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Published in: Journal of Neuroinflammation 1/2020

01-12-2020 | Research

Microglial depletion and repopulation in brain slice culture normalizes sensitized proinflammatory signaling

Authors: Leon G. Coleman Jr, Jian Zou, Fulton T. Crews

Published in: Journal of Neuroinflammation | Issue 1/2020

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Abstract

Background

Microglia are critical mediators of neuroimmune pathology across multiple neurologic disorders. Microglia can be persistently activated or “primed” by Toll-like receptor (TLR) activation, ethanol, stress, and other insults. Thus, strategies to prevent or reverse microglial priming may be beneficial for conditions that involve progressively increasing microglial activation. Microglial depletion with repopulation is emerging as a potential therapy to normalize chronic immune activation. Primary organotypic hippocampal slice culture (OHSC) allows for the study of neuroimmune activation as well as microglial depletion and repopulation without involvement of peripheral immune activation. OHSC undergoes functional maturation and retains cytoarchitecture similar to in vivo.

Methods

OHSC underwent microglial depletion with the CSF1R antagonist PLX3397 with or without repopulation after removal of PLX3397. Immune, trophic, and synaptic gene changes in response to agonists of TLRs 2, 3, 4, 7, and 9 as well as ethanol were assessed in the settings of microglial depletion and repopulation. Gi-DREADD inhibition of microglia was used to confirm select findings seen with depletion. The ability of microglial repopulation to prevent progressive proinflammatory gene induction by chronic ethanol was also investigated.

Results

Microglia were depleted (> 90%) by PLX3397 in OHSC. Microglial depletion blunted proinflammatory responses to several TLR agonists as well as ethanol, which was mimicked by Gi-DREADD inhibition of OHSC microglia. Removal of PLX3397 was followed by complete repopulation of microglia. OHSCs with repopulated microglia showed increased baseline expression of anti-inflammatory cytokines (e.g., IL-10), microglial inhibitory signals (e.g., CX3CL1), and growth factors (e.g., BDNF). This was associated with blunted induction (~ 50%) of TNFα and IL-1β in response to agonists to TLR4 and TLR7. Further, chronic cycled ethanol from 4 days in vitro (DIV) to 16DIV caused immediate 2-fold inductions of TNFα and IL-1β that grew to ~4-fold of age-matched control slices by 40DIV. This persistent inflammatory gene expression was completely reversed by microglial depletion and repopulation after chronic ethanol.

Conclusions

Microglia in OHSCs mediate proinflammatory responses to TLR agonists and ethanol. Microglial repopulation promoted an anti-inflammatory, trophic neuroenvironment and normalized proinflammatory gene expression. This supports the possibility of microglial depletion with repopulation as a strategy to reverse chronic neuroimmune activation.
Appendix
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Literature
1.
go back to reference Perry VH, Holmes C. Microglial priming in neurodegenerative disease. Nat Rev Neurol. 2014;10(4):217–24.PubMedCrossRef Perry VH, Holmes C. Microglial priming in neurodegenerative disease. Nat Rev Neurol. 2014;10(4):217–24.PubMedCrossRef
3.
go back to reference Norden DM, Muccigrosso MM, Godbout JP. Microglial priming and enhanced reactivity to secondary insult in aging, and traumatic CNS injury, and neurodegenerative disease. Neuropharmacology. 2015;96(Pt A):29–41.PubMedCrossRef Norden DM, Muccigrosso MM, Godbout JP. Microglial priming and enhanced reactivity to secondary insult in aging, and traumatic CNS injury, and neurodegenerative disease. Neuropharmacology. 2015;96(Pt A):29–41.PubMedCrossRef
5.
go back to reference Facci L, et al. Toll-like receptors 2, -3 and -4 prime microglia but not astrocytes across central nervous system regions for ATP-dependent interleukin-1beta release. Sci Rep. 2014;4:6824.PubMedPubMedCentralCrossRef Facci L, et al. Toll-like receptors 2, -3 and -4 prime microglia but not astrocytes across central nervous system regions for ATP-dependent interleukin-1beta release. Sci Rep. 2014;4:6824.PubMedPubMedCentralCrossRef
7.
