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Dive into the research topics where Brian G. Monks is active.

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Featured researches published by Brian G. Monks.


Nature Immunology | 2008

The NALP3 inflammasome is involved in the innate immune response to amyloid-beta

Annett Halle; Veit Hornung; Gabor C. Petzold; Cameron R. Stewart; Brian G. Monks; Thomas Reinheckel; Katherine A. Fitzgerald; Eicke Latz; Kathryn J. Moore; Douglas T. Golenbock

The fibrillar peptide amyloid-β (Aβ) has a chief function in the pathogenesis of Alzheimers disease. Interleukin 1β (IL-1β) is a key cytokine in the inflammatory response to Aβ. Insoluble materials such as crystals activate the inflammasome formed by the cytoplasmic receptor NALP3, which results in the release of IL-1β. Here we identify the NALP3 inflammasome as a sensor of Aβ in a process involving the phagocytosis of Aβ and subsequent lysosomal damage and release of cathepsin B. Furthermore, the IL-1β pathway was essential for the microglial synthesis of proinflammatory and neurotoxic factors, and the inflammasome, caspase-1 and IL-1β were critical for the recruitment of microglia to exogenous Aβ in the brain. Our findings suggest that activation of the NALP3 inflammasome is important for inflammation and tissue damage in Alzheimers disease.


Nature Immunology | 2004

TLR9 signals after translocating from the ER to CpG DNA in the lysosome

Eicke Latz; Annett Schoenemeyer; Alberto Visintin; Katherine A. Fitzgerald; Brian G. Monks; Catherine F. Knetter; Egil Lien; Nadra J. Nilsen; Terje Espevik; Douglas T. Golenbock

Microbial DNA sequences containing unmethylated CpG dinucleotides activate Toll-like receptor 9 (TLR9). We have found that TLR9 is localized to the endoplasmic reticulum (ER) of dendritic cells (DCs) and macrophages. Because there is no precedent for immune receptor signaling in the ER, we investigated how TLR9 is activated. We show that CpG DNA binds directly to TLR9 in ligand-binding studies. CpG DNA moves into early endosomes and is subsequently transported to a tubular lysosomal compartment. Concurrent with the movement of CpG DNA in cells, TLR9 redistributes from the ER to CpG DNA–containing structures, which also accumulate MyD88. Our data indicate a previously unknown mechanism of cellular activation involving the recruitment of TLR9 from the ER to sites of CpG DNA uptake, where signal transduction is initiated.


Journal of Immunology | 2009

Cutting edge: NF-kappaB activating pattern recognition and cytokine receptors license NLRP3 inflammasome activation by regulating NLRP3 expression

Franz Bauernfeind; Gabor Horvath; Andrea Stutz; Emad S. Alnemri; Kelly S. MacDonald; David P. Speert; Teresa Fernandes-Alnemri; Jianghong Wu; Brian G. Monks; Katherine A. Fitzgerald; Veit Hornung; Eicke Latz

The IL-1 family cytokines are regulated on transcriptional and posttranscriptional levels. Pattern recognition and cytokine receptors control pro-IL-1β transcription whereas inflammasomes regulate the proteolytic processing of pro-IL-1β. The NLRP3 inflammasome, however, assembles in response to extracellular ATP, pore-forming toxins, or crystals only in the presence of proinflammatory stimuli. How the activation of gene transcription by signaling receptors enables NLRP3 activation remains elusive and controversial. In this study, we show that cell priming through multiple signaling receptors induces NLRP3 expression, which we identified to be a critical checkpoint for NLRP3 activation. Signals provided by NF-κB activators are necessary but not sufficient for NLRP3 activation, and a second stimulus such as ATP or crystal-induced damage is required for NLRP3 activation.


