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141
result(s) for
"Golenbock, Douglas T."
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NLRP3 is activated in Alzheimer’s disease and contributes to pathology in APP/PS1 mice
by
Gelpi, Ellen
,
Vieira-Saecker, Ana
,
Stutz, Andrea
in
631/250/256/2177
,
631/250/262/2106/2517
,
692/420/2780
2013
Alzheimer’s-prone mice deficient in NLRP3 or caspase-1 fail to develop learning deficits and show reduced neuropathology.
Inflammasome a target in Alzheimer's disease
Alzheimer's disease is associated with activation of the innate immune system. It is known that amyloid-β can activate the NLRP3 inflammasome
in vitro
in microglia, and here it is shown that the inflammasome has a critical role in Alzheimer's disease pathology in a mouse model
in vivo
. In the absence of NLRP3 or caspase-1, amyloidosis and neuropathology in mice is reduced, and cognition and associated electrophysiological parameters improved. Examination of post-mortem human Alzheimer's brains supports the link between NLRP3 and brain inflammation. Taken together, these results suggest that amyloid-β-induced activation of NLRP3 enhances the progression of Alzheimer's disease by mediating a harmful chronic inflammatory tissue post-mortem response, and that agents that block the activity of the NLRP3 inflammasome, or inflammasome-derived cytokines, might slow the progression of Alzheimer's disease.
Alzheimer’s disease is the world’s most common dementing illness. Deposition of amyloid-β peptide drives cerebral neuroinflammation by activating microglia
1
,
2
. Indeed, amyloid-β activation of the NLRP3 inflammasome in microglia is fundamental for interleukin-1β maturation and subsequent inflammatory events
3
. However, it remains unknown whether NLRP3 activation contributes to Alzheimer’s disease
in vivo
. Here we demonstrate strongly enhanced active caspase-1 expression in human mild cognitive impairment and brains with Alzheimer’s disease, suggesting a role for the inflammasome in this neurodegenerative disease.
Nlrp3
−/−
or
Casp1
−/−
mice carrying mutations associated with familial Alzheimer’s disease were largely protected from loss of spatial memory and other sequelae associated with Alzheimer’s disease, and demonstrated reduced brain caspase-1 and interleukin-1β activation as well as enhanced amyloid-β clearance. Furthermore, NLRP3 inflammasome deficiency skewed microglial cells to an M2 phenotype and resulted in the decreased deposition of amyloid-β in the APP/PS1 model of Alzheimer’s disease. These results show an important role for the NLRP3/caspase-1 axis in the pathogenesis of Alzheimer’s disease, and suggest that NLRP3 inflammasome inhibition represents a new therapeutic intervention for the disease.
Journal Article
Hemolysis-induced lethality involves inflammasome activation by heme
by
Rosane B. de Oliveira
,
Letícia S. Alves
,
Marcelo T. Bozza
in
Adenosine triphosphatase
,
Animals
,
Apoptosis
2014
The increase of extracellular heme is a hallmark of hemolysis or extensive cell damage. Heme has prooxidant, cytotoxic, and inflammatory effects, playing a central role in the pathogenesis of malaria, sepsis, and sickle cell disease. However, the mechanisms by which heme is sensed by innate immune cells contributing to these diseases are not fully characterized. We found that heme, but not porphyrins without iron, activated LPS-primed macrophages promoting the processing of IL-1β dependent on nucleotide-binding domain and leucine rich repeat containing family, pyrin domain containing 3 (NLRP3). The activation of NLRP3 by heme required spleen tyrosine kinase, NADPH oxidase-2, mitochondrial reactive oxygen species, and K ⁺ efflux, whereas it was independent of heme internalization, lysosomal damage, ATP release, the purinergic receptor P2X7, and cell death. Importantly, our results indicated the participation of macrophages, NLRP3 inflammasome components, and IL-1R in the lethality caused by sterile hemolysis. Thus, understanding the molecular pathways affected by heme in innate immune cells might prove useful to identify new therapeutic targets for diseases that have heme release.
Significance Heme causes inflammation in sterile and infectious conditions, contributing to the pathogenesis of sickle cell disease, malaria, and sepsis, but the mechanisms by which heme operates are not completely understood. Here we show that heme induces IL-1β processing through the activation of the nucleotide-binding domain and leucine rich repeat containing family, pyrin domain containing 3 (NLRP3) inflammasome in macrophages. Our results suggest that among NLRP3 activators, heme has common as well as unique requirements to trigger inflammasome activation. In vivo, hemolysis and heme cause inflammasome activation. Importantly, macrophages, inflammasome components, and IL-1R contribute to hemolysis-induced lethality. These results highlight the potential of understanding the molecular mechanisms by which heme is sensed by innate immune receptors as a way to identify new therapeutic strategies to treat the pathological consequences of hemolytic diseases.