go back to reference Lund H, et al. Competitive repopulation of an empty microglial niche yields functionally distinct subsets of microglia-like cells. Nat Commun. 2018;9(1):4845.PubMedPubMedCentralCrossRef Lund H, et al. Competitive repopulation of an empty microglial niche yields functionally distinct subsets of microglia-like cells. Nat Commun. 2018;9(1):4845.PubMedPubMedCentralCrossRef
8.
go back to reference Herman FJ, Pasinetti GM. Principles of inflammasome priming and inhibition: Implications for psychiatric disorders. Brain Behav Immun. 2018;73:66–84.PubMedPubMedCentralCrossRef Herman FJ, Pasinetti GM. Principles of inflammasome priming and inhibition: Implications for psychiatric disorders. Brain Behav Immun. 2018;73:66–84.PubMedPubMedCentralCrossRef
11.
go back to reference Ziebell JM, et al. Aging with a traumatic brain injury: could behavioral morbidities and endocrine symptoms be influenced by microglial priming? Brain Behav Immun. 2017;59:1–7.PubMedCrossRef Ziebell JM, et al. Aging with a traumatic brain injury: could behavioral morbidities and endocrine symptoms be influenced by microglial priming? Brain Behav Immun. 2017;59:1–7.PubMedCrossRef
12.
go back to reference Li M, et al. Colony stimulating factor 1 receptor inhibition eliminates microglia and attenuates brain injury after intracerebral hemorrhage. J Cereb Blood Flow Metab. 2017;37(7):2383–95.PubMedCrossRef Li M, et al. Colony stimulating factor 1 receptor inhibition eliminates microglia and attenuates brain injury after intracerebral hemorrhage. J Cereb Blood Flow Metab. 2017;37(7):2383–95.PubMedCrossRef
13.
go back to reference Rice RA, et al. Elimination of microglia improves functional outcomes following extensive neuronal loss in the hippocampus. J Neurosci. 2015;35(27):9977–89.PubMedPubMedCentralCrossRef Rice RA, et al. Elimination of microglia improves functional outcomes following extensive neuronal loss in the hippocampus. J Neurosci. 2015;35(27):9977–89.PubMedPubMedCentralCrossRef
14.
go back to reference Spangenberg E, et al. Sustained microglial depletion with CSF1R inhibitor impairs parenchymal plaque development in an Alzheimer's disease model. Nat Commun. 2019;10(1):3758.PubMedPubMedCentralCrossRef Spangenberg E, et al. Sustained microglial depletion with CSF1R inhibitor impairs parenchymal plaque development in an Alzheimer's disease model. Nat Commun. 2019;10(1):3758.PubMedPubMedCentralCrossRef
15.
go back to reference Xie X, et al. Monocytes, microglia, and CD200-CD200R1 signaling are essential in the transmission of inflammation from the periphery to the central nervous system. J Neurochem. 2017;141(2):222–35.PubMedCrossRef Xie X, et al. Monocytes, microglia, and CD200-CD200R1 signaling are essential in the transmission of inflammation from the periphery to the central nervous system. J Neurochem. 2017;141(2):222–35.PubMedCrossRef
16.
17.
go back to reference Han J, et al. Enforced microglial depletion and repopulation as a promising strategy for the treatment of neurological disorders. Glia. 2019;67(2):217–31.PubMedCrossRef Han J, et al. Enforced microglial depletion and repopulation as a promising strategy for the treatment of neurological disorders. Glia. 2019;67(2):217–31.PubMedCrossRef
18.
