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1.
Glia ; 2024 Jun 03.
Article in English | MEDLINE | ID: mdl-38829008

ABSTRACT

As one of the top causes of blindness worldwide, glaucoma leads to diverse optic neuropathies such as degeneration of retinal ganglion cells (RGCs). It is widely accepted that the level of intraocular pressure (IOP) is a major risk factor in human glaucoma, and reduction of IOP level is the principally most well-known method to prevent cell death of RGCs. However, clinical studies show that lowering IOP fails to prevent RGC degeneration in the progression of glaucoma. Thus, a comprehensive understanding of glaucoma pathological process is required for developing new therapeutic strategies. In this study, we provide functional and histological evidence showing that optic nerve defects occurred before retina damage in an ocular hypertension glaucoma mouse model, in which oligodendroglial lineage cells were responsible for the subsequent neuropathology. By treatment with clemastine, an Food and Drug Administration (FDA)-approved first-generation antihistamine medicine, we demonstrate that the optic nerve and retina damages were attenuated via promoting oligodendrocyte precursor cell (OPC) differentiation and enhancing remyelination. Taken together, our results reveal the timeline of the optic neuropathies in glaucoma and highlight the potential role of oligodendroglial lineage cells playing in its treatment. Clemastine may be used in future clinical applications for demyelination-associated glaucoma.

2.
Front Aging Neurosci ; 13: 760200, 2021.
Article in English | MEDLINE | ID: mdl-34899272

ABSTRACT

Aging affects almost all the aspects of brain functions, but the mechanisms remain largely undefined. Increasing number of literatures have manifested the important role of glial cells in regulating the aging process. Oligodendroglial lineage cell is a major type of glia in central nervous system (CNS), composed of mature oligodendrocytes (OLs), and oligodendroglia precursor cells (OPCs). OLs produce myelin sheaths that insulate axons and provide metabolic support to meet the energy demand. OPCs maintain the population throughout lifetime with the abilities to proliferate and differentiate into OLs. Increasing evidence has shown that oligodendroglial cells display active dynamics in adult and aging CNS, which is extensively involved in age-related brain function decline in the elderly. In this review, we summarized present knowledge about dynamic changes of oligodendroglial lineage cells during normal aging and discussed their potential roles in age-related functional decline. Especially, focused on declined myelinogenesis during aging and underlying mechanisms. Clarifying those oligodendroglial changes and their effects on neurofunctional decline may provide new insights in understanding aging associated brain function declines.

3.
Front Neurosci ; 15: 659853, 2021.
Article in English | MEDLINE | ID: mdl-33958986

ABSTRACT

Increasing evidence has demonstrated that in addition to dysfunction of neuronal circuitry, oligodendroglial dysfunction and/or disruption of white matter integrity are found in the brains of patients with schizophrenia. DNA methylation, a well-established risk factor for schizophrenia, has been demonstrated to cause neuronal dysfunction; however, whether dysregulation of DNA methylation contributes to oligodendroglial/myelin deficits in the pathogenesis of schizophrenia remains unclear. In the present study, by using L-methionine-treated mice, we confirmed that mice with DNA hypermethylation exhibited an anxious phenotype, impaired sociability, and sensorimotor gating deficits. Notably, DNA hypermethylation in oligodendroglial cells led to dysregulation of multiple oligodendroglia-specific transcription factors, which indicated disruption of the transcriptional architecture. Furthermore, DNA hypermethylation caused a reduction of oligodendroglial lineage cells and myelin integrity in the frontal white matter of mice. Taken together, these results indicate that DNA hypermethylation leads to oligodendroglial and/or myelin deficits, which may, at least in part, contribute to schizophrenia-like behaviors in mice. This study provides new insights into the possibility that precise modulation of DNA methylation status in oligodendroglia could be beneficial for the white matter pathology in schizophrenia.

