1.Autophagy in Oligodendrocyte Lineage Cells Controls Oligodendrocyte Numbers and Myelin Integrity in an Age-dependent Manner.
Hong CHEN ; Gang YANG ; De-En XU ; Yu-Tong DU ; Chao ZHU ; Hua HU ; Li LUO ; Lei FENG ; Wenhui HUANG ; Yan-Yun SUN ; Quan-Hong MA
Neuroscience Bulletin 2025;41(3):374-390
Oligodendrocyte lineage cells, including oligodendrocyte precursor cells (OPCs) and oligodendrocytes (OLs), are essential in establishing and maintaining brain circuits. Autophagy is a conserved process that keeps the quality of organelles and proteostasis. The role of autophagy in oligodendrocyte lineage cells remains unclear. The present study shows that autophagy is required to maintain the number of OPCs/OLs and myelin integrity during brain aging. Inactivation of autophagy in oligodendrocyte lineage cells increases the number of OPCs/OLs in the developing brain while exaggerating the loss of OPCs/OLs with brain aging. Inactivation of autophagy in oligodendrocyte lineage cells impairs the turnover of myelin basic protein (MBP). It causes MBP to accumulate in the cytoplasm as multimeric aggregates and fails to be incorporated into integral myelin, which is associated with attenuated endocytic recycling. Inactivation of autophagy in oligodendrocyte lineage cells impairs myelin integrity and causes demyelination. Thus, this study shows autophagy is required to maintain myelin quality during aging by controlling the turnover of myelin components.
Animals
;
Autophagy/physiology*
;
Oligodendroglia/metabolism*
;
Myelin Sheath/physiology*
;
Aging/pathology*
;
Myelin Basic Protein/metabolism*
;
Cell Lineage/physiology*
;
Mice
;
Oligodendrocyte Precursor Cells
;
Mice, Inbred C57BL
;
Brain/cytology*
;
Cells, Cultured
;
Cell Count
2.Oligodendrocyte Precursor Cell-Specific HMGB1 Knockout Reduces Immune Cell Infiltration and Demyelination in Experimental Autoimmune Encephalomyelitis Models.
Gyuree KIM ; JiHye SEO ; Bokyung KIM ; Young-Ho PARK ; Hong Jun LEE ; Fuzheng GUO ; Dong-Seok LEE
Neuroscience Bulletin 2025;41(7):1145-1160
Infiltration and activation of peripheral immune cells are critical in the progression of multiple sclerosis and its experimental animal model, experimental autoimmune encephalomyelitis (EAE). This study investigates the role of high mobility group box 1 (HMGB1) in oligodendrocyte precursor cells (OPCs) in modulating pathogenic T cells infiltrating the central nervous system through the blood-brain barrier (BBB) by using OPC-specific HMGB1 knockout (KO) mice. We found that HMGB1 released from OPCs promotes BBB disruption, subsequently allowing increased immune cell infiltration. The migration of CD4+ T cells isolated from EAE-induced mice was enhanced when co-cultured with OPCs compared to oligodendrocytes (OLs). OPC-specific HMGB1 KO mice exhibited lower BBB permeability and reduced immune cell infiltration into the CNS, leading to less damage to the myelin sheath and mitigated EAE progression. CD4+ T cell migration was also reduced when co-cultured with HMGB1 knock-out OPCs. Our findings reveal that HMGB1 secretion from OPCs is crucial for regulating immune cell infiltration and provides insights into the immunomodulatory function of OPCs in autoimmune diseases.
Animals
;
Encephalomyelitis, Autoimmune, Experimental/metabolism*
;
HMGB1 Protein/deficiency*
;
Mice, Knockout
;
Oligodendrocyte Precursor Cells/immunology*
;
Mice, Inbred C57BL
;
CD4-Positive T-Lymphocytes/immunology*
;
Cell Movement
;
Blood-Brain Barrier/immunology*
;
Mice
;
Myelin Sheath/pathology*
;
Disease Models, Animal
;
Coculture Techniques
;
Oligodendroglia/metabolism*
;
Female
;
Cells, Cultured
3.Histopathological Insights into Demyelination and Remyelination After Spinal Cord Injury in Non-human Primates.