19.
go back to reference Waisman A, et al. Homeostasis of Microglia in the adult brain: review of novel microglia depletion systems. Trends Immunol. 2015;36(10):625–36.PubMedCrossRef Waisman A, et al. Homeostasis of Microglia in the adult brain: review of novel microglia depletion systems. Trends Immunol. 2015;36(10):625–36.PubMedCrossRef
20.
go back to reference Dagher NN, et al. Colony-stimulating factor 1 receptor inhibition prevents microglial plaque association and improves cognition in 3xTg-AD mice. J Neuroinflammation. 2015;12:139.PubMedPubMedCentralCrossRef Dagher NN, et al. Colony-stimulating factor 1 receptor inhibition prevents microglial plaque association and improves cognition in 3xTg-AD mice. J Neuroinflammation. 2015;12:139.PubMedPubMedCentralCrossRef
21.
go back to reference Elmore MR, et al. Characterizing newly repopulated microglia in the adult mouse: impacts on animal behavior, cell morphology, and neuroinflammation. PLoS One. 2015;10(4):e0122912.PubMedPubMedCentralCrossRef Elmore MR, et al. Characterizing newly repopulated microglia in the adult mouse: impacts on animal behavior, cell morphology, and neuroinflammation. PLoS One. 2015;10(4):e0122912.PubMedPubMedCentralCrossRef
22.
go back to reference Szalay G, et al. Microglia protect against brain injury and their selective elimination dysregulates neuronal network activity after stroke. Nat Commun. 2016;7:11499.PubMedPubMedCentralCrossRef Szalay G, et al. Microglia protect against brain injury and their selective elimination dysregulates neuronal network activity after stroke. Nat Commun. 2016;7:11499.PubMedPubMedCentralCrossRef
23.
24.
go back to reference Bruttger J, et al. Genetic cell ablation reveals clusters of local self-renewing microglia in the mammalian central nervous system. Immunity. 2015;43(1):92–106.PubMedCrossRef Bruttger J, et al. Genetic cell ablation reveals clusters of local self-renewing microglia in the mammalian central nervous system. Immunity. 2015;43(1):92–106.PubMedCrossRef
25.
go back to reference Elmore MR, et al. Colony-stimulating factor 1 receptor signaling is necessary for microglia viability, unmasking a microglia progenitor cell in the adult brain. Neuron. 2014;82(2):380–97.PubMedPubMedCentralCrossRef Elmore MR, et al. Colony-stimulating factor 1 receptor signaling is necessary for microglia viability, unmasking a microglia progenitor cell in the adult brain. Neuron. 2014;82(2):380–97.PubMedPubMedCentralCrossRef
26.
go back to reference Huang Y, et al. Repopulated microglia are solely derived from the proliferation of residual microglia after acute depletion. Nat Neurosci. 2018;21(4):530–40.PubMedCrossRef Huang Y, et al. Repopulated microglia are solely derived from the proliferation of residual microglia after acute depletion. Nat Neurosci. 2018;21(4):530–40.PubMedCrossRef
27.
go back to reference Varvel NH, et al. Microglial repopulation model reveals a robust homeostatic process for replacing CNS myeloid cells. Proc Natl Acad Sci U S A. 2012;109(44):18150–5.PubMedPubMedCentralCrossRef Varvel NH, et al. Microglial repopulation model reveals a robust homeostatic process for replacing CNS myeloid cells. Proc Natl Acad Sci U S A. 2012;109(44):18150–5.PubMedPubMedCentralCrossRef
28.
go back to reference Sheppard O, Coleman MP, Durrant CS. Lipopolysaccharide-induced neuroinflammation induces presynaptic disruption through a direct action on brain tissue involving microglia-derived interleukin 1 beta. J Neuroinflammation. 2019;16(1):106.PubMedPubMedCentralCrossRef Sheppard O, Coleman MP, Durrant CS. Lipopolysaccharide-induced neuroinflammation induces presynaptic disruption through a direct action on brain tissue involving microglia-derived interleukin 1 beta. J Neuroinflammation. 2019;16(1):106.PubMedPubMedCentralCrossRef
29.
