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1.
Brain Behav Immun ; 120: 99-116, 2024 May 03.
Article in English | MEDLINE | ID: mdl-38705494

ABSTRACT

INTRODUCTION: Despite improved management of traumatic brain injury (TBI), it still leads to lifelong sequelae and disability, particularly in children. Chronic neuroinflammation (the so-called tertiary phase), in particular, microglia/macrophage and astrocyte reactivity, is among the main mechanisms suspected of playing a role in the generation of lesions associated with TBI. The role of acute neuroinflammation is now well understood, but its persistent effect and impact on the brain, particularly during development, are not. Here, we investigated the long-term effects of pediatric TBI on the brain in a mouse model. METHODS: Pediatric TBI was induced in mice on postnatal day (P) 7 by weight-drop trauma. The time course of neuroinflammation and myelination was examined in the TBI mice. They were also assessed by magnetic resonance, functional ultrasound, and behavioral tests at P45. RESULTS: TBI induced robust neuroinflammation, characterized by acute microglia/macrophage and astrocyte reactivity. The long-term consequences of pediatric TBI studied on P45 involved localized scarring astrogliosis, persistent microgliosis associated with a specific transcriptomic signature, and a long-lasting myelination defect consisting of the loss of myelinated axons, a decreased level of myelin binding protein, and severe thinning of the corpus callosum. These results were confirmed by reduced fractional anisotropy, measured by diffusion tensor imaging, and altered inter- and intra-hemispheric connectivity, measured by functional ultrasound imaging. In addition, adolescent mice with pediatric TBI showed persistent social interaction deficits and signs of anxiety and depressive behaviors. CONCLUSIONS: We show that pediatric TBI induces tertiary neuroinflammatory processes associated with white matter lesions and altered behavior. These results support our model as a model for preclinical studies for tertiary lesions following TBI.

2.
Basic Clin Pharmacol Toxicol ; 132(5): 449-453, 2023 May.
Article in English | MEDLINE | ID: mdl-36808477

ABSTRACT

Due to a narrow therapeutic index, prolonged lithium treatment and overdose may result in neurotoxicity. Neurotoxicity is deemed reversible with lithium clearance. However, echoing the report of syndrome of irreversible lithium-effectuated neurotoxicity (SILENT) in rare severe poisonings, lithium-induced histopathological brain injuries including extensive neuronal vacuolization, spongiosis and ageing-like neurodegenerative changes were described in the rat following acute toxic and pharmacological exposure. We aimed to investigate the histopathological consequences of lithium exposure in rat models mimicking prolonged treatment and all three patterns of acute, acute-on-chronic and chronic poisonings observed in humans. We performed histopathology and immunostaining-based analyses using optic microscopy of brains obtained from male Sprague-Dawley rats randomly assigned to lithium or saline (controls) and treated according to the therapeutic or to the three poisoning models. No lesion was observed in any brain structure in any of the models. Neuron and astrocyte counts did not differ significantly between lithium-treated rats and controls. Our findings support that lithium-induced neurotoxicity is reversible and brain injury not a common feature of toxicity.


Subject(s)
Brain Injuries , Neurotoxicity Syndromes , Poisoning , Humans , Male , Rats , Animals , Lithium , Rats, Sprague-Dawley , Neurotoxicity Syndromes/etiology , Brain , Brain Injuries/chemically induced
3.
Biochimie ; 203: 20-31, 2022 Dec.
Article in English | MEDLINE | ID: mdl-36055603

ABSTRACT

In the central nervous system, lipids represent approximately 70% of myelin dry weight and play a key role in axon insulation and action potential conduction velocity. Lipids may thus represent sensitive markers of myelin status in physiological and pathological contexts. In this study, a comprehensive lipidomic analysis by ultra-high-performance liquid chromatography and high-resolution mass spectrometry was performed on myelin-enriched fractions prepared from mouse brains. Two developmental stages were compared: an early rapid myelination stage (postnatal day 15, P15), and a late basal myelination stage (P40). Besides an expected enrichment in characteristic myelin lipids, our study revealed a profound remodeling in phospholipid subclasses during myelination. It included a dramatic decrease in phosphatidylcholine (PC) content and an increase in phosphatidylethanolamine (PE), phosphatidylserine (PS) and phosphatidylinositol (PI) contents, concomitant to an increased proportion of monounsaturated fatty acids (MUFA) in these subclasses. Lipidomic results were supported by upregulated expression of genes involved in PE, PI, PS and MUFA synthesis in maturing O4+ oligodendrocytes. Highlighted lipid changes may represent key features of brain myelination that could be explored in the context of myelin pathologies.