Junhao LIU ; Zucheng HUANG ; Kinon CHEN ; Rong LI ; Zhiping HUANG ; Junyu LIN ; Hui JIANG ; Jie LIU ; Qingan ZHU
Neuroscience Bulletin 2025;41(8):1429-1447
Demyelination and remyelination play key roles in spinal cord injury (SCI), affecting the recovery of motor and sensory functions. Research in rodent models is extensive, but the study of these processes in non-human primates is limited. Therefore, our goal was to thoroughly study the histological features of demyelination and remyelination after contusion injury of the cervical spinal cord in Macaca fascicularis. In a previous study, we created an SCI model in M. fascicularis by controlling the contusion displacement. We used Eriochrome Cyanine staining, immunohistochemical analysis, and toluidine blue staining to evaluate demyelination and remyelination. The results showed demyelination ipsilateral to the injury epicenter both rostrally and caudally, the former mainly impacting sensory pathways, while the latter primarily affected motor pathways. Toluidine blue staining showed myelin loss and axonal distension at the injury site. Schwann cell-derived myelin sheaths were only found at the center, while thinner myelin sheaths from oligodendrocytes were seen at the center and surrounding areas. Our study showed that long-lasting demyelination occurs in the spinal cord of M. fascicularis after SCI, with oligodendrocytes and Schwann cells playing a significant role in myelin sheath formation at the injury site.
Animals
;
Spinal Cord Injuries/physiopathology*
;
Demyelinating Diseases/etiology*
;
Remyelination/physiology*
;
Macaca fascicularis
;
Disease Models, Animal
;
Myelin Sheath/pathology*
;
Oligodendroglia/pathology*
;
Schwann Cells/pathology*
;
Female
;
Spinal Cord/pathology*
;
Axons/pathology*
4.Comprehensive therapeutics targeting the corticospinal tract following spinal cord injury.
An-Kai XU ; Zhe GONG ; Yu-Zhe HE ; Kai-Shun XIA ; Hui-Min TAO
Journal of Zhejiang University. Science. B 2019;20(3):205-218
Spinal cord injury (SCI), which is much in the public eye, is still a refractory disease compromising the well-being of both patients and society. In spite of there being many methods dealing with the lesion, there is still a deficiency in comprehensive strategies covering all facets of this damage. Further, we should also mention the structure called the corticospinal tract (CST) which plays a crucial role in the motor responses of organisms, and it will be the focal point of our attention. In this review, we discuss a variety of strategies targeting different dimensions following SCI and some treatments that are especially efficacious to the CST are emphasized. Over recent decades, researchers have developed many effective tactics involving five approaches: (1) tackle more extensive regions; (2) provide a regenerative microenvironment; (3) provide a glial microenvironment; (4) transplantation; and (5) other auxiliary methods, for instance, rehabilitation training and electrical stimulation. We review the basic knowledge on this disease and correlative treatments. In addition, some well-formulated perspectives and hypotheses have been delineated. We emphasize that such a multifaceted problem needs combinatorial approaches, and we analyze some discrepancies in past studies. Finally, for the future, we present numerous brand-new latent tactics which have great promise for curbing SCI.
Animals
;
Astrocytes/cytology*
;
Axons/physiology*
;
Cell Transplantation
;
Disease Models, Animal
;
Electric Stimulation
;
Humans
;
Microglia/cytology*
;
Motor Neurons/cytology*
;
Nerve Regeneration
;
Neuroglia/cytology*
;
Neuronal Plasticity
;
Neurons/cytology*
;
Oligodendroglia/cytology*
;
Pyramidal Tracts/pathology*
;
Recovery of Function
;
Regenerative Medicine/methods*
;
Spinal Cord Injuries/therapy*
5.AATYK is a Novel Regulator of Oligodendrocyte Differentiation and Myelination.
Chunxia JIANG ; Wanqing YANG ; Zhihong FAN ; Peng TENG ; Ruyi MEI ; Junlin YANG ; Aifen YANG ; Mengsheng QIU ; Xiaofeng ZHAO
Neuroscience Bulletin 2018;34(3):527-533
Oligodendrocytes (OLs) are myelinating glial cells that form myelin sheaths around axons to ensure rapid and focal conduction of action potentials. Here, we found that an axonal outgrowth regulatory molecule, AATYK (apoptosis-associated tyrosine kinase), was up-regulated with OL differentiation and remyelination. We therefore studied its role in OL differentiation. The results showed that AATYK knockdown inhibited OL differentiation and the expression of myelin genes in vitro. Moreover, AATYK-deficiency maintained the proliferation status of OLs but did not affect their survival. Thus, AATYK is essential for the differentiation of OLs.