go back to reference Stoppini L, Buchs PA, Muller D. A simple method for organotypic cultures of nervous tissue. J Neurosci Methods. 1991;37(2):173–82.PubMedCrossRef Stoppini L, Buchs PA, Muller D. A simple method for organotypic cultures of nervous tissue. J Neurosci Methods. 1991;37(2):173–82.PubMedCrossRef
30.
go back to reference Bonhoeffer T, Yuste R. Spine motility. Phenomenology, mechanisms, and function. Neuron. 2002;35(6):1019–27.PubMedCrossRef Bonhoeffer T, Yuste R. Spine motility. Phenomenology, mechanisms, and function. Neuron. 2002;35(6):1019–27.PubMedCrossRef
33.
go back to reference Verkuyl JM, Matus A. Time-lapse imaging of dendritic spines in vitro. Nat Protoc. 2006;1(5):2399–405.PubMedCrossRef Verkuyl JM, Matus A. Time-lapse imaging of dendritic spines in vitro. Nat Protoc. 2006;1(5):2399–405.PubMedCrossRef
36.
go back to reference Montero M, Gonzalez B, Zimmer J. Immunotoxic depletion of microglia in mouse hippocampal slice cultures enhances ischemia-like neurodegeneration. Brain Res. 2009;1291:140–52.PubMedCrossRef Montero M, Gonzalez B, Zimmer J. Immunotoxic depletion of microglia in mouse hippocampal slice cultures enhances ischemia-like neurodegeneration. Brain Res. 2009;1291:140–52.PubMedCrossRef
38.
go back to reference Masuch A, et al. Microglia replenished OHSC: a culture system to study in vivo like adult microglia. Glia. 2016;64(8):1285–97.PubMedCrossRef Masuch A, et al. Microglia replenished OHSC: a culture system to study in vivo like adult microglia. Glia. 2016;64(8):1285–97.PubMedCrossRef
39.
go back to reference Zou JY, Crews FT. Release of neuronal HMGB1 by ethanol through decreased HDAC activity activates brain neuroimmune signaling. PLoS One. 2014;9(2):e87915.PubMedPubMedCentralCrossRef Zou JY, Crews FT. Release of neuronal HMGB1 by ethanol through decreased HDAC activity activates brain neuroimmune signaling. PLoS One. 2014;9(2):e87915.PubMedPubMedCentralCrossRef
40.
go back to reference Zou J, Crews F. Induction of innate immune gene expression cascades in brain slice cultures by ethanol: key role of NF-kappaB and proinflammatory cytokines. Alcohol Clin Exp Res. 2010;34(5):777–89.PubMedCrossRef Zou J, Crews F. Induction of innate immune gene expression cascades in brain slice cultures by ethanol: key role of NF-kappaB and proinflammatory cytokines. Alcohol Clin Exp Res. 2010;34(5):777–89.PubMedCrossRef
41.
go back to reference Crews FT, et al. Toll-like receptor signaling and stages of addiction. Psychopharmacology (Berl). 2017;234(9-10):1483–98.CrossRef Crews FT, et al. Toll-like receptor signaling and stages of addiction. Psychopharmacology (Berl). 2017;234(9-10):1483–98.CrossRef
42.
go back to reference He J, Crews FT. Increased MCP-1 and microglia in various regions of the human alcoholic brain. Exp Neurol. 2008;210(2):349–58.PubMedCrossRef He J, Crews FT. Increased MCP-1 and microglia in various regions of the human alcoholic brain. Exp Neurol. 2008;210(2):349–58.PubMedCrossRef
43.
go back to reference Coleman LG Jr, Zou J, Crews FT. Microglial-derived miRNA let-7 and HMGB1 contribute to ethanol-induced neurotoxicity via TLR7. J Neuroinflammation. 2017;14(1):22.PubMedPubMedCentralCrossRef Coleman LG Jr, Zou J, Crews FT. Microglial-derived miRNA let-7 and HMGB1 contribute to ethanol-induced neurotoxicity via TLR7. J Neuroinflammation. 2017;14(1):22.PubMedPubMedCentralCrossRef
44.