4.
Neurosci Bull ; 36(4): 419-426, 2020 Apr.
Article in English | MEDLINE | ID: mdl-31758330

ABSTRACT

Oligodendrocyte (OL) and myelin development are crucial for network integration and are associated with higher brain functions. Accumulating evidence has demonstrated structural and functional impairment of OLs and myelin in serious mental illnesses. However, whether these deficits contribute to the brain dysfunction or pathogenesis of such diseases still lacks direct evidence. In this study, we conditionally deleted Olig2 in oligodendroglial lineage cells (Olig2 cKO) and screened the behavioral changes in adult mice. We found that Olig2 ablation impaired myelin development, which further resulted in severe hypomyelination in the anterior cingulate cortex. Strikingly, Olig2 cKO mice exhibited an anxious phenotype, aberrant responses to stress, and cognitive deficits. Moreover, Olig2 cKO mice showed increased vulnerability to social avoidance under the mild stress of social isolation. Together, these results indicate that developmental deficits in OL and myelin lead to cognitive impairment and increase the risk of phenotypes reminiscent of mental illnesses.


Subject(s)
Cognitive Dysfunction , Myelin Sheath/pathology , Oligodendrocyte Transcription Factor 2/genetics , Oligodendroglia/pathology , Social Isolation , Animals , Cell Differentiation , Mice , Oligodendrocyte Transcription Factor 2/deficiency
5.
Nat Neurosci ; 22(5): 709-718, 2019 05.
Article in English | MEDLINE | ID: mdl-30988524

ABSTRACT

Disruption of the blood-brain barrier (BBB) is critical to initiation and perpetuation of disease in multiple sclerosis (MS). We report an interaction between oligodendroglia and vasculature in MS that distinguishes human white matter injury from normal rodent demyelinating injury. We find perivascular clustering of oligodendrocyte precursor cells (OPCs) in certain active MS lesions, representing an inability to properly detach from vessels following perivascular migration. Perivascular OPCs can themselves disrupt the BBB, interfering with astrocyte endfeet and endothelial tight junction integrity, resulting in altered vascular permeability and an associated CNS inflammation. Aberrant Wnt tone in OPCs mediates their dysfunctional vascular detachment and also leads to OPC secretion of Wif1, which interferes with Wnt ligand function on endothelial tight junction integrity. Evidence for this defective oligodendroglial-vascular interaction in MS suggests that aberrant OPC perivascular migration not only impairs their lesion recruitment but can also act as a disease perpetuator via disruption of the BBB.


Subject(s)
Blood-Brain Barrier/physiopathology , Encephalitis/physiopathology , Multiple Sclerosis/physiopathology , Oligodendrocyte Precursor Cells/physiology , Adaptor Proteins, Signal Transducing , Animals , Astrocytes/pathology , Astrocytes/physiology , Blood-Brain Barrier/pathology , Cell Movement , Cells, Cultured , Encephalitis/pathology , Extracellular Matrix Proteins/metabolism , Humans , Intercellular Signaling Peptides and Proteins/metabolism , Mice , Multiple Sclerosis/pathology , Oligodendrocyte Precursor Cells/pathology , Tight Junctions/metabolism , White Matter/pathology
6.
Front Cell Neurosci ; 12: 482, 2018.
Article in English | MEDLINE | ID: mdl-30581380

ABSTRACT

Autism spectrum disorder (ASD) is the most commonly diagnosed neurodevelopmental disorder. Independent of neuronal dysfunction, ASD and its associated comorbidities have been linked to hypomyelination and oligodendroglial dysfunction. Additionally, the neuromodulator adenosine has been shown to affect certain ASD comorbidities and symptoms, such as epilepsy, impairment of cognitive function, and anxiety. Adenosine is both directly and indirectly responsible for regulating the development of oligodendroglia and myelination through its interaction with, and modulation of, several neurotransmitters, including glutamate, dopamine, and serotonin. In this review, we will focus on the recent discoveries in adenosine interaction with physiological and pathophysiological activities of oligodendroglia and myelination, as well as ASD-related aspects of adenosine actions on neuroprotection and neuroinflammation. Moreover, we will discuss the potential therapeutic value and clinical approaches of adenosine manipulation against hypomyelination in ASD.

