerations in the management of various vision-threatening disorders. Therefore, we investigate the efficacy of interleukin-4 (IL-4), a potential therapeutic agent, in promoting neuroprotection and axon regeneration of retinal ganglion cells (RGCs) as identified through whole transcriptome sequencing in an in vitro axon growth model. METHODS: A low concentration of staurosporine (STS) was employed to induce in vitro axon growth. Whole transcriptome sequencing was utilized to identify key target factors involved in the molecular mechanism underlying axon growth. The efficacy of recombinant IL-4 protein on promoting RGC axon growth was validated through in vitro experiments. The protective effect of recombinant IL-4 protein on somas of RGCs was assessed using RBPMS-specific immunofluorescent staining in mouse models with optic nerve crush (ONC) and N-methyl-D-aspartic acid (NMDA) injury. The protective effect on RGC axons was evaluated by anterograde labeling of cholera toxin subunit B (CTB), while the promotion of RGC axon regeneration was assessed through both anterograde labeling of CTB and immunofluorescent staining for growth associated protein-43 (GAP43). RESULTS: Whole-transcriptome sequencing of staurosporine-treated 661 W cells revealed a significant upregulation in intracellular IL-4 transcription levels during the process of axon regeneration. In vitro experiments demonstrated that recombinant IL-4 protein effectively stimulated axon outgrowth. Subsequent immunostaining with RBPMS revealed a significantly higher survival rate of RGCs in the rIL-4 group compared to the vehicle group in both NMDA and ONC injury models. Axonal tracing with CTB confirmed that recombinant IL-4 protein preserved long-distance projection of RGC axons, and there was a notably higher number of surviving axons in the rIL-4 group compared to the vehicle group following NMDA-induced injury. Moreover, intravitreal delivery of recombinant IL-4 protein substantially facilitated RGC axon regeneration after ONC injury. CONCLUSION: The recombinant IL-4 protein exhibits the potential to enhance the survival rate of RGCs, protect RGC axons against NMDA-induced injury, and facilitate axon regeneration following ONC. This study provides an experimental foundation for further investigation and development of therapeutic agents aimed at protecting the optic nerve and promoting axon regeneration.


Asunto(s)
Axones , Interleucina-4 , Regeneración Nerviosa , Células Ganglionares de la Retina , Células Ganglionares de la Retina/efectos de los fármacos , Células Ganglionares de la Retina/metabolismo , Animales , Interleucina-4/farmacología , Axones/efectos de los fármacos , Axones/metabolismo , Regeneración Nerviosa/efectos de los fármacos , Ratones , Ratones Endogámicos C57BL , Traumatismos del Nervio Óptico/patología , Traumatismos del Nervio Óptico/tratamiento farmacológico , N-Metilaspartato/farmacología , Estaurosporina/farmacología , Fármacos Neuroprotectores/farmacología , Proteínas Recombinantes/farmacología
19.
Life Sci ; 346: 122640, 2024 Jun 01.
Artículo en Inglés | MEDLINE | ID: mdl-38614302

RESUMEN

Neural tissue engineering is a sub-field of tissue engineering that develops neural tissue. Damaged central and peripheral nervous tissue can be fabricated with a suitable scaffold printed with biomaterials. These scaffolds promote cell growth, development, and migration, yet they vary according to the biomaterial and scaffold printing technique, which determine the physical and biochemical properties. The physical and biochemical properties of scaffolds stimulate diverse signalling pathways, such as Wnt, NOTCH, Hedgehog, and ion channels- mediated pathways to promote neuron migration, elongation and migration. However, neurotransmitters like dopamine, acetylcholine, gamma amino butyric acid, and other signalling molecules are critical in neural tissue engineering to tissue fabrication. Thus, this review focuses on neural tissue regeneration with a tissue engineering approach highlighting the signalling pathways. Further, it explores the interaction of the scaffolds with the signalling pathways for generating neural tissue.


Asunto(s)
Transducción de Señal , Ingeniería de Tejidos , Andamios del Tejido , Ingeniería de Tejidos/métodos , Humanos , Animales , Andamios del Tejido/química , Materiales Biocompatibles , Tejido Nervioso/metabolismo , Regeneración Nerviosa/fisiología , Neuronas/metabolismo
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