go back to reference Lawrimore CJ, Crews FT. Ethanol, TLR3, and TLR4 Agonists have unique innate immune responses in neuron-like SH-SY5Y and microglia-like BV2. Alcoholism-Clin Exp Res. 2017;41(5):939–54.CrossRef Lawrimore CJ, Crews FT. Ethanol, TLR3, and TLR4 Agonists have unique innate immune responses in neuron-like SH-SY5Y and microglia-like BV2. Alcoholism-Clin Exp Res. 2017;41(5):939–54.CrossRef
45.
go back to reference Zou J, Crews FT. Glutamate/NMDA excitotoxicity and HMGB1/TLR4 neuroimmune toxicity converge as components of neurodegenration. AIMS Molecular Science. 2015;2(2):77–100.CrossRef Zou J, Crews FT. Glutamate/NMDA excitotoxicity and HMGB1/TLR4 neuroimmune toxicity converge as components of neurodegenration. AIMS Molecular Science. 2015;2(2):77–100.CrossRef
46.
go back to reference Liang Y, et al. Toll-like receptor 4 is associated with seizures following ischemia with hyperglycemia. Brain Res. 2014;1590:75–84.PubMedCrossRef Liang Y, et al. Toll-like receptor 4 is associated with seizures following ischemia with hyperglycemia. Brain Res. 2014;1590:75–84.PubMedCrossRef
47.
go back to reference Coleman, L.G., Jr. and F.T. Crews, Innate immune signaling and alcohol use disorders. Handb Exp Pharmacol, 2018. Coleman, L.G., Jr. and F.T. Crews, Innate immune signaling and alcohol use disorders. Handb Exp Pharmacol, 2018.
48.
go back to reference Zou JY, Crews FT. TNF alpha potentiates glutamate neurotoxicity by inhibiting glutamate uptake in organotypic brain slice cultures: neuroprotection by NF kappa B inhibition. Brain Res. 2005;1034(1-2):11–24.PubMedCrossRef Zou JY, Crews FT. TNF alpha potentiates glutamate neurotoxicity by inhibiting glutamate uptake in organotypic brain slice cultures: neuroprotection by NF kappa B inhibition. Brain Res. 2005;1034(1-2):11–24.PubMedCrossRef
49.
go back to reference Zou J, Crews F. CREB and NF-kappaB transcription factors regulate sensitivity to excitotoxic and oxidative stress induced neuronal cell death. Cell Mol Neurobiol. 2006;26(4-6):385–405.PubMedCrossRef Zou J, Crews F. CREB and NF-kappaB transcription factors regulate sensitivity to excitotoxic and oxidative stress induced neuronal cell death. Cell Mol Neurobiol. 2006;26(4-6):385–405.PubMedCrossRef
51.
go back to reference Grace PM, et al. Morphine paradoxically prolongs neuropathic pain in rats by amplifying spinal NLRP3 inflammasome activation. Proc Natl Acad Sci U S A. 2016;113(24):E3441–50.PubMedPubMedCentralCrossRef Grace PM, et al. Morphine paradoxically prolongs neuropathic pain in rats by amplifying spinal NLRP3 inflammasome activation. Proc Natl Acad Sci U S A. 2016;113(24):E3441–50.PubMedPubMedCentralCrossRef
53.
go back to reference Kuhn HG, Dickinson-Anson H, Gage FH. Neurogenesis in the dentate gyrus of the adult rat: age-related decrease of neuronal progenitor proliferation. J Neurosci. 1996;16(6):2027–33.PubMedPubMedCentralCrossRef Kuhn HG, Dickinson-Anson H, Gage FH. Neurogenesis in the dentate gyrus of the adult rat: age-related decrease of neuronal progenitor proliferation. J Neurosci. 1996;16(6):2027–33.PubMedPubMedCentralCrossRef
54.
go back to reference Nixon K, Crews FT. Binge ethanol exposure decreases neurogenesis in adult rat hippocampus. J Neurochem. 2002;83(5):1087–93.PubMedCrossRef Nixon K, Crews FT. Binge ethanol exposure decreases neurogenesis in adult rat hippocampus. J Neurochem. 2002;83(5):1087–93.PubMedCrossRef
55.
go back to reference Coleman LG Jr, et al. HMGB1/IL-1beta complexes regulate neuroimmune responses in alcoholism. Brain Behav Immun. 2017. Coleman LG Jr, et al. HMGB1/IL-1beta complexes regulate neuroimmune responses in alcoholism. Brain Behav Immun. 2017.
