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1.
Immunity ; 56(9): 2105-2120.e13, 2023 09 12.
Article in English | MEDLINE | ID: mdl-37527657

ABSTRACT

Childhood neglect and/or abuse can induce mental health conditions with unknown mechanisms. Here, we identified stress hormones as strong inducers of astrocyte-mediated synapse phagocytosis. Using in vitro, in vivo, and human brain organoid experiments, we showed that stress hormones increased the expression of the Mertk phagocytic receptor in astrocytes through glucocorticoid receptor (GR). In post-natal mice, exposure to early social deprivation (ESD) specifically activated the GR-MERTK pathway in astrocytes, but not in microglia. The excitatory post-synaptic density in cortical regions was reduced in ESD mice, and there was an increase in the astrocytic engulfment of these synapses. The loss of excitatory synapses, abnormal neuronal network activities, and behavioral abnormalities in ESD mice were largely prevented by ablating GR or MERTK in astrocytes. Our work reveals the critical roles of astrocytic GR-MERTK activation in evoking stress-induced abnormal behaviors in mice, suggesting GR-MERTK signaling as a therapeutic target for stress-induced mental health conditions.


Subject(s)
Astrocytes , Phagocytosis , Stress, Psychological , Animals , Child , Humans , Mice , Astrocytes/metabolism , c-Mer Tyrosine Kinase/genetics , Hormones/metabolism , Synapses/metabolism , Stress, Psychological/metabolism
2.
Nature ; 590(7847): 612-617, 2021 02.
Article in English | MEDLINE | ID: mdl-33361813

ABSTRACT

In the adult hippocampus, synapses are constantly formed and eliminated1,2. However, the exact function of synapse elimination in the adult brain, and how it is regulated, are largely unknown. Here we show that astrocytic phagocytosis3 is important for maintaining proper hippocampal synaptic connectivity and plasticity. By using fluorescent phagocytosis reporters, we find that excitatory and inhibitory synapses are eliminated by glial phagocytosis in the CA1 region of the adult mouse hippocampus. Unexpectedly, we found that astrocytes have a major role in the neuronal activity-dependent elimination of excitatory synapses. Furthermore, mice in which astrocytes lack the phagocytic receptor MEGF10 show a reduction in the elimination of excitatory synapses; as a result, excessive but functionally impaired synapses accumulate. Finally, Megf10-knockout mice show defective long-term synaptic plasticity and impaired formation of hippocampal memories. Together, our data provide strong evidence that astrocytes eliminate unnecessary excitatory synaptic connections in the adult hippocampus through MEGF10, and that this astrocytic function is crucial for maintaining circuit connectivity and thereby supporting cognitive function.


Subject(s)
Aging , Astrocytes/cytology , CA1 Region, Hippocampal/cytology , Homeostasis , Neural Pathways , Phagocytosis , Synapses/metabolism , Animals , Excitatory Postsynaptic Potentials , Female , Inhibitory Postsynaptic Potentials , Male , Membrane Proteins/metabolism , Memory/physiology , Mice , Neuronal Plasticity/physiology
3.
EMBO J ; 40(15): e107121, 2021 08 02.
Article in English | MEDLINE | ID: mdl-34013588

ABSTRACT

Glia contribute to synapse elimination through phagocytosis in the central nervous system. Despite the important roles of this process in development and neurological disorders, the identity and regulation of the "eat-me" signal that initiates glia-mediated phagocytosis of synapses has remained incompletely understood. Here, we generated conditional knockout mice with neuronal-specific deletion of the flippase chaperone Cdc50a, to induce stable exposure of phosphatidylserine, a well-known "eat-me" signal for apoptotic cells, on the neuronal outer membrane. Surprisingly, acute Cdc50a deletion in mature neurons causes preferential phosphatidylserine exposure in neuronal somas and specific loss of inhibitory post-synapses without effects on other synapses, resulting in abnormal excitability and seizures. Ablation of microglia or the deletion of microglial phagocytic receptor Mertk prevents the loss of inhibitory post-synapses and the seizure phenotype, indicating that microglial phagocytosis is responsible for inhibitory post-synapse elimination. Moreover, we found that phosphatidylserine is used for microglia-mediated pruning of inhibitory post-synapses in normal brains, suggesting that phosphatidylserine serves as a general "eat-me" signal for inhibitory post-synapse elimination.