7.
Neuron ; 99(4): 689-701.e5, 2018 08 22.
Article in English | MEDLINE | ID: mdl-30078577

ABSTRACT

To address the significance of enhancing myelination for functional recovery after white matter injury (WMI) in preterm infants, we characterized hypomyelination associated with chronic hypoxia and identified structural and functional deficits of excitatory cortical synapses with a prolonged motor deficit. We demonstrate that genetically delaying myelination phenocopies the synaptic and functional deficits observed in mice after hypoxia, suggesting that myelination may possibly facilitate excitatory presynaptic innervation. As a gain-of-function experiment, we specifically ablated the muscarinic receptor 1 (M1R), a negative regulator of oligodendrocyte differentiation in oligodendrocyte precursor cells. Genetically enhancing oligodendrocyte differentiation and myelination rescued the synaptic loss after chronic hypoxia and promoted functional recovery. As a proof of concept, drug-based myelination therapies also resulted in accelerated differentiation and myelination with functional recovery after chronic hypoxia. Together, our data indicate that myelination-enhancing strategies in preterm infants may represent a promising therapeutic approach for structural/functional recovery after hypoxic WMI.


Subject(s)
Hypoxia/metabolism , Myelin Sheath/physiology , Neurogenesis/physiology , Oligodendroglia/physiology , Recovery of Function/physiology , Synapses/physiology , Animals , Animals, Newborn , Chronic Disease , Female , Hypoxia/genetics , Hypoxia/pathology , Male , Mice , Mice, Inbred C57BL , Mice, Transgenic , Myelin Sheath/chemistry , Myelin Sheath/pathology , Receptor, Muscarinic M1/deficiency , Synapses/chemistry , Synapses/pathology
8.
Glia ; 66(9): 1960-1971, 2018 09.
Article in English | MEDLINE | ID: mdl-29726608

ABSTRACT

Myelinating glial cells (MGCs), oligodendrocytes (OLs) in the central nervous system (CNS) and Schwann cells (SCs) in the peripheral nervous system (PNS), generate myelin sheaths that insulate axons. After myelination is completed in adulthood, MGC functions independent from myelin are required to support axon survival, but the underlying mechanisms are still unclear. Dicer is a key enzyme that is responsible for generating functional micro-RNAs (miRNAs). Despite the importance of Dicer in initiating myelination, the role of Dicer in mature MGCs is still unclear. Here, Dicer was specifically deleted in mature MGCs in 2-month old mice (PLP-CreERT; Dicer fl/fl) by tamoxifen administration. Progressive motor dysfunction was observed in the Dicer conditional knockout mice, which displayed hind limb ataxia at 3 months post recombination that deteriorated into paralysis within 5 months. Massive axonal degeneration/atrophy in peripheral nerves was responsible for this phenomenon, but overt demyelination was not observed in either the CNS or PNS. In contrast to the PNS, signs of axonal degeneration were not observed in the CNS of these animals. We induced a Dicer deletion in oligodendroglia at postnatal day 5 in NG2-CreERT; Dicer fl/fl mice to evaluate whether Dicer expression in OLs is essential for axonal survival. Dicer deletion in oligodendroglia did not cause motor dysfunction at the age of 7 months. Neither axonal atrophy nor demyelination was observed in the CNS. Based on our results, Dicer expression in SCs is required to maintain axon integrity in adult PNS, and Dicer is dispensable for maintaining myelin sheaths in MGCs.


Subject(s)
Axons/enzymology , DEAD-box RNA Helicases/deficiency , Myelin Sheath/enzymology , Nerve Degeneration/enzymology , Ribonuclease III/deficiency , Animals , Ataxia/enzymology , Ataxia/pathology , Atrophy , Axons/pathology , DEAD-box RNA Helicases/genetics , Disease Progression , Female , Male , Mice, Inbred C57BL , Mice, Transgenic , Motor Activity/physiology , Myelin Sheath/pathology , Nerve Degeneration/pathology , Optic Nerve/enzymology , Optic Nerve/pathology , Paralysis/enzymology , Paralysis/pathology , Ribonuclease III/genetics , Sciatic Nerve/enzymology , Sciatic Nerve/pathology , Spinal Cord/enzymology , Spinal Cord/pathology , White Matter/enzymology , White Matter/pathology
9.
Oncotarget ; 8(23): 37511-37524, 2017 Jun 06.
Article in English | MEDLINE | ID: mdl-28415586