56.
go back to reference Buttgereit A, et al. Sall1 is a transcriptional regulator defining microglia identity and function. Nat Immunol. 2016;17(12):1397–406.PubMedCrossRef Buttgereit A, et al. Sall1 is a transcriptional regulator defining microglia identity and function. Nat Immunol. 2016;17(12):1397–406.PubMedCrossRef
57.
go back to reference Alfonso-Loeches S, Guerri C. Molecular and behavioral aspects of the actions of alcohol on the adult and developing brain. Crit Rev Clin Lab Sci. 2011;48(1):19–47.PubMedCrossRef Alfonso-Loeches S, Guerri C. Molecular and behavioral aspects of the actions of alcohol on the adult and developing brain. Crit Rev Clin Lab Sci. 2011;48(1):19–47.PubMedCrossRef
58.
59.
go back to reference Crews FT, et al. High mobility group box 1/Toll-like receptor danger signaling increases brain neuroimmune activation in alcohol dependence. Biol Psychiatry. 2013;73(7):602–12.PubMedCrossRef Crews FT, et al. High mobility group box 1/Toll-like receptor danger signaling increases brain neuroimmune activation in alcohol dependence. Biol Psychiatry. 2013;73(7):602–12.PubMedCrossRef
60.
go back to reference Fernandez-Lizarbe S, Pascual M, Guerri C. Critical role of TLR4 response in the activation of microglia induced by ethanol. J Immunol. 2009;183(7):4733–44.PubMedCrossRef Fernandez-Lizarbe S, Pascual M, Guerri C. Critical role of TLR4 response in the activation of microglia induced by ethanol. J Immunol. 2009;183(7):4733–44.PubMedCrossRef
61.
go back to reference Bala S, et al. Up-regulation of microRNA-155 in macrophages contributes to increased tumor necrosis factor {alpha} (TNF{alpha}) production via increased mRNA half-life in alcoholic liver disease. J Biol Chem. 2011;286(2):1436–44.PubMedCrossRef Bala S, et al. Up-regulation of microRNA-155 in macrophages contributes to increased tumor necrosis factor {alpha} (TNF{alpha}) production via increased mRNA half-life in alcoholic liver disease. J Biol Chem. 2011;286(2):1436–44.PubMedCrossRef
62.
go back to reference Morris MC, Gilliam EA, Li L. Innate immune programing by endotoxin and its pathological consequences. Front Immunol. 2014;5:680.PubMed Morris MC, Gilliam EA, Li L. Innate immune programing by endotoxin and its pathological consequences. Front Immunol. 2014;5:680.PubMed
63.
go back to reference Qin L, Crews FT. Chronic ethanol increases systemic TLR3 agonist-induced neuroinflammation and neurodegeneration. J Neuroinflammation. 2012;9:130.PubMedPubMedCentral Qin L, Crews FT. Chronic ethanol increases systemic TLR3 agonist-induced neuroinflammation and neurodegeneration. J Neuroinflammation. 2012;9:130.PubMedPubMedCentral
64.
go back to reference Qin L, et al. Increased systemic and brain cytokine production and neuroinflammation by endotoxin following ethanol treatment. J Neuroinflammation. 2008;5:10.PubMedPubMedCentralCrossRef Qin L, et al. Increased systemic and brain cytokine production and neuroinflammation by endotoxin following ethanol treatment. J Neuroinflammation. 2008;5:10.PubMedPubMedCentralCrossRef
65.
