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Dive into the research topics where James A Rickard is active.

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Featured researches published by James A Rickard.


Nature | 2011

Linear ubiquitination prevents inflammation and regulates immune signalling

Björn Gerlach; Stefanie M. Cordier; Anna C. Schmukle; Christoph H. Emmerich; Eva Rieser; Tobias Haas; Andrew I. Webb; James A Rickard; Holly Anderton; W. Wei-Lynn Wong; Ueli Nachbur; Lahiru Gangoda; Uwe Warnken; Anthony W. Purcell; John Silke; Henning Walczak

Members of the tumour necrosis factor (TNF) receptor superfamily have important functions in immunity and inflammation. Recently linear ubiquitin chains assembled by a complex containing HOIL-1 and HOIP (also known as RBCK1 and RNF31, respectively) were implicated in TNF signalling, yet their relevance in vivo remained uncertain. Here we identify SHARPIN as a third component of the linear ubiquitin chain assembly complex, recruited to the CD40 and TNF receptor signalling complexes together with its other constituents, HOIL-1 and HOIP. Mass spectrometry of TNF signalling complexes revealed RIP1 (also known as RIPK1) and NEMO (also known as IKKγ or IKBKG) to be linearly ubiquitinated. Mutation of the Sharpin gene (Sharpincpdm/cpdm) causes chronic proliferative dermatitis (cpdm) characterized by inflammatory skin lesions and defective lymphoid organogenesis. Gene induction by TNF, CD40 ligand and interleukin-1β was attenuated in cpdm-derived cells which were rendered sensitive to TNF-induced death. Importantly, Tnf gene deficiency prevented skin lesions in cpdm mice. We conclude that by enabling linear ubiquitination in the TNF receptor signalling complex, SHARPIN interferes with TNF-induced cell death and, thereby, prevents inflammation. Our results provide evidence for the relevance of linear ubiquitination in vivo in preventing inflammation and regulating immune signalling.


Cell | 2014

RIPK1 Regulates RIPK3-MLKL-Driven Systemic Inflammation and Emergency Hematopoiesis

James A Rickard; Joanne A. O’Donnell; Joseph M Evans; Najoua Lalaoui; Ashleigh R. Poh; TeWhiti Rogers; James E. Vince; Kate E. Lawlor; Robert L. Ninnis; Holly Anderton; Cathrine Hall; Sukhdeep Kaur Spall; Toby J. Phesse; Helen E. Abud; Louise H. Cengia; Jason Corbin; Sandra Mifsud; Ladina Di Rago; Donald Metcalf; Matthias Ernst; Grant Dewson; Andrew W. Roberts; Warren S. Alexander; James M. Murphy; Paul G. Ekert; Seth L. Masters; David L. Vaux; Ben A. Croker; Motti Gerlic; John Silke

Upon ligand binding, RIPK1 is recruited to tumor necrosis factor receptor superfamily (TNFRSF) and Toll-like receptor (TLR) complexes promoting prosurvival and inflammatory signaling. RIPK1 also directly regulates caspase-8-mediated apoptosis or, if caspase-8 activity is blocked, RIPK3-MLKL-dependent necroptosis. We show that C57BL/6 Ripk1(-/-) mice die at birth of systemic inflammation that was not transferable by the hematopoietic compartment. However, Ripk1(-/-) progenitors failed to engraft lethally irradiated hosts properly. Blocking TNF reversed this defect in emergency hematopoiesis but, surprisingly, Tnfr1 deficiency did not prevent inflammation in Ripk1(-/-) neonates. Deletion of Ripk3 or Mlkl, but not Casp8, prevented extracellular release of the necroptotic DAMP, IL-33, and reduced Myd88-dependent inflammation. Reduced inflammation in the Ripk1(-/-)Ripk3(-/-), Ripk1(-/-)Mlkl(-/-), and Ripk1(-/-)Myd88(-/-) mice prevented neonatal lethality, but only Ripk1(-/-)Ripk3(-/-)Casp8(-/-) mice survived past weaning. These results reveal a key function for RIPK1 in inhibiting necroptosis and, thereby, a role in limiting, not only promoting, inflammation.


Molecular Cell | 2012

The Ubiquitin Ligase XIAP Recruits LUBAC for NOD2 Signaling in Inflammation and Innate Immunity

Rune Busk Damgaard; Ueli Nachbur; Monica Yabal; W. Wei-Lynn Wong; Berthe Katrine Fiil; Mischa Kastirr; Eva Rieser; James A Rickard; Aleksandra Bankovacki; Christian Peschel; Juergen Ruland; Simon Bekker-Jensen; Niels Mailand; Thomas Kaufmann; Andreas Strasser; Henning Walczak; John Silke; Philipp J. Jost; Mads