Journal of Experimental Medicine | 2003

LPS-TLR4 Signaling to IRF-3/7 and NF-κB Involves the Toll Adapters TRAM and TRIF

Katherine A. Fitzgerald; Daniel C. Rowe; Betsy J. Barnes; Daniel R. Caffrey; Alberto Visintin; Eicke Latz; Brian G. Monks; Paula M. Pitha; Douglas T. Golenbock

Toll–IL-1–resistance (TIR) domain–containing adaptor-inducing IFN-β (TRIF)–related adaptor molecule (TRAM) is the fourth TIR domain–containing adaptor protein to be described that participates in Toll receptor signaling. Like TRIF, TRAM activates interferon regulatory factor (IRF)-3, IRF-7, and NF-κB-dependent signaling pathways. Toll-like receptor (TLR)3 and 4 activate these pathways to induce IFN-α/β, regulated on activation, normal T cell expressed and secreted (RANTES), and γ interferon–inducible protein 10 (IP-10) expression independently of the adaptor protein myeloid differentiation factor 88 (MyD88). Dominant negative and siRNA studies performed here demonstrate that TRIF functions downstream of both the TLR3 (dsRNA) and TLR4 (LPS) signaling pathways, whereas the function of TRAM is restricted to the TLR4 pathway. TRAM interacts with TRIF, MyD88 adaptor–like protein (Mal)/TIRAP, and TLR4 but not with TLR3. These studies suggest that TRIF and TRAM both function in LPS-TLR4 signaling to regulate the MyD88-independent pathway during the innate immune response to LPS.


Nature Immunology | 2010

The AIM2 inflammasome is essential for host defense against cytosolic bacteria and DNA viruses

Vijay A. K. Rathinam; Zhaozhao Jiang; Stephen N. Waggoner; Shrutie Sharma; Leah E. Cole; Lisa Waggoner; Sivapriya Kailasan Vanaja; Brian G. Monks; Sandhya Ganesan; Eicke Latz; Veit Hornung; Stefanie N. Vogel; Eva Szomolanyi-Tsuda; Katherine A. Fitzgerald

Inflammasomes regulate the activity of caspase-1 and the maturation of interleukin 1β (IL-1β) and IL-18. AIM2 has been shown to bind DNA and engage the caspase-1-activating adaptor protein ASC to form a caspase-1-activating inflammasome. Using Aim2-deficient mice, we identify a central role for AIM2 in regulating caspase-1-dependent maturation of IL-1β and IL-18, as well as pyroptosis, in response to synthetic double-stranded DNA. AIM2 was essential for inflammasome activation in response to Francisella tularensis, vaccinia virus and mouse cytomegalovirus and had a partial role in the sensing of Listeria monocytogenes. Moreover, production of IL-18 and natural killer cell–dependent production of interferon-γ, events critical in the early control of virus replication, were dependent on AIM2 during mouse cytomegalovirus infection in vivo. Collectively, our observations demonstrate the importance of AIM2 in the sensing of both bacterial and viral pathogens and in triggering innate immunity.


Journal of Clinical Investigation | 2000

Toll-like receptor 4 imparts ligand-specific recognition of bacterial lipopolysaccharide

Egil Lien; Terry K. Means; Holger Heine; Atsutoshi Yoshimura; Shoichi Kusumoto; Koichi Fukase; Matthew J. Fenton; Masato Oikawa; Nilofer Qureshi; Brian G. Monks; Robert W. Finberg; Robin R. Ingalls; Douglas T. Golenbock

Lipopolysaccharide (LPS) is the main inducer of shock and death in Gram-negative sepsis. Recent evidence suggests that LPS-induced signal transduction begins with CD14-mediated activation of 1 or more Toll-like receptors (TLRs). The lipid A analogues lipid IVa and Rhodobacter sphaeroides lipid A (RSLA) exhibit an uncommon species-specific pharmacology. Both compounds inhibit the effects of LPS in human cells but display LPS-mimetic activity in hamster cells. We transfected human TLR4 or human TLR2 into hamster fibroblasts to determine if either of these LPS signal transducers is responsible for the species-specific pharmacology. RSLA and lipid IVa strongly induced NF-kappaB activity and IL-6 release in Chinese hamster ovary fibroblasts expressing CD14 (CHO/CD14), but these compounds antagonized LPS antagonists in CHO/CD14 fibroblasts that overexpressed human TLR4. No such antagonism occurred in cells overexpressing human TLR2. We cloned TLR4 from hamster macrophages and found that human THP-1 cells expressing the hamster TLR4 responded to lipid IVa as an LPS mimetic, as if they were hamster in origin. Hence, cells heterologously overexpressing TLR4 from different species acquired a pharmacological phenotype with respect to recognition of lipid A substructures that corresponded to the species from which the TLR4 transgene originated. These data suggest that TLR4 is the central lipid A-recognition protein in the LPS receptor complex.