go back to reference Marshall, S.A., C.R. Geil, and K. Nixon, Prior binge ethanol exposure potentiates the microglial response in a model of alcohol-induced neurodegeneration. Brain Sci, 2016. 6(2).PubMedCentralCrossRef Marshall, S.A., C.R. Geil, and K. Nixon, Prior binge ethanol exposure potentiates the microglial response in a model of alcohol-induced neurodegeneration. Brain Sci, 2016. 6(2).PubMedCentralCrossRef
66.
go back to reference Qin L, Crews FT. NADPH oxidase and reactive oxygen species contribute to alcohol-induced microglial activation and neurodegeneration. J Neuroinflammation. 2012;9:5.PubMedPubMedCentral Qin L, Crews FT. NADPH oxidase and reactive oxygen species contribute to alcohol-induced microglial activation and neurodegeneration. J Neuroinflammation. 2012;9:5.PubMedPubMedCentral
67.
go back to reference Qin L, et al. NADPH oxidase and aging drive microglial activation, oxidative stress, and dopaminergic neurodegeneration following systemic LPS administration. Glia. 2013;61(6):855–68.PubMedPubMedCentralCrossRef Qin L, et al. NADPH oxidase and aging drive microglial activation, oxidative stress, and dopaminergic neurodegeneration following systemic LPS administration. Glia. 2013;61(6):855–68.PubMedPubMedCentralCrossRef
69.
go back to reference Coleman LG Jr, et al. Adolescent binge ethanol treatment alters adult brain regional volumes, cortical extracellular matrix protein and behavioral flexibility. Pharmacol Biochem Behav. 2014;116:142–51.PubMedCrossRef Coleman LG Jr, et al. Adolescent binge ethanol treatment alters adult brain regional volumes, cortical extracellular matrix protein and behavioral flexibility. Pharmacol Biochem Behav. 2014;116:142–51.PubMedCrossRef
70.
go back to reference Vetreno RP, et al. Persistent adult neuroimmune activation and loss of hippocampal neurogenesis following adolescent ethanol exposure: Blockade by Exercise and the Anti-inflammatory Drug Indomethacin. Front Neurosci. 2018;12:200.PubMedPubMedCentralCrossRef Vetreno RP, et al. Persistent adult neuroimmune activation and loss of hippocampal neurogenesis following adolescent ethanol exposure: Blockade by Exercise and the Anti-inflammatory Drug Indomethacin. Front Neurosci. 2018;12:200.PubMedPubMedCentralCrossRef
72.
go back to reference Udina M, et al. Prophylactic antidepressant treatment of interferon-induced depression in chronic hepatitis C: a systematic review and meta-analysis. J Clin Psychiatry. 2014;75(10):e1113–21.PubMedCrossRef Udina M, et al. Prophylactic antidepressant treatment of interferon-induced depression in chronic hepatitis C: a systematic review and meta-analysis. J Clin Psychiatry. 2014;75(10):e1113–21.PubMedCrossRef
73.
go back to reference Bonaccorso S, et al. Depression induced by treatment with interferon-alpha in patients affected by hepatitis C virus. J Affect Disord. 2002;72(3):237–41.PubMedCrossRef Bonaccorso S, et al. Depression induced by treatment with interferon-alpha in patients affected by hepatitis C virus. J Affect Disord. 2002;72(3):237–41.PubMedCrossRef
74.
go back to reference Lieb K, et al. Cognitive impairment in patients with chronic hepatitis treated with interferon alpha (IFNalpha): results from a prospective study. Eur Psychiatry. 2006;21(3):204–10.PubMedCrossRef Lieb K, et al. Cognitive impairment in patients with chronic hepatitis treated with interferon alpha (IFNalpha): results from a prospective study. Eur Psychiatry. 2006;21(3):204–10.PubMedCrossRef
75.