Subject(s)
Microglia/metabolism , Phosphatidylserines/metabolism , Seizures/physiopathology , Synapses/physiology , c-Mer Tyrosine Kinase/metabolism , Animals , Brain/physiopathology , Membrane Proteins/genetics , Membrane Proteins/metabolism , Mice, Inbred C57BL , Mice, Knockout , Mice, Transgenic , Phagocytosis/physiology , Seizures/genetics , c-Mer Tyrosine Kinase/genetics
4.
Nature ; 560(7717): 243-247, 2018 08.
Article in English | MEDLINE | ID: mdl-30069053

ABSTRACT

Glioblastoma (GBM) is a devastating and incurable brain tumour, with a median overall survival of fifteen months1,2. Identifying the cell of origin that harbours mutations that drive GBM could provide a fundamental basis for understanding disease progression and developing new treatments. Given that the accumulation of somatic mutations has been implicated in gliomagenesis, studies have suggested that neural stem cells (NSCs), with their self-renewal and proliferative capacities, in the subventricular zone (SVZ) of the adult human brain may be the cells from which GBM originates3-5. However, there is a lack of direct genetic evidence from human patients with GBM4,6-10. Here we describe direct molecular genetic evidence from patient brain tissue and genome-edited mouse models that show astrocyte-like NSCs in the SVZ to be the cell of origin that contains the driver mutations of human GBM. First, we performed deep sequencing of triple-matched tissues, consisting of (i) normal SVZ tissue away from the tumour mass, (ii) tumour tissue, and (iii) normal cortical tissue (or blood), from 28 patients with isocitrate dehydrogenase (IDH) wild-type GBM or other types of brain tumour. We found that normal SVZ tissue away from the tumour in 56.3% of patients with wild-type IDH GBM contained low-level GBM driver mutations (down to approximately 1% of the mutational burden) that were observed at high levels in their matching tumours. Moreover, by single-cell sequencing and laser microdissection analysis of patient brain tissue and genome editing of a mouse model, we found that astrocyte-like NSCs that carry driver mutations migrate from the SVZ and lead to the development of high-grade malignant gliomas in distant brain regions. Together, our results show that NSCs in human SVZ tissue are the cells of origin that contain the driver mutations of GBM.


Subject(s)
Glioblastoma/genetics , Glioblastoma/pathology , Lateral Ventricles/pathology , Mutation , Animals , Astrocytes/metabolism , Astrocytes/pathology , Disease Progression , Gene Editing , Genome/genetics , Glioblastoma/enzymology , High-Throughput Nucleotide Sequencing , Humans , Isocitrate Dehydrogenase/genetics , Lateral Ventricles/metabolism , Mice , Reproducibility of Results , Single-Cell Analysis
6.
Mol Ther ; 31(4): 1002-1016, 2023 04 05.
Article in English | MEDLINE | ID: mdl-36755495

ABSTRACT

Fabry disease (FD), a lysosomal storage disorder, is caused by defective α-galactosidase (GLA) activity, which results in the accumulation of globotriaosylceramide (Gb3) in endothelial cells and leads to life-threatening complications such as left ventricular hypertrophy (LVH), renal failure, and stroke. Enzyme replacement therapy (ERT) results in Gb3 clearance; however, because of a short half-life in the body and the high immunogenicity of FD patients, ERT has a limited therapeutic effect, particularly in patients with late-onset disease or progressive complications. Because vascular endothelial cells (VECs) derived from FD-induced pluripotent stem cells display increased thrombospondin-1 (TSP1) expression and enhanced SMAD2 signaling, we screened for chemical compounds that could downregulate TSP1 and SMAD2 signaling. Fasudil reduced the levels of p-SMAD2 and TSP1 in FD-VECs and increased the expression of angiogenic factors. Furthermore, fasudil downregulated the endothelial-to-mesenchymal transition (EndMT) and mitochondrial function of FD-VECs. Oral administration of fasudil to FD mice alleviated several FD phenotypes, including LVH, renal fibrosis, anhidrosis, and heat insensitivity. Our findings demonstrate that fasudil is a novel candidate for FD therapy.