Nature Medicine | 2015

A small-molecule inhibitor of the NLRP3 inflammasome for the treatment of inflammatory diseases.

Rebecca C. Coll; Avril A. B. Robertson; Jae Jin Chae; Sarah C. Higgins; Raúl Muñoz-Planillo; Marco Inserra; Irina Vetter; Lara S. Dungan; Brian G. Monks; Andrea Stutz; Daniel E. Croker; Mark S. Butler; Moritz Haneklaus; Caroline E. Sutton; Gabriel Núñez; Eicke Latz; Daniel L. Kastner; Kingston H. G. Mills; Seth L. Masters; Kate Schroder; Matthew A. Cooper; Luke A. J. O'Neill

The NOD-like receptor (NLR) family, pyrin domain–containing protein 3 (NLRP3) inflammasome is a component of the inflammatory process, and its aberrant activation is pathogenic in inherited disorders such as cryopyrin-associated periodic syndrome (CAPS) and complex diseases such as multiple sclerosis, type 2 diabetes, Alzheimers disease and atherosclerosis. We describe the development of MCC950, a potent, selective, small-molecule inhibitor of NLRP3. MCC950 blocked canonical and noncanonical NLRP3 activation at nanomolar concentrations. MCC950 specifically inhibited activation of NLRP3 but not the AIM2, NLRC4 or NLRP1 inflammasomes. MCC950 reduced interleukin-1β (IL-1β) production in vivo and attenuated the severity of experimental autoimmune encephalomyelitis (EAE), a disease model of multiple sclerosis. Furthermore, MCC950 treatment rescued neonatal lethality in a mouse model of CAPS and was active in ex vivo samples from individuals with Muckle–Wells syndrome. MCC950 is thus a potential therapeutic for NLRP3-associated syndromes, including autoinflammatory and autoimmune diseases, and a tool for further study of the NLRP3 inflammasome in human health and disease.


Proceedings of the National Academy of Sciences of the United States of America | 2007

Malaria hemozoin is immunologically inert but radically enhances innate responses by presenting malaria DNA to Toll-like receptor 9

Peggy Parroche; Fanny N. Lauw; Nadege Goutagny; Eicke Latz; Brian G. Monks; Alberto Visintin; Kristen A. Halmen; Marc Lamphier; Martin Olivier; Daniella Castanheira Bartholomeu; Ricardo T. Gazzinelli; Douglas T. Golenbock

Hemozoin (HZ) is an insoluble crystal formed in the food vacuole of malaria parasites. HZ has been reported to induce inflammation by directly engaging Toll-like receptor (TLR) 9, an endosomal receptor. “Synthetic” HZ (β-hematin), typically generated from partially purified extracts of bovine hemin, is structurally identical to natural HZ. When HPLC-purified hemin was used to synthesize the crystal, β-hematin had no inflammatory activity. In contrast, natural HZ from Plasmodium falciparum cultures was a potent TLR9 inducer. Natural HZ bound recombinant TLR9 ectodomain, but not TLR2. Both TLR9 stimulation and TLR9 binding of HZ were abolished by nuclease treatment. PCR analysis demonstrated that natural HZ is coated with malarial but not human DNA. Purified malarial DNA activated TLR9 but only when DNA was targeted directly to the endosome with a transfection reagent. Stimulatory quantities of natural HZ contain <1 μg of malarial DNA; its potency in activating immune responses was even greater than transfecting malarial DNA. Thus, although the malarial genome is extremely AT-rich, its DNA is highly proinflammatory, with the potential to induce cytokinemia and fever during disease. However, its activity depends on being bound to HZ, which we propose amplifies the biological responses to malaria DNA by targeting it to a TLR9+ intracellular compartment.