Animals
;
Animals, Newborn
;
Apoptosis Regulatory Proteins
;
genetics
;
metabolism
;
Cell Differentiation
;
drug effects
;
physiology
;
Cell Proliferation
;
drug effects
;
genetics
;
Cells, Cultured
;
Cuprizone
;
toxicity
;
Demyelinating Diseases
;
chemically induced
;
metabolism
;
pathology
;
Embryo, Mammalian
;
Gene Expression Regulation, Developmental
;
genetics
;
Ki-67 Antigen
;
metabolism
;
Mice
;
Mice, Inbred C57BL
;
Myelin Basic Protein
;
metabolism
;
Myelin Proteolipid Protein
;
metabolism
;
Myelin Sheath
;
drug effects
;
metabolism
;
Oligodendroglia
;
drug effects
;
metabolism
;
Protein-Tyrosine Kinases
;
genetics
;
metabolism
;
RNA, Small Interfering
;
genetics
;
metabolism
;
Rats
;
Rats, Sprague-Dawley
6.An Experimental Infarct Targeting the Internal Capsule: Histopathological and Ultrastructural Changes.
Chang Woo HAN ; Kyung Hwa LEE ; Myung Giun NOH ; Jin Myung KIM ; Hyung Seok KIM ; Hyung Sun KIM ; Ra Gyung KIM ; Jongwook CHO ; Hyoung Ihl KIM ; Min Cheol LEE
Journal of Pathology and Translational Medicine 2017;51(3):292-305
BACKGROUND: Stroke involving the cerebral white matter (WM) has increased in prevalence, but most experimental studies have focused on ischemic injury of the gray matter. This study was performed to investigate the WM in a unique rat model of photothrombotic infarct targeting the posterior limb of internal capsule (PLIC), focusing on the identification of the most vulnerable structure in WM by ischemic injury, subsequent glial reaction to the injury, and the fundamental histopathologic feature causing different neurologic outcomes. METHODS: Light microscopy with immunohistochemical stains and electron microscopic examinations of the lesion were performed between 3 hours and 21 days post-ischemic injury. RESULTS: Initial pathological change develops in myelinated axon, concomitantly with reactive change of astrocytes. The first pathology to present is nodular loosening to separate the myelin sheath with axonal wrinkling. Subsequent pathologies include rupture of the myelin sheath with extrusion of axonal organelles, progressive necrosis, oligodendrocyte degeneration and death, and reactive gliosis. Increase of glial fibrillary acidic protein (GFAP) immunoreactivity is an early event in the ischemic lesion. WM pathologies result in motor dysfunction. Motor function recovery after the infarct was correlated to the extent of PLIC injury proper rather than the infarct volume. CONCLUSIONS: Pathologic changes indicate that the cerebral WM, independent of cortical neurons, is highly vulnerable to the effects of focal ischemia, among which myelin sheath is first damaged. Early increase of GFAP immunoreactivity indicates that astrocyte response initially begins with myelinated axonal injury, and supports the biologic role related to WM injury or plasticity. The reaction of astrocytes in the experimental model might be important for the study of pathogenesis and treatment of the WM stroke.
Astrocytes
;
Axons
;
Coloring Agents
;
Extremities
;
Glial Fibrillary Acidic Protein
;
Gliosis
;
Gray Matter
;
Internal Capsule*
;
Ischemia
;
Microscopy
;
Models, Animal
;
Models, Theoretical
;
Myelin Sheath
;
Necrosis
;
Neurons
;
Oligodendroglia
;
Organelles
;
Pathology
;
Plastics
;
Prevalence
;
Recovery of Function
;
Rupture
;
Stroke
;
White Matter
7.17β‑estradiol suppresses hyperoxia‑induced apoptosis of oligodendrocyte precursor cells through paired‑immunoglobulin‑like receptor B.