ABSTRACT

As a major contributor of chemotherapy resistance and malignant recurrence, glioma stem cells (GSCs) have been proposed as a target for the treatment of gliomas. To evaluate the therapeutic potential of quetiapine (QUE), an atypical antipsychotic, for the treatment of malignant glioma, we established mouse models with GSCs-initiated orthotopic xenograft gliomas and subcutaneous xenograft tumors, using GSCs purified from glioblastoma cell line GL261. We investigated antitumor effects of QUE on xenograft gliomas and its underlying mechanisms on GSCs. Our data demonstrated that (i) QUE monotherapy can effectively suppress GSCs-initiated tumor growth; (ii) QUE has synergistic effects with temozolomide (TMZ) on glioma suppression, and importantly, QUE can effectively suppress TMZ-resistant (or -escaped) tumors generated from GSCs; (iii) mechanistically, the anti-glioma effect of QUE was due to its actions of promoting the differentiation of GSCs into oligodendrocyte (OL)-like cells and its inhibitory effect on the Wnt/ß-catenin signaling pathway. Together, our findings suggest an effective approach for anti-gliomagenic treatment via targeting OL-oriented differentiation of GSCs. This also opens a door for repurposing QUE, an FDA approved drug, for the treatment of malignant glioma.


Subject(s)
Brain Neoplasms/drug therapy , Cell Differentiation/drug effects , Glioma/drug therapy , Neoplastic Stem Cells/drug effects , Quetiapine Fumarate/pharmacology , Animals , Antineoplastic Combined Chemotherapy Protocols/pharmacology , Brain Neoplasms/pathology , Cell Line, Tumor , Dacarbazine/administration & dosage , Dacarbazine/analogs & derivatives , Dacarbazine/pharmacology , Drug Repositioning , Drug Synergism , Glioma/pathology , Humans , Mice, Inbred C57BL , Mice, Nude , Neoplasms, Experimental/drug therapy , Neoplasms, Experimental/pathology , Neoplastic Stem Cells/pathology , Oligodendroglia/pathology , Quetiapine Fumarate/administration & dosage , Temozolomide , Tumor Burden/drug effects
10.
J Cell Sci ; 129(9): 1902-14, 2016 05 01.
Article in English | MEDLINE | ID: mdl-27006115

ABSTRACT

Oligodendrocyte precursor cells (OPCs) undergo a series of energy-consuming developmental events; however, the uptake and trafficking pathways for their energy metabolites remain unknown. In the present study, we found that 2-NBDG, a fluorescent glucose analog, can be delivered between astrocytes and oligodendrocytes through connexin-based gap junction channels but cannot be transferred between astrocytes and OPCs. Instead, connexin hemichannel-mediated glucose uptake supports OPC proliferation, and ethidium bromide uptake or increase of 2-NBDG uptake rate is correlated with intracellular Ca(2+) elevation in OPCs, indicating a Ca(2+)-dependent activation of connexin hemichannels. Interestingly, deletion of connexin 43 (Cx43, also known as GJA1) in astrocytes inhibits OPC proliferation by decreasing matrix glucose levels without impacting on OPC hemichannel properties, a process that also occurs in corpus callosum from acute brain slices. Thus, dual functions of connexin-based channels contribute to glucose supply in oligodendroglial lineage, which might pave a new way for energy-metabolism-directed oligodendroglial-targeted therapies.