Journal Article
CD36 ligands promote sterile inflammation through assembly of a Toll-like receptor 4 and 6 heterodimer
by
Rayner, Katey J
,
Frazier, William A
,
Golenbock, Douglas T
in
Alzheimer's disease
,
Amyloid beta-Peptides - immunology
,
Animals
2010
The molecular mechanisms behind recognition of altered self remain unclear. Moore and co-workers show that oxidized low-density lipoprotein (LDL) and β-amyloid trigger inflammatory signaling through a heterodimer of Toll-like receptors 4 and 6.
In atherosclerosis and Alzheimer's disease, deposition of the altered self components oxidized low-density lipoprotein (LDL) and amyloid-β triggers a protracted sterile inflammatory response. Although chronic stimulation of the innate immune system is believed to underlie the pathology of these diseases, the molecular mechanisms of activation remain unclear. Here we show that oxidized LDL and amyloid-β trigger inflammatory signaling through a heterodimer of Toll-like receptors 4 and 6. Assembly of this newly identified heterodimer is regulated by signals from the scavenger receptor CD36, a common receptor for these disparate ligands. Our results identify CD36-TLR4-TLR6 activation as a common molecular mechanism by which atherogenic lipids and amyloid-β stimulate sterile inflammation and suggest a new model of TLR heterodimerization triggered by coreceptor signaling events.
Journal Article
Malaria-Induced NLRP12/NLRP3-Dependent Caspase-1 Activation Mediates Inflammation and Hypersensitivity to Bacterial Superinfection
by
Gazzinelli, Ricardo T.
,
Pereira, Dhelio
,
Martins, Flaviano S.
in
Animals
,
Bacterial infections
,
Bacterial Infections - genetics
2014
Cyclic paroxysm and high fever are hallmarks of malaria and are associated with high levels of pyrogenic cytokines, including IL-1β. In this report, we describe a signature for the expression of inflammasome-related genes and caspase-1 activation in malaria. Indeed, when we infected mice, Plasmodium infection was sufficient to promote MyD88-mediated caspase-1 activation, dependent on IFN-γ-priming and the expression of inflammasome components ASC, P2X7R, NLRP3 and/or NLRP12. Pro-IL-1β expression required a second stimulation with LPS and was also dependent on IFN-γ-priming and functional TNFR1. As a consequence of Plasmodium-induced caspase-1 activation, mice produced extremely high levels of IL-1β upon a second microbial stimulus, and became hypersensitive to septic shock. Therapeutic intervention with IL-1 receptor antagonist prevented bacterial-induced lethality in rodents. Similar to mice, we observed a significantly increased frequency of circulating CD14(+)CD16(-)Caspase-1(+) and CD14(dim)CD16(+)Caspase-1(+) monocytes in peripheral blood mononuclear cells from febrile malaria patients. These cells readily produced large amounts of IL-1β after stimulation with LPS. Furthermore, we observed the presence of inflammasome complexes in monocytes from malaria patients containing either NLRP3 or NLRP12 pyroptosomes. We conclude that NLRP12/NLRP3-dependent activation of caspase-1 is likely to be a key event in mediating systemic production of IL-1β and hypersensitivity to secondary bacterial infection during malaria.
Journal Article
Lymphocyte crosstalk is required for monocyte-intrinsic trained immunity to Plasmodium falciparum
by
Dobbs, Katherine
,
Dent, Arlene
,
Golenbock, Douglas T.
in
Adaptive immunity
,
Bacterial infections
,
Biomedical research
2022
Plasmodium falciparum (P. falciparum) induces trained innate immune responses in vitro, where initial stimulation of adherent PBMCs with P. falciparum-infected RBCs (iRBCs) results in hyperresponsiveness to subsequent ligation of TLR2. This response correlates with the presence of T and B lymphocytes in adherent PBMCs, suggesting that innate immune training is partially due to adaptive immunity. We found that T cell-depleted PBMCs and purified monocytes alone did not elicit hyperproduction of IL-6 and TNF-α under training conditions. Analysis of P. falciparum-trained PBMCs showed that DCs did not develop under control conditions, and IL-6 and TNF-α were primarily produced by monocytes and DCs. Transwell experiments isolating purified monocytes from either PBMCs or purified CD4+ T cells, but allowing diffusion of secreted proteins, enabled monocytes trained with iRBCs to hyperproduce IL-6 and TNF-α after TLR restimulation. Purified monocytes stimulated with IFN-γ hyperproduced IL-6 and TNF-α, whereas blockade of IFN-γ in P. falciparum-trained PBMCs inhibited trained responses. Assay for transposase-accessible chromatin with high-throughput sequencing (ATAC-Seq) on monocytes from patients with malaria showed persistently open chromatin at genes that appeared to be trained in vitro. Together, these findings indicate that the trained immune response of monocytes to P. falciparum is not completely cell intrinsic but depends on soluble signals from lymphocytes.
Journal Article
Ethanol consumption aggravates amyloid pathology and neuroinflammation in Alzheimer’s disease associated with inflammasome activation and ASC speck propagation
by
Nagesh, Prashanth Thevkar
,
Szabo, Gyongyi
,
Brezani, Veronika
in
Alcohol
,
Alcohol Drinking - adverse effects
,
Alcohol Drinking - metabolism
2025
Background
Alcohol use disorder (AUD) has been associated with Alzheimer’s disease (AD) and dementia, yet the underlying mechanisms and specific role of ethanol in AD progression remain poorly understood. Neuroinflammation has emerged as a key contributor to both AD pathogenesis and ethanol-induced brain damage. Activation of innate immune cells and signaling pathways, in particular NLRP3 inflammasome, plays a pivotal role in both AD and ethanol-induced inflammation. Thus, we postulated that excessive ethanol consumption could contribute to AD progression via amplified neuroinflammation.
Methods
The 12–15-month-old WT and APP/PS1 mice received water or ethanol (3.5 g/kg) binge every alternate day for a period of one month. The effects of ethanol on amyloid pathology, microglia and astrocyte activation, and NLRP3 inflammasome activation were evaluated in the mouse brains. The effect of ethanol and amyloid β on NLRP3 inflammasome signaling was further studied in primary glial cells.
Results
In this study, we show that repeated ethanol binges aggravate the amyloid pathology and plaque burden in the hippocampus of APP/PS1 mice. Furthermore, we demonstrate the additive effect of ethanol administration on NLRP3 inflammasome activation, IL-1β release, and ASC aggregation in the brains of APP/PS1 mice and primary glia cultures. Our study also reveals a strong astrocyte activation by ethanol in the hippocampus of APP/PS1 mice as demonstrated by significantly increased GFAP and ALDH1L1 protein levels. Further in vitro analysis revealed that ethanol potentiates the effect of amyloid β to increase the NLRP3 inflammasome activation in both primary astrocytes and microglia. Lastly, we demonstrate that glia-produced ASC specks induce IL-1β in microglia and astrocytes and induce ROS in SH-SY5Y neurons, contributing to sustained neuroinflammation in AD.
Conclusion
Collectively, our results demonstrate that ethanol consumption exacerbates features of AD pathology associated with amplified neuroinflammation and NLRP3/ASC inflammasome activation, which may play an important role in the disease progression and severity.
Journal Article
Inflammasome-derived cytokine IL18 suppresses amyloid-induced seizures in Alzheimer-prone mice
by
DePaula Tamburro, Nelsy
,
Germain, Gail
,
Thatcher, Elizabeth Jeanne
in
Alzheimer Disease - drug therapy
,
Alzheimer Disease - genetics
,
Alzheimer Disease - metabolism
2018
Alzheimer’s disease (AD) is characterized by the progressive destruction and dysfunction of central neurons. AD patients commonly have unprovoked seizures compared with age-matched controls. Amyloid peptide-related inflammation is thought to be an important aspect of AD pathogenesis. We previously reported that NLRP3 inflammasome KO mice, when bred into APPswe/PS1ΔE9 (APP/PS1) mice, are completely protected from amyloid-induced AD-like disease, presumably because they cannot produce mature IL1β or IL18. To test the role of IL18, we bred IL18KO mice with APP/PS1 mice. Surprisingly, IL18KO/APP/PS1 mice developed a lethal seizure disorder that was completely reversed by the anticonvulsant levetiracetam. IL18-deficient AD mice showed a lower threshold in chemically induced seizures and a selective increase in gene expression related to increased neuronal activity. IL18-deficient AD mice exhibited increased excitatory synaptic proteins, spine density, and basal excitatory synaptic transmission that contributed to seizure activity. This study identifies a role for IL18 in suppressing aberrant neuronal transmission in AD.
Journal Article
Interleukin-10 limits immune-mediated pathology in chronic subclinical plasmodial infection
by
De Paula Tamburro, Nelsy
,
Forconi, Catherine S.
,
Monks, Brian G.
in
Animals
,
Biology and Life Sciences
,
Bone marrow
2025
Subclinical parasitemia constitutes the predominant proportion of Plasmodium spp. infections in hyperendemic regions of the world. Elevated levels of serum interleukin-10 (IL-10) are observed in both acute symptomatic and chronic subclinical Plasmodium spp. infections. The role of IL-10 in acute infection has been extensively studied; however, the role of sustained elevated levels of IL-10 in chronic subclinical plasmodial infections remains to be determined. We investigated the role of IL-10 in a long-term subclinical and patent Plasmodium chabaudi chabaudi- AS ( Pc ) infection using mice lacking humoral immunity (µMT -/- mice). Pc -infected µMT -/- mice exhibit a long-term (99 days) chronic infection, with microscopic levels of parasitemia and without any outward signs of disease. We found that chronically infected mice have slightly elevated levels of tumor necrosis factor α (TNFα) and interferon-γ (IFNγ), and high levels of IL-10 in the circulation. The source of IL-10 was CD4+ T cells. We found that elevated IL-10 levels were mechanistically linked to subclinical Plasmodium infection by blocking IL-10 signaling. Anti-IL-10R resulted in a marked, albeit transient, reduction of the parasitemia that was accompanied by a robust pro-inflammatory response and death of chronically infected µMT -/- mice. A similar outcome was observed in infected µMT -/- mice after CD4+ T cell depletion with anti-CD4 antibody. CD4-depleted infected µMT -/- mice exhibited reduced IL-10 and rapid weight loss, succumbing to infection by day 6 after CD4 neutralization. Our results showed that IL-10 from CD4+ T cells limits immune-mediated pathology in chronic subclinical Pc infection in µMT -/- mice by protecting against excessive inflammatory responses to blood-stage parasites.
Journal Article
Human lupus autoantibody–DNA complexes activate DCs through cooperation of CD32 and TLR9
by
Hayashi, Fumitaka
,
Golenbock, Douglas T.
,
Murali, Mandakolathur R.
in
Antibodies
,
Antibodies, Antinuclear - immunology
,
Antigen-Antibody Complex - immunology
2005
Systemic lupus erythematosus (SLE) is an autoimmune disease characterized by pathogenic autoantibodies against nucleoproteins and DNA. Here we show that DNA-containing immune complexes (ICs) within lupus serum (SLE-ICs), but not protein-containing ICs from other autoimmune rheumatic diseases, stimulates plasmacytoid DCs (PDCs) to produce cytokines and chemokines via a cooperative interaction between Toll-like receptor 9 (TLR9) and FcgammaRIIa (CD32). SLE-ICs transiently colocalized to a subcellular compartment containing CD32 and TLR9, and CD32+, but not CD32-, PDCs internalized and responded to SLE-ICs. Our findings demonstrate a novel functional interaction between Fc receptors and TLRs, defining a pathway in which CD32 delivers SLE-ICs to intracellular lysosomes containing TLR9, inducing a signaling cascade leading to PDC activation. These data demonstrate that endogenous DNA-containing autoantibody complexes found in the serum of patients with SLE activate the innate immune system and suggest a novel mechanism whereby these ICs contribute to the pathogenesis of this autoimmune disease.
Journal Article
The TLR4 adaptor TRAM controls the phagocytosis of Gram-negative bacteria by interacting with the Rab11-family interacting protein 2
2019
Phagocytosis is a complex process that eliminates microbes and is performed by specialised cells such as macrophages. Toll-like receptor 4 (TLR4) is expressed on the surface of macrophages and recognizes Gram-negative bacteria. Moreover, TLR4 has been suggested to play a role in the phagocytosis of Gram-negative bacteria, but the mechanisms remain unclear. Here we have used primary human macrophages and engineered THP-1 monocytes to show that the TLR4 sorting adapter, TRAM, is instrumental for phagocytosis of Escherichia coli as well as Staphylococcus aureus. We find that TRAM forms a complex with Rab11 family interacting protein 2 (FIP2) that is recruited to the phagocytic cups of E. coli. This promotes activation of the actin-regulatory GTPases Rac1 and Cdc42. Our results show that FIP2 guided TRAM recruitment orchestrates actin remodelling and IRF3 activation, two events that are both required for phagocytosis of Gram-negative bacteria.
Journal Article