Chinese Journal of Contemporary Pediatrics 2016;18(7):650-655
OBJECTIVETo study the effect of hyperoxia and paired immunoglobin-like receptor B (PirB) on rat oligodendrocyte precursor cells (OPCs) in vivo and the neuroprotective effects of 17β-estradiol (E2) on these cells.
METHODSRat OPCs were treated with different concentrations of E2 and the cells were harvested for RT‑qPCR analysis at different time points. PriB was silenced with small interfering siRNA. The effects of E2 treatment and silencing of PriB on OPCs viability and apoptosis under hyperoxic stimulation were detected using 3‑(4,5‑dimethylthi‑azol‑2‑yl)‑2,5‑diphenyltetrazolium bromide (MTT) assay and flow cytometry analysis.
RESULTSHyperoxia induced apoptosis in OPCs and decreased their viability. E2 treatment markedly down-regulated the expression of PirB. E2 treatment or PirB silencing markedly decreased hyperoxia-induced apoptosis and increased cell viability in OPCs.
CONCLUSIONSE2 can protect OPCs from hyperoxia-induced apoptosis.
Animals ; Apoptosis ; drug effects ; Estradiol ; pharmacology ; Hyperoxia ; pathology ; Neuroprotective Agents ; pharmacology ; Oligodendroglia ; drug effects ; physiology ; Rats ; Rats, Sprague-Dawley ; Receptors, Immunologic ; physiology ; Stem Cells ; drug effects ; physiology
8.Establishment and characterization of dual-color fluorescence nude mouse models of glioma.
Jinshi ZHANG ; Zhaohui LU ; Xifeng FEI ; Xingliang DAI ; Jinding WU ; Yi WAN ; Zhimin WANG ; Aidong WANG ; Jun DONG ; Qing LAN ; Qiang HUANG
Chinese Journal of Oncology 2014;36(2):97-102
OBJECTIVETo establish red-green dual-color fluorescence glioma model in nude mice and to explore its practical values.
METHODSCM-DiI-stained rat glioma C6 cells (C6-CM- DiI cells) expressing red fluorescence were inoculated into the brain of athymic nude mice expressing green fluorescence protein (NC-C57BL/6J-EGFP). Then the whole-body dual-color fluorescence imaging was detected dynamically. Finally whole brains of the tumor-bearing mice were removed and 5 µm thick serial frozen slices were made. Light microscopy, fluorescence microscopy and confocal laser scanning microscopy were performed to observe the transplanted tumor tissue structure and fluorescent cells.
RESULTSTumor mass with red fluorescence increased gradually under continuous in-vivo fluorescence imaging monitoring. Under the fluorescence microscope, cells with red, green and yellow fluorescence were observed in the frozen sections of transplanted tumor tissue and the mutual structural relationship among them could be defined. The tumor cells migration, implantation and cell fusion between transplanted tumor cells and host cells could be observed. It could be distinguished according to the fluorescence, that blood vessels of tumor-origin displayed red fluorescence, blood vessels of host-origin displayed green fluorescence and mosaic blood vessels appeared yellow fluorescence. It was depicted that host innate astrocytes and oligodendrocytes in the microenvironment at the tumor periphery could be activated and dedifferentiated into nestin-positive cells.
CONCLUSIONSIn contrast to traditional animal model, the dual-color fluorescence imaging of nude mouse models of glioma possesses enormous advantages in investigating tumor mass in-vivo fluorescence imaging, tumor cells migration and metastasis, tumor angiogenesis and reactive activation of host innate cells in the microenvironment at tumor periphery, thus, has highly practical application value.
Animals ; Astrocytes ; metabolism ; Brain Neoplasms ; blood supply ; metabolism ; pathology ; ultrastructure ; Carbocyanines ; metabolism ; Cell Fusion ; Cell Line, Tumor ; Cell Movement ; Disease Models, Animal ; Fluorescent Dyes ; metabolism ; Glioma ; blood supply ; metabolism ; pathology ; ultrastructure ; Green Fluorescent Proteins ; metabolism ; Luminescent Proteins ; metabolism ; Mice ; Mice, Inbred C57BL ; Mice, Nude ; Microscopy, Confocal ; Microscopy, Fluorescence ; Neoplasm Transplantation ; Neovascularization, Pathologic ; Nestin ; metabolism ; Oligodendroglia ; metabolism ; Rats
9.Exploring Myelin Dysfunction in Multiple System Atrophy.
