Search results for "Central nervous"

showing 10 items of 899 documents

Oxytosis/Ferroptosis—(Re-) Emerging Roles for Oxidative Stress-Dependent Non-apoptotic Cell Death in Diseases of the Central Nervous System

2018

Although nerve cell death is the hallmark of many neurological diseases, the processes underlying this death are still poorly defined. However, there is a general consensus that neuronal cell death predominantly proceeds by regulated processes. Almost 30 years ago, a cell death pathway eventually named oxytosis was described in neuronal cells that involved glutathione depletion, reactive oxygen species production, lipoxygenase activation, and calcium influx. More recently, a cell death pathway that involved many of the same steps was described in tumor cells and termed ferroptosis due to a dependence on iron. Since then there has been a great deal of discussion in the literature about wheth…

0301 basic medicineProgrammed cell deathCell typebrain diseasesCentral nervous systemReviewoxytosisBiologymedicine.disease_causelcsh:RC321-57103 medical and health sciencesironmedicineoxidative stresslcsh:Neurosciences. Biological psychiatry. Neuropsychiatryprogrammed cell deathchemistry.chemical_classificationReactive oxygen speciesGeneral NeuroscienceFerroptosisBrain Diseases ; Ferroptosis ; Iron ; Oxidative Stress ; Oxytosis ; Programmed Cell Deathferroptosis030104 developmental biologymedicine.anatomical_structurechemistryApoptotic cell deathNeuroscienceCalcium influxOxidative stressNeuroscienceFrontiers in Neuroscience
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Protective function of autophagy during VLCFA-induced cytotoxicity in a neurodegenerative cell model

2019

Abstract In recent years, a particular interest has focused on the accumulation of fatty acids with very long chains (VLCFA) in the occurrence of neurodegenerative diseases such as Alzheimer's disease, multiple sclerosis or dementia. Indeed, it seems increasingly clear that this accumulation of VLCFA in the central nervous system is accompanied by a progressive demyelination resulting in death of neuronal cells. Nevertheless, molecular mechanisms by which VLCFA result in toxicity remain unclear. This study highlights for the first time in 3 different cellular models (oligodendrocytes 158 N, primary mouse brain culture, and patient fibroblasts) the types of cell death involved where VLCFA-in…

0301 basic medicineProgrammed cell deathendocrine system diseases[SDV]Life Sciences [q-bio]Very long chain fatty acidCellCentral nervous systemBiologymedicine.disease_causeBiochemistry03 medical and health scienceschemistry.chemical_compoundMice0302 clinical medicinePhysiology (medical)medicineAutophagyAnimalsHumansCells CulturedNeuronsMice Inbred BALB CCell DeathMultiple sclerosisAutophagyFatty AcidsBrainNeurodegenerative DiseasesFibroblastsmedicine.disease3. Good healthCell biologyOligodendrogliaOxidative Stress030104 developmental biologymedicine.anatomical_structurechemistryLipotoxicityReactive Oxygen Species030217 neurology & neurosurgeryOxidative stress
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Neuroprotective effects of physical activity via the adaptation of astrocytes

2021

The multifold benefits of regular physical exercise have been largely demonstrated in human and animal models. Several studies have reported the beneficial effects of physical activity, both in peripheral tissues and in the central nervous system (CNS). Regular exercise improves cognition, brain plasticity, neurogenesis and reduces the symptoms of neurodegenerative diseases, making timeless the principle of “mens sana in corpore sano” (i.e., a healthy mind in a healthy body). Physical exercise promotes morphological and functional changes in the brain, acting not only in neurons but also in astrocytes, which represent the most numerous glial cells in the brain. The multiple effects of exerc…

0301 basic medicineQH301-705.5NeurogenesisCentral nervous systemPhysical exerciseReviewNeuroprotection03 medical and health sciences0302 clinical medicinePhysical Conditioning AnimalNeuroplasticityMedicineAnimalsHumansBiology (General)ExerciseNeuronsNeuronal Plasticitybusiness.industryNeurogenesisBrainGeneral MedicineNeuronAdaptation PhysiologicalBrain functions030104 developmental biologymedicine.anatomical_structureAstrocytesCatecholamineNeuronbusinessNeuroscience030217 neurology & neurosurgeryAstrocytemedicine.drug
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Active behaviour during early development shapes glucocorticoid reactivity.