Subject(s)
Fabry Disease , Animals , Mice , Fabry Disease/drug therapy , Fabry Disease/genetics , Endothelial Cells/metabolism , alpha-Galactosidase/genetics , Phenotype , Enzyme Replacement Therapy
7.
Int J Mol Sci ; 25(5)2024 Mar 02.
Article in English | MEDLINE | ID: mdl-38474161

ABSTRACT

Obesity is a serious global health challenge, closely associated with numerous chronic conditions including type 2 diabetes. Anemarrhena asphodeloides Bunge (AA) known as Jimo has been used to address conditions associated with pathogenic heat such as wasting-thirst in Korean Medicine. Timosaponin A3 (TA3), a natural compound extracted from AA, has demonstrated potential therapeutic effects in various disease models. However, its effects on diabetes and obesity remain largely unexplored. We investigated the anti-obesity and anti-diabetic properties of TA3 using in vitro and in vivo models. TA3 treatment in NCI-H716 cells stimulated the secretion of glucagon-like peptide 1 (GLP-1) through the activation of phosphorylation of protein kinase A catalytic subunit (PKAc) and 5'-AMP-activated protein kinase (AMPK). In 3T3-L1 adipocytes, TA3 effectively inhibited lipid accumulation by regulating adipogenesis and lipogenesis. In a high-fat diet (HFD)-induced mice model, TA3 administration significantly reduced body weight gain and food intake. Furthermore, TA3 improved glucose tolerance, lipid profiles, and mitigated hepatic steatosis in HFD-fed mice. Histological analysis revealed that TA3 reduced the size of white adipocytes and inhibited adipose tissue generation. Notably, TA3 downregulated the expression of lipogenic factor, including fatty-acid synthase (FAS) and sterol regulatory element-binding protein 1c (SREBP1c), emphasizing its potential as an anti-obesity agent. These findings revealed that TA3 may be efficiently used as a natural compound for tackling obesity, diabetes, and associated metabolic disorders, providing a novel approach for therapeutic intervention.


Subject(s)
Anti-Obesity Agents , Diabetes Mellitus, Type 2 , Saponins , Animals , Mice , Obesity/metabolism , Steroids/pharmacology , Anti-Obesity Agents/pharmacology , Adipogenesis , AMP-Activated Protein Kinases/metabolism , Lipids/pharmacology , 3T3-L1 Cells , Diet, High-Fat , Mice, Inbred C57BL
8.
Nature ; 541(7638): 481-487, 2017 01 26.
Article in English | MEDLINE | ID: mdl-28099414

ABSTRACT

Reactive astrocytes are strongly induced by central nervous system (CNS) injury and disease, but their role is poorly understood. Here we show that a subtype of reactive astrocytes, which we termed A1, is induced by classically activated neuroinflammatory microglia. We show that activated microglia induce A1 astrocytes by secreting Il-1α, TNF and C1q, and that these cytokines together are necessary and sufficient to induce A1 astrocytes. A1 astrocytes lose the ability to promote neuronal survival, outgrowth, synaptogenesis and phagocytosis, and induce the death of neurons and oligodendrocytes. Death of axotomized CNS neurons in vivo is prevented when the formation of A1 astrocytes is blocked. Finally, we show that A1 astrocytes are abundant in various human neurodegenerative diseases including Alzheimer's, Huntington's and Parkinson's disease, amyotrophic lateral sclerosis and multiple sclerosis. Taken together these findings help to explain why CNS neurons die after axotomy, strongly suggest that A1 astrocytes contribute to the death of neurons and oligodendrocytes in neurodegenerative disorders, and provide opportunities for the development of new treatments for these diseases.


Subject(s)
Astrocytes/classification , Astrocytes/pathology , Cell Death , Central Nervous System/pathology , Microglia/pathology , Neurons/pathology , Animals , Astrocytes/metabolism , Axotomy , Cell Culture Techniques , Cell Survival , Complement C1q/metabolism , Disease Progression , Humans , Inflammation/pathology , Interleukin-1alpha/metabolism , Mice , Mice, Inbred C57BL , Microglia/metabolism , Neurodegenerative Diseases/pathology , Oligodendroglia/pathology , Phagocytosis , Phenotype , Rats , Rats, Sprague-Dawley , Synapses/pathology , Toxins, Biological/metabolism , Tumor Necrosis Factor-alpha/metabolism
9.
J Cell Physiol ; 237(1): 128-148, 2022 01.
Article in English | MEDLINE | ID: mdl-34311499