Subject(s)
Fatty Acids , Phospholipids , Animals , Mice , Fatty Acids/metabolism , Phospholipids/metabolism , Myelin Sheath/metabolism , Oligodendroglia/metabolism , Brain/metabolism
4.
Molecules ; 27(7)2022 Mar 31.
Article in English | MEDLINE | ID: mdl-35408676

ABSTRACT

In the central nervous system, the process of myelination involves oligodendrocytes that wrap myelin around axons. Myelin sheaths are mainly composed of lipids and ensure efficient conduction of action potentials. Oligodendrocyte differentiation is an essential preliminary step to myelination which, in turn, is a key event of neurodevelopment. Bisphenol A (BPA), a ubiquitous endocrine disruptor, is suspected to disrupt this developmental process and may, thus, contribute to several neurodevelopmental disorders. In this study, we assessed the effect of BPA on oligodendrocyte differentiation through a comprehensive analysis of cell lipidome by UHPLC-HRMS. For this purpose, we exposed the oligodendroglial cell line Oli-neu to several BPA concentrations for 72 h of proliferation and another 72 h of differentiation. In unexposed cells, significant changes occurred in lipid distribution during Oli-neu differentiation, including an increase in characteristic myelin lipids, sulfatides, and ethanolamine plasmalogens, and a marked remodeling of phospholipid subclasses and fatty acid contents. Moreover, BPA induced a decrease in sulfatide and phosphatidylinositol plasmalogen contents and modified monounsaturated/polyunsaturated fatty acid relative contents in phospholipids. These effects counteracted the lipid remodeling accompanying differentiation and were confirmed by gene expression changes. Altogether, our results suggest that BPA disrupts lipid remodeling accompanying early oligodendrocyte differentiation.


Subject(s)
Benzhydryl Compounds , Oligodendroglia , Benzhydryl Compounds/pharmacology , Cell Differentiation , Cell Line , Oligodendroglia/metabolism , Phenols
5.
Neurotoxicology ; 83: 51-68, 2021 03.
Article in English | MEDLINE | ID: mdl-33352275

ABSTRACT

In the central and peripheral nervous systems, myelin is essential for efficient conduction of action potentials. During development, oligodendrocytes and Schwann cells differentiate and ensure axon myelination, and disruption of these processes can contribute to neurodevelopmental disorders. In adults, demyelination can lead to important disabilities, and recovery capacities by remyelination often decrease with disease progression. Among environmental chemical pollutants, endocrine disrupting chemicals (EDCs) are of major concern for human health and are notably suspected to participate in neurodevelopmental and neurodegenerative diseases. In this review, we have combined the current knowledge on EDCs impacts on myelin including several persistent organic pollutants, bisphenol A, triclosan, heavy metals, pesticides, and nicotine. Besides, we presented several other endocrine modulators, including pharmaceuticals and the phytoestrogen genistein, some of which are candidates for treating demyelinating conditions but could also be deleterious as contaminants. The direct impacts of EDCs on myelinating cells were considered as well as their indirect consequences on myelin, particularly on immune mechanisms associated with demyelinating conditions. More studies are needed to describe the effects of these compounds and to further understand the underlying mechanisms in relation to the potential for endocrine disruption.


Subject(s)
Demyelinating Diseases/chemically induced , Endocrine Disruptors/adverse effects , Environmental Pollutants/adverse effects , Myelin Sheath/drug effects , Neurotoxicity Syndromes/etiology , Animals , Demyelinating Diseases/metabolism , Demyelinating Diseases/pathology , Humans , Myelin Sheath/metabolism , Myelin Sheath/pathology , Neurotoxicity Syndromes/metabolism , Neurotoxicity Syndromes/pathology , Prognosis , Risk Assessment , Risk Factors
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