2019

AbstractGlucocorticoids are the final effectors of the stress axis, with numerous targets in the central nervous system and the periphery. They are essential for adaptation, yet currently it is unclear how early life events program the glucocorticoid response to stress. Here we provide evidence that involuntary swimming at early developmental stages can reconfigure the cortisol response to homotypic and heterotypic stress in larval zebrafish (Danio rerio), also reducing startle reactivity and increasing spontaneous activity as well as energy efficiency during active behaviour. Collectively, these data identify a role of the genetically malleable zebrafish for linking early life stress with …

0301 basic medicineReflex StartleEmbryo NonmammalianCentral nervous systemDaniolcsh:MedicineNeurophysiologyBiologyArticle03 medical and health sciences0302 clinical medicineStress PhysiologicalDevelopmental biologymedicineAnimalslcsh:ScienceReactivity (psychology)ZebrafishGlucocorticoidsSwimmingZebrafishQLMultidisciplinaryEffectorlcsh:Rfungibiology.organism_classification030104 developmental biologymedicine.anatomical_structurelcsh:QNeurophysiology ; Developmental biologyAdaptationNeuroscience030217 neurology & neurosurgeryFunction (biology)Glucocorticoidmedicine.drugScientific reports
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Sox8 and Sox10 jointly maintain myelin gene expression in oligodendrocytes

2017

In Schwann cells of the vertebrate peripheral nervous system, induction of myelination and myelin maintenance both depend on the HMG-domain-containing transcription factor Sox10. In oligodendrocytes of the central nervous system, Sox10 is also essential for the induction of myelination. Its role in late phases of myelination and myelin maintenance has not been studied so far. Here, we show that these processes are largely unaffected in mice that lack Sox10 in mature oligodendrocytes. As Sox10 is co-expressed with the related Sox8, we also analyzed oligodendrocytes and myelination in Sox8-deficient mice. Again, we could not detect any major abnormalities. Expression of many myelin genes was …

0301 basic medicineSOX10Central nervous systemGene ExpressionBiologyMice03 medical and health sciencesCellular and Molecular NeuroscienceMyelin0302 clinical medicineGene expressionmedicineAnimalsHumansCell LineageGeneMyelin SheathMice KnockoutSOXE Transcription FactorsHEK 293 cellsOligodendrocyteOligodendrogliaHEK293 Cells030104 developmental biologymedicine.anatomical_structurenervous systemNeurologyMyelin maintenanceembryonic structuresSchwann CellsNeuroscience030217 neurology & neurosurgeryHeLa CellsGlia
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Antioxidant Alternatives in the Treatment of Amyotrophic Lateral Sclerosis: A Comprehensive Review

2020

Amyotrophic lateral sclerosis (ALS) is a neurodegenerative disease that produces a selective loss of the motor neurons of the spinal cord, brain stem and motor cortex. Oxidative stress (OS) associated with mitochondrial dysfunction and the deterioration of the electron transport chain has been shown to be a factor that contributes to neurodegeneration and plays a potential role in the pathogenesis of ALS. The regions of the central nervous system affected have high levels of reactive oxygen species (ROS) and reduced antioxidant defences. Scientific studies propose treatment with antioxidants to combat the characteristic OS and the regeneration of nicotinamide adenine dinucleotide (NAD+) lev…

0301 basic medicineamyotrophic lateral sclerosispterostilbenePterostilbenePhysiologyCentral nervous systemReviewPharmacologyNicotinamide adenine dinucleotidemedicine.disease_causelcsh:Physiology03 medical and health scienceschemistry.chemical_compound0302 clinical medicinePhysiology (medical)mitochondrial dysfunctionmedicineoxidative stressneurodegenerative diseasesAmyotrophic lateral sclerosisnicotinamide ribosidelcsh:QP1-981business.industryNeurodegenerationmedicine.disease030104 developmental biologymedicine.anatomical_structurechemistryNicotinamide ribosideNAD+ kinasebusiness030217 neurology & neurosurgeryOxidative stressFrontiers in Physiology
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MicroRNAs Dysregulation and Metabolism in Multiple System Atrophy.

2019

Multiple system atrophy (MSA) is an adult onset, fatal disease, characterized by an accumulation of alpha-synuclein (α-syn) in oligodendroglial cells. MicroRNAs (miRNAs) are small non-coding RNAs involved in post-translational regulation and several biological processes. Disruption of miRNA-related pathways in the central nervous system (CNS) plays an important role in the pathogenesis of neurodegenerative diseases, including MSA. While the exact mechanisms underlying miRNAs in the pathogenesis of MSA remain unclear, it is known that miRNAs can repress the translation of messenger RNAs (mRNAs) that regulate the following pathogenesis associated with MSA: autophagy, neuroinflammation, α-syn …

0301 basic medicineautophagyalpha-synucleinCentral nervous systemmultiple system atrophyReviewBiologylcsh:RC321-571neuroinflammationPathogenesis03 medical and health scienceschemistry.chemical_compound0302 clinical medicineAtrophystomatognathic systemmicroRNAmental disordersmedicinelcsh:Neurosciences. Biological psychiatry. NeuropsychiatryNeuroinflammationAlpha-synucleinmicroRNAGeneral NeuroscienceAutophagyTranslation (biology)medicine.diseaseCell biologynervous system diseases030104 developmental biologymedicine.anatomical_structurechemistrynervous system030217 neurology & neurosurgeryNeuroscienceFrontiers in neuroscience
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Extrinsic and intrinsic mechanisms of axon regeneration: the need for spinal cord injury treatment strategies to address both