ABSTRACT

Glucose metabolism is a mechanism by which energy is produced in form of adenosine triphosphate (ATP) by mitochondria and precursor metabolites are supplied to enable the ultimate enrichment of mature metabolites in the cell. Recently, glycolytic enzymes have been shown to have unconventional but important functions. Among these enzymes, pyruvate kinase M2 (PKM2) plays several roles including having conventional metabolic enzyme activity, and also being a transcriptional regulator and a protein kinase. Compared with the closely related PKM1, PKM2 is highly expressed in cancer cells and embryos, whereas PKM1 is dominant in mature, differentiated cells. Posttranslational modifications such as phosphorylation and acetylation of PKM2 change its cellular functions. In particular, PKM2 can translocate to the nucleus, where it regulates the transcription of many target genes. It is notable that PKM2 also acts as a protein kinase to phosphorylate several substrate proteins. Besides cancer cells and embryonic cells, astrocytes also highly express PKM2, which is crucial for lactate production via expression of lactate dehydrogenase A (LDHA), while mature neurons predominantly express PKM1. The lactate produced in cancer cells promotes tumor progress and that in astrocytes can be supplied to neurons and may act as a major source for neuronal ATP energy production. Thereby, we propose that PKM2 along with its different posttranslational modifications has specific purposes for a variety of cell types, performing unique functions.


Subject(s)
Leukemia, Myeloid, Acute , Pyruvate Kinase , Adenosine Triphosphate/metabolism , Cell Line, Tumor , Glycolysis/physiology , Humans , Lactates , Protein Kinases/metabolism , Pyruvate Kinase/genetics
10.
Nature ; 535(7611): 294-8, 2016 07 14.
Article in English | MEDLINE | ID: mdl-27411634

ABSTRACT

Vascular and haematopoietic cells organize into specialized tissues during early embryogenesis to supply essential nutrients to all organs and thus play critical roles in development and disease. At the top of the haemato-vascular specification cascade lies cloche, a gene that when mutated in zebrafish leads to the striking phenotype of loss of most endothelial and haematopoietic cells and a significant increase in cardiomyocyte numbers. Although this mutant has been analysed extensively to investigate mesoderm diversification and differentiation and continues to be broadly used as a unique avascular model, the isolation of the cloche gene has been challenging due to its telomeric location. Here we used a deletion allele of cloche to identify several new cloche candidate genes within this genomic region, and systematically genome-edited each candidate. Through this comprehensive interrogation, we succeeded in isolating the cloche gene and discovered that it encodes a PAS-domain-containing bHLH transcription factor, and that it is expressed in a highly specific spatiotemporal pattern starting during late gastrulation. Gain-of-function experiments show that it can potently induce endothelial gene expression. Epistasis experiments reveal that it functions upstream of etv2 and tal1, the earliest expressed endothelial and haematopoietic transcription factor genes identified to date. A mammalian cloche orthologue can also rescue blood vessel formation in zebrafish cloche mutants, indicating a highly conserved role in vertebrate vasculogenesis and haematopoiesis. The identification of this master regulator of endothelial and haematopoietic fate enhances our understanding of early mesoderm diversification and may lead to improved protocols for the generation of endothelial and haematopoietic cells in vivo and in vitro.


Subject(s)
Basic Helix-Loop-Helix Transcription Factors/metabolism , Blood Cells/cytology , Blood Cells/metabolism , Cell Differentiation/genetics , Endothelial Cells/cytology , Endothelial Cells/metabolism , Zebrafish Proteins/metabolism , Animals , Basic Helix-Loop-Helix Transcription Factors/chemistry , Basic Helix-Loop-Helix Transcription Factors/genetics , Blood Vessels/cytology , Blood Vessels/embryology , Blood Vessels/metabolism , Conserved Sequence , Epistasis, Genetic , Gene Deletion , Helix-Loop-Helix Motifs , Hematopoiesis , Mesoderm/cytology , Mesoderm/embryology , Mesoderm/metabolism , Mutation , Protein Structure, Tertiary , Proto-Oncogene Proteins/genetics , T-Cell Acute Lymphocytic Leukemia Protein 1 , Zebrafish/embryology , Zebrafish/genetics , Zebrafish Proteins/chemistry , Zebrafish Proteins/genetics
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