Subject(s)
Astrocytes/metabolism , Calcium Signaling/physiology , Calcium/metabolism , Connexin 43/metabolism , Corpus Callosum/metabolism , Oligodendroglia/metabolism , Animals , Astrocytes/cytology , Connexin 43/genetics , Corpus Callosum/cytology , Glucose/genetics , Glucose/metabolism , Mice , Mice, Knockout , Oligodendroglia/cytology
11.
Mol Neurobiol ; 53(5): 3258-3266, 2016 07.
Article in English | MEDLINE | ID: mdl-26059811

ABSTRACT

Aspirin, one of the most commonly used anti-inflammatory drugs, has been recently reported to display multiple effects in the central nervous system (CNS), including neuroprotection and upregulation of ciliary neurotrophic factor (CNTF) expression in astrocytes. Although it was most recently reported that aspirin could promote the proliferation and differentiation of oligodendrocyte precursor cells (OPCs) after white matter lesion, the underlying mechanisms remain unclear. To dissect the effects of aspirin on oligodendroglial development and explore possible mechanisms, we here demonstrated the following: (i) in vitro treatment of aspirin on OPC cultures significantly increased the number of differentiated oligodendrocytes (OLs) but had no effect on the number of proliferative OPCs, indicating that aspirin can promote OPC differentiation but not proliferation; (ii) in vivo treatment of aspirin on neonatal (P3) rats for 4 days led to a nearly twofold increase in the expression of myelin basic protein (MBP), devoid of change in OPC proliferaion, in the corpus callosum (CC); (iii) finally, aspirin treatment increased the phosphorylation level of ß-catenin and counteracted Wnt signaling pathway synergist QS11-induced suppression on OPC differentiation. Together, our data show that aspirin can directly target oligodendroglial lineage cells and promote their differentiation through inhibition of Wnt/ß-catenin signaling pathway. These findings suggest that aspirin may be a novel candidate for the treatment of demyelinating diseases.


Subject(s)
Aspirin/pharmacology , Cell Differentiation/drug effects , Oligodendroglia/cytology , Oligodendroglia/metabolism , Wnt Signaling Pathway/drug effects , Animals , Cell Proliferation/drug effects , Cells, Cultured , Ciliary Neurotrophic Factor/metabolism , Corpus Callosum/cytology , Oligodendroglia/drug effects , Phosphorylation/drug effects , Rats, Sprague-Dawley , beta Catenin/metabolism
12.
13.
Front Cell Neurosci ; 9: 451, 2015.
Article in English | MEDLINE | ID: mdl-26696822

ABSTRACT

Schizophrenia (SZ) is a chronic and severe mental illness for which currently there is no cure. At present, the exact molecular mechanism involved in the underlying pathogenesis of SZ is unknown. The disease is thought to be caused by a combination of genetic, biological, psychological, and environmental factors. Recent studies have shown that epigenetic regulation is involved in SZ pathology. Specifically, DNA methylation, one of the earliest found epigenetic modifications, has been extensively linked to modulation of neuronal function, leading to psychiatric disorders such as SZ. However, increasing evidence indicates that glial cells, especially dysfunctional oligodendrocytes undergo DNA methylation changes that contribute to the pathogenesis of SZ. This review primarily focuses on DNA methylation involved in glial dysfunctions in SZ. Clarifying this mechanism may lead to the development of new therapeutic interventional strategies for the treatment of SZ and other illnesses by correcting abnormal methylation in glial cells.

14.
Neuroscientist ; 21(6): 579-88, 2015 Dec.
Article in English | MEDLINE | ID: mdl-25564030

ABSTRACT

In the central nervous system, the generation of mature oligodendrocytes from their progenitors is a critical step in myelination, which is essential for normal nervous system function. Thus, understanding the regulatory mechanism underlying oligodendroglial development is of great importance, especially for the development of new therapeutic strategies that promote remyelination in demyelinating diseases, such as multiple sclerosis. Previous studies have focused on genetic patterns and revealed a network of cell signaling pathways and related transcription factors involved in oligodendroglial lineage development. Recently, epigenetic regulation, which refers to regulation of gene expression by adjusting the environment of the genes has been shown to play a profound role during oligodendroglial development. In this review, we summarize the recent data demonstrating the effects of chromatin modification and remodeling in regulating oligodendroglial development and discuss the use of high-throughput analysis and bio-informatics in future studies.


Subject(s)
Chromatin/metabolism , Oligodendroglia/physiology , Animals , Chromatin Assembly and Disassembly/physiology
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