2016

Spinal cord injury (SCI) causes disturbances in motor and sensory functions leading to paralysis, the severity of which depends on the spinal level of the injury. Traumatic lesions of spinal cord axon projection tracts are untreatable in human patients, although numerous research groups worldwide are studying putative treatment strategies. Both extrinsic factors in the environment of the axons as well as intrinsic factors in the neurons themselves play important roles in the regeneration process (Chew et al., 2012). The peripheral nervous system (PNS) provides a good example where the extrinsic and intrinsic factors play optimally together to allow regeneration. Schwann cells dedifferentiat…

0301 basic medicinebusiness.industryRegeneration (biology)Central nervous systemInhibitory postsynaptic potentialmedicine.diseaseSpinal cordlcsh:RC346-42903 medical and health sciences030104 developmental biology0302 clinical medicinemedicine.anatomical_structurenervous systemDevelopmental NeurosciencePeripheral nervous systemPerspectivemedicineAxonbusinessGrowth coneSpinal cord injuryNeurosciencelcsh:Neurology. Diseases of the nervous system030217 neurology & neurosurgeryNeural Regeneration Research
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Human Mesenchymal Stem Cells Prevent Neurological Complications of Radiotherapy

2019

Radiotherapy is a highly effective tool for the treatment of brain cancer. However, radiation also causes detrimental effects in the healthy tissue, leading to neurocognitive sequelae that compromise the quality of life of brain cancer patients. Despite the recognition of this serious complication, no satisfactory solutions exist at present. Here we investigated the effects of intranasal administration of human mesenchymal stem cells (hMSCs) as a neuroprotective strategy for cranial radiation in mice. Our results demonstrated that intranasally delivered hMSCs promote radiation-induced brain injury repair, improving neurological function. This intervention confers protection against inflamma…

0301 basic medicinecognitionmedicine.medical_treatmentneurocognitive sequelaeStem cellsBioinformaticsBrain cancer0302 clinical medicineCognitionOriginal ResearchCREBNeuroprotección:Analytical Diagnostic and Therapeutic Techniques and Equipment::Therapeutics::Radiotherapy [Medical Subject Headings]Neurocognitive sequelaeNeuroprotectionneuroprotectionmedicine.symptomStem cellCélulas madreNeoplasias encefálicas:Diseases::Neoplasms::Neoplasms by Site::Nervous System Neoplasms::Central Nervous System Neoplasms::Brain Neoplasms [Medical Subject Headings]Brain tumorInflammationNeuroprotectionlcsh:RC321-57103 medical and health sciencesCellular and Molecular NeuroscienceRadioterapiastem cellsmedicinelcsh:Neurosciences. Biological psychiatry. Neuropsychiatry:Chemicals and Drugs::Enzymes and Coenzymes::Enzymes::Transferases::Acyltransferases::Acetyltransferases::p300-CBP Transcription Factors::CREB-Binding Protein [Medical Subject Headings]radiotherapybrain cancerCogniciónRadiotherapybusiness.industryMesenchymal stem cellmedicine.diseaseequipment and suppliesIntranasal cell deliveryRadiation therapy030104 developmental biology:Anatomy::Cells::Stem Cells [Medical Subject Headings]Nasal administrationbusinessNeurocognitive030217 neurology & neurosurgeryintranasal cell deliveryNeuroscienceFrontiers in Cellular Neuroscience
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Use of Stem Cell Extracellular Vesicles as a “Holistic” Approach to CNS Repair

2020

Neurodegeneration is a hallmark of many diseases and disorders of the central nervous system (CNS). High levels of neuroinflammation are often associated with irreparable damage to CNS cells due to the dysregulation of signaling cascades that are unable to restore a homeostatic balance. Due to the inherent complexity of the CNS, development of CNS-related therapeutics has met limited success. While stem cell therapy has been evaluated in the context of CNS repair, the mechanisms responsible for their functional properties have not been clearly defined. In recent years, there has been growing interest in the use of stem cell extracellular vesicles (EVs) for the treatment of various CNS patho…

0301 basic medicineinduced pluripotent stem cellsmedicine.medical_treatmentContext (language use)ReviewexosomesBiologyNeuroprotectionCell and Developmental Biology03 medical and health sciences0302 clinical medicinemedicineInduced pluripotent stem celllcsh:QH301-705.5Neuroinflammationmesenchymal stem cellsMesenchymal stem cellCell BiologyStem-cell therapycentral nervous systemMicrovesicles030104 developmental biologylcsh:Biology (General)030220 oncology & carcinogenesisStem cellextracellular vesiclesNeuroscienceDevelopmental BiologyFrontiers in Cell and Developmental Biology
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