76.
go back to reference Zheng LS, Kaneko N, Sawamoto K. Minocycline treatment ameliorates interferon-alpha- induced neurogenic defects and depression-like behaviors in mice. Front Cell Neurosci. 2015;9:5.PubMedPubMedCentral Zheng LS, Kaneko N, Sawamoto K. Minocycline treatment ameliorates interferon-alpha- induced neurogenic defects and depression-like behaviors in mice. Front Cell Neurosci. 2015;9:5.PubMedPubMedCentral
77.
go back to reference Paolicelli RC, et al. Synaptic pruning by microglia is necessary for normal brain development. Science. 2011;333(6048):1456–8.PubMedCrossRef Paolicelli RC, et al. Synaptic pruning by microglia is necessary for normal brain development. Science. 2011;333(6048):1456–8.PubMedCrossRef
78.
go back to reference Costello DA, et al. Long term potentiation is impaired in membrane glycoprotein CD200-deficient mice: a role for Toll-like receptor activation. J Biol Chem. 2011;286(40):34722–32.PubMedPubMedCentralCrossRef Costello DA, et al. Long term potentiation is impaired in membrane glycoprotein CD200-deficient mice: a role for Toll-like receptor activation. J Biol Chem. 2011;286(40):34722–32.PubMedPubMedCentralCrossRef
79.
go back to reference Koning N, et al. Distribution of the immune inhibitory molecules CD200 and CD200R in the normal central nervous system and multiple sclerosis lesions suggests neuron-glia and glia-glia interactions. J Neuropathol Exp Neurol. 2009;68(2):159–67.PubMedCrossRef Koning N, et al. Distribution of the immune inhibitory molecules CD200 and CD200R in the normal central nervous system and multiple sclerosis lesions suggests neuron-glia and glia-glia interactions. J Neuropathol Exp Neurol. 2009;68(2):159–67.PubMedCrossRef
80.
go back to reference Kierdorf K, et al. Microglia emerge from erythromyeloid precursors via Pu.1- and Irf8-dependent pathways. Nat Neurosci. 2013;16(3):273–80.PubMedCrossRef Kierdorf K, et al. Microglia emerge from erythromyeloid precursors via Pu.1- and Irf8-dependent pathways. Nat Neurosci. 2013;16(3):273–80.PubMedCrossRef
81.
go back to reference Hughes EG, Bergles DE. Hidden progenitors replace microglia in the adult brain. Neuron. 2014;82(2):253–5.PubMedCrossRef Hughes EG, Bergles DE. Hidden progenitors replace microglia in the adult brain. Neuron. 2014;82(2):253–5.PubMedCrossRef
82.
83.
84.
go back to reference O'Neil SM, et al. Forced turnover of aged microglia induces an intermediate phenotype but does not rebalance CNS environmental cues driving priming to immune challenge. Acta Neuropathol Commun. 2018;6(1):129.PubMedPubMedCentralCrossRef O'Neil SM, et al. Forced turnover of aged microglia induces an intermediate phenotype but does not rebalance CNS environmental cues driving priming to immune challenge. Acta Neuropathol Commun. 2018;6(1):129.PubMedPubMedCentralCrossRef
85.
go back to reference Elmore MRP, et al. Replacement of microglia in the aged brain reverses cognitive, synaptic, and neuronal deficits in mice. Aging Cell. 2018;17(6):e12832.PubMedPubMedCentralCrossRef Elmore MRP, et al. Replacement of microglia in the aged brain reverses cognitive, synaptic, and neuronal deficits in mice. Aging Cell. 2018;17(6):e12832.PubMedPubMedCentralCrossRef
Metadata
Title
Microglial depletion and repopulation in brain slice culture normalizes sensitized proinflammatory signaling
Authors
Leon G. Coleman Jr
Jian Zou
Fulton T. Crews
Publication date
01-12-2020
Publisher
BioMed Central
Published in
Journal of Neuroinflammation / Issue 1/2020
Electronic ISSN: 1742-2094
DOI
https://doi.org/10.1186/s12974-019-1678-y

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