Joanna H WONG ; Glenda M HALLIDAY ; Woojin Scott KIM
Experimental Neurobiology 2014;23(4):337-344
Multiple system atrophy (MSA) is a rare, yet fatal neurodegenerative disease that presents clinically with autonomic failure in combination with parkinsonism or cerebellar ataxia. MSA impacts on the autonomic nervous system affecting blood pressure, heart rate and bladder function, and the motor system affecting balance and muscle movement. The cause of MSA is unknown, no definitive risk factors have been identified, and there is no cure or effective treatment. The definitive pathology of MSA is the presence of alpha-synuclein aggregates in the brain and therefore MSA is classified as an alpha-synucleinopathy, together with Parkinson's disease and dementia with Lewy bodies. Although the molecular mechanisms of misfolding, fibrillation and aggregation of alpha-synuclein partly overlap with other alpha-synucleinopathies, the pathological pathway of MSA is unique in that the principal site for alpha-synuclein deposition is in the oligodendrocytes rather than the neurons. The sequence of pathological events of MSA is now recognized as abnormal protein redistributions in oligodendrocytes first, followed by myelin dysfunction and then neurodegeneration. Oligodendrocytes are responsible for the production and maintenance of myelin, the specialized lipid membrane that encases the axons of all neurons in the brain. Myelin is composed of lipids and two prominent proteins, myelin basic protein and proteolipid protein. In vitro studies suggest that aberration in protein distribution and lipid transport may lead to myelin dysfunction in MSA. The purpose of this perspective is to bring together available evidence to explore the potential role of alpha-synuclein, myelin protein dysfunction, lipid dyshomeostasis and ABCA8 in MSA pathogenesis.
alpha-Synuclein
;
Autonomic Nervous System
;
Axons
;
Blood Pressure
;
Brain
;
Cerebellar Ataxia
;
Dementia
;
Heart Rate
;
Lewy Bodies
;
Membranes
;
Multiple System Atrophy*
;
Myelin Proteins
;
Myelin Sheath*
;
Neurodegenerative Diseases
;
Neurons
;
Oligodendroglia
;
Parkinson Disease
;
Parkinsonian Disorders
;
Pathology
;
Risk Factors
;
Urinary Bladder
10.Transplantation of human embryonic neural stem cells protects rats against cerebral ischemic injury.
Xiao-Yan LIU ; Chang-Peng WANG ; Ming LIU ; Gang JI ; Jing-Chun GUO
Acta Physiologica Sinica 2014;66(6):691-701
The purpose of this study is to explore the fate and effect of human embryonic neural stem cells (hNSCs) after transplantation into ipsilateral lateral ventricle of stroke rats. Adult rats were exposed to one-hour transient middle cerebral artery occlusion (MCAO), and then hNSCs were transplanted into ipsilateral lateral ventricle 7 days after reperfusion. Infarct volume was calculated by cresyl violet staining. The improvements of neural functions were assessed by behavioral tests. Immunofluorescence staining was performed to observe the migration and differentiation of transplanted hNSCs. The results showed that transplanted hNSCs significantly reduced ischemia-induced infarction in MCAO rats, and improved neural functional restoration when assessed by rotarod, footfault and corner-turn tests. The grafted cells migrated predominantly to several specific brain regions, such as corpus callosum and peri-infarct area. Furthermore, these cells differentiated into oligodendrocytes and astrocytes in corpus callosum, and neurons in peri-infarct parenchyma. These results suggest that transplanted hNSCs through lateral ventricle of the ischemic side may exert effective therapeutic effects on stroke rats via migration and differentiation in specific brain regions.
Animals
;
Astrocytes
;
cytology
;
Brain
;
cytology
;
pathology
;
Cell Differentiation
;
Cell Movement
;
Humans
;
Infarction, Middle Cerebral Artery
;
therapy
;
Lateral Ventricles
;
Neural Stem Cells
;
transplantation
;
Neurons
;
cytology
;
Oligodendroglia
;
cytology
;
Rats
;
Rats, Sprague-Dawley

Result Analysis
Print
Save
E-mail