Science | 2013

A Long Noncoding RNA Mediates Both Activation and Repression of Immune Response Genes

Susan Carpenter; Daniel Aiello; Maninjay K. Atianand; Emiliano P. Ricci; Pallavi Gandhi; Lisa L. Hall; Meg Byron; Brian G. Monks; Meabh Henry-Bezy; Jeanne B. Lawrence; Luke A. J. O'Neill; Melissa J. Moore; Daniel R. Caffrey; Katherine A. Fitzgerald

A New Linc in Innate Immunity Long noncoding RNAs (lncRNAs) have recently emerged as important regulators of gene expression in a wide variety of biological processes, although specific roles for these molecules in the immune system have not been described. Carpenter et al. (p. 789, published online 1 August) now define the function of one such lncRNA in the immune system, lincRNA-Cox2. Whole-transcriptome profiling revealed that lincRNA-Cox2 was induced in mouse macrophages in response to activation of Toll-like receptors—molecules that detect microbes and alert the immune system to respond. LincRNA-Cox2 both positively and negatively regulated the expression of distinct groups of inflammatory genes. Negative regulation of gene expression was mediated by lincRNA-Cox interaction with heterogeneous nuclear ribonucleoprotein A/B and A2/B1. In mice, a broadly acting RNA, lincRNA-Cox2, regulates the circuit that controls the inflammatory response. An inducible program of inflammatory gene expression is central to antimicrobial defenses. This response is controlled by a collaboration involving signal-dependent activation of transcription factors, transcriptional co-regulators, and chromatin-modifying factors. We have identified a long noncoding RNA (lncRNA) that acts as a key regulator of this inflammatory response. Pattern recognition receptors such as the Toll-like receptors induce the expression of numerous lncRNAs. One of these, lincRNA-Cox2, mediates both the activation and repression of distinct classes of immune genes. Transcriptional repression of target genes is dependent on interactions of lincRNA-Cox2 with heterogeneous nuclear ribonucleoprotein A/B and A2/B1. Collectively, these studies unveil a central role of lincRNA-Cox2 as a broad-acting regulatory component of the circuit that controls the inflammatory response.


Nature Immunology | 2014

The adaptor ASC has extracellular and 'prionoid' activities that propagate inflammation.

Bernardo S. Franklin; Lukas Bossaller; Dominic De Nardo; Jacqueline M Ratter; Andrea Stutz; Gudrun Engels; Christoph Brenker; Mark Nordhoff; Sandra R Mirandola; Ashraf Al-Amoudi; Matthew Mangan; Sebastian Zimmer; Brian G. Monks; Martin Fricke; Reinhold Ernst Schmidt; Terje Espevik; Bernadette Jones; Andrew G. Jarnicki; Philip M. Hansbro; Patricia Busto; Ann Marshak-Rothstein; Simone Hornemann; Adriano Aguzzi; Wolfgang Kastenmüller; Eicke Latz

Microbes or danger signals trigger inflammasome sensors, which induce polymerization of the adaptor ASC and the assembly of ASC specks. ASC specks recruit and activate caspase-1, which induces maturation of the cytokine interleukin 1β (IL-1β) and pyroptotic cell death. Here we found that after pyroptosis, ASC specks accumulated in the extracellular space, where they promoted further maturation of IL-1β. In addition, phagocytosis of ASC specks by macrophages induced lysosomal damage and nucleation of soluble ASC, as well as activation of IL-1β in recipient cells. ASC specks appeared in bodily fluids from inflamed tissues, and autoantibodies to ASC specks developed in patients and mice with autoimmune pathologies. Together these findings reveal extracellular functions of ASC specks and a previously unknown form of cell-to-cell communication.

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Douglas T. Golenbock

University of Massachusetts Medical School

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Katherine A. Fitzgerald

University of Massachusetts Medical School

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Terje Espevik

Norwegian University of Science and Technology

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Egil Lien

University of Massachusetts Medical School

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Peter A. Rice

University of Massachusetts Medical School

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Sanjay Ram

University of Massachusetts Medical School

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Sunita Gulati

University of Massachusetts Medical School

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