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1.
Nature ; 613(7942): 120-129, 2023 01.
Article in English | MEDLINE | ID: mdl-36517604

ABSTRACT

Myelin is required for the function of neuronal axons in the central nervous system, but the mechanisms that support myelin health are unclear. Although macrophages in the central nervous system have been implicated in myelin health1, it is unknown which macrophage populations are involved and which aspects they influence. Here we show that resident microglia are crucial for the maintenance of myelin health in adulthood in both mice and humans. We demonstrate that microglia are dispensable for developmental myelin ensheathment. However, they are required for subsequent regulation of myelin growth and associated cognitive function, and for preservation of myelin integrity by preventing its degeneration. We show that loss of myelin health due to the absence of microglia is associated with the appearance of a myelinating oligodendrocyte state with altered lipid metabolism. Moreover, this mechanism is regulated through disruption of the TGFß1-TGFßR1 axis. Our findings highlight microglia as promising therapeutic targets for conditions in which myelin growth and integrity are dysregulated, such as in ageing and neurodegenerative disease2,3.


Subject(s)
Central Nervous System , Microglia , Myelin Sheath , Adult , Animals , Humans , Mice , Axons/metabolism , Central Nervous System/cytology , Central Nervous System/metabolism , Central Nervous System/pathology , Microglia/cytology , Microglia/metabolism , Microglia/pathology , Myelin Sheath/metabolism , Myelin Sheath/pathology , Neurodegenerative Diseases/metabolism , Neurodegenerative Diseases/pathology , Oligodendroglia/metabolism , Oligodendroglia/pathology , Cognition , Transforming Growth Factor beta1/metabolism , Receptor, Transforming Growth Factor-beta Type I/metabolism , Lipid Metabolism , Aging/metabolism , Aging/pathology
3.
Glia ; 72(2): 375-395, 2024 02.
Article in English | MEDLINE | ID: mdl-37909242

ABSTRACT

White matter abnormalities, related to poor cerebral perfusion, are a core feature of small vessel cerebrovascular disease, and critical determinants of vascular cognitive impairment and dementia. Despite this importance there is a lack of treatment options. Proliferation of microglia producing an expanded, reactive population and associated neuroinflammatory alterations have been implicated in the onset and progression of cerebrovascular white matter disease, in patients and in animal models, suggesting that targeting microglial proliferation may exert protection. Colony-stimulating factor-1 receptor (CSF1R) is a key regulator of microglial proliferation. We found that the expression of CSF1R/Csf1r and other markers indicative of increased microglial abundance are significantly elevated in damaged white matter in human cerebrovascular disease and in a clinically relevant mouse model of chronic cerebral hypoperfusion and vascular cognitive impairment. Using the mouse model, we investigated long-term pharmacological CSF1R inhibition, via GW2580, and demonstrated that the expansion of microglial numbers in chronic hypoperfused white matter is prevented. Transcriptomic analysis of hypoperfused white matter tissue showed enrichment of microglial and inflammatory gene sets, including phagocytic genes that were the predominant expression modules modified by CSF1R inhibition. Further, CSF1R inhibition attenuated hypoperfusion-induced white matter pathology and rescued spatial learning impairments and to a lesser extent cognitive flexibility. Overall, this work suggests that inhibition of CSF1R and microglial proliferation mediates protection against chronic cerebrovascular white matter pathology and cognitive deficits. Our study nominates CSF1R as a target for the treatment of vascular cognitive disorders with broader implications for treatment of other chronic white matter diseases.


Subject(s)
Cerebrovascular Disorders , Cognition Disorders , Cognitive Dysfunction , Leukoencephalopathies , Receptors, Granulocyte-Macrophage Colony-Stimulating Factor , White Matter , Animals , Mice , Cerebrovascular Disorders/metabolism , Cerebrovascular Disorders/pathology , Cognition Disorders/etiology , Cognition Disorders/pathology , Cognitive Dysfunction/metabolism , Disease Models, Animal , Leukoencephalopathies/genetics , Leukoencephalopathies/metabolism , Mice, Inbred C57BL , Microglia/metabolism , Receptors, Colony-Stimulating Factor/metabolism , White Matter/pathology , Receptors, Granulocyte-Macrophage Colony-Stimulating Factor/antagonists & inhibitors , Receptors, Granulocyte-Macrophage Colony-Stimulating Factor/metabolism
4.
Cell Rep ; 42(5): 112425, 2023 05 30.
Article in English | MEDLINE | ID: mdl-37099424

ABSTRACT

Microglia arise from the yolk sac and enter the brain during early embryogenesis. Upon entry, microglia undergo in situ proliferation and eventually colonize the entire brain by the third postnatal week in mice. However, the intricacies of their developmental expansion remain unclear. Here, we characterize the proliferative dynamics of microglia during embryonic and postnatal development using complementary fate-mapping techniques. We demonstrate that the developmental colonization of the brain is facilitated by clonal expansion of highly proliferative microglial progenitors that occupy spatial niches throughout the brain. Moreover, the spatial distribution of microglia switches from a clustered to a random pattern between embryonic and late postnatal development. Interestingly, the developmental increase in microglial numbers follows the proportional growth of the brain in an allometric manner until a mosaic distribution has been established. Overall, our findings offer insight into how the competition for space may drive microglial colonization by clonal expansion during development.


Subject(s)
Brain , Microglia , Mice , Animals , Yolk Sac , Embryonic Development
5.
Methods Mol Biol ; 2034: 207-215, 2019.
Article in English | MEDLINE | ID: mdl-31392687

ABSTRACT

Microglia are the main resident immunocompetent cells of the brain with key roles in brain development, homeostasis, and function. Recent reports have started to shed light on the homeostatic mechanisms regulating the composition and turnover of the microglial population under physiological conditions from development to ageing, but our knowledge of the dynamics of microglia is incomplete. Therefore, it appears relevant to provide a standardized approach to quantify the turnover of microglia, with direct application to create a greater understanding of the dynamics of this cell population, and how it may contribute to the pathogenesis and/or progression of neurological disorders. Here we describe a robust immunohistochemical method to analyze microglial proliferation in mouse brain, aiming at providing a shared and universal approach to analyze microglial dynamics across different laboratories.


Subject(s)
Aging , Brain , Bromodeoxyuridine/pharmacology , Immunohistochemistry , Microglia , Nervous System Diseases , Staining and Labeling , Aging/metabolism , Aging/pathology , Animals , Brain/metabolism , Brain/pathology , Mice , Mice, Transgenic , Microglia/metabolism , Microglia/pathology , Nervous System Diseases/metabolism , Nervous System Diseases/pathology
6.
Dev Neurobiol ; 78(6): 561-579, 2018 Jun.
Article in English | MEDLINE | ID: mdl-29030904

ABSTRACT

Microglia and non-parenchymal macrophages located in the perivascular space, the meninges and the choroid plexus are independent immune populations that play vital roles in brain development, homeostasis, and tissue healing. Resident macrophages account for a significant proportion of cells in the brain and their density remains stable throughout the lifespan thanks to constant turnover. Microglia develop from yolk sac progenitors, later evolving through intermediate progenitors in a fine-tuned process in which intrinsic factors and external stimuli combine to progressively sculpt their cell type-specific transcriptional profiles. Recent evidence demonstrates that non-parenchymal macrophages are also generated during early embryonic development. In recent years, the development of powerful fate mapping approaches combined with novel genomic and transcriptomic methodologies have greatly expanded our understanding of how brain macrophages develop and acquire specialized functions, and how cell population dynamics are regulated. Here, we review the transcription factors, epigenetic remodeling, and signaling pathways orchestrating the embryonic development of microglia and non-parenchymal macrophages. Next, we describe the dynamics of the macrophage populations of the brain and discuss the role of progenitor cells, to gain a better understanding of their functions in the healthy and diseased brain. © 2017 Wiley Periodicals, Inc. Develop Neurobiol 78: 561-579, 2018.


Subject(s)
Brain/immunology , Macrophages/immunology , Microglia/immunology , Animals , Brain/growth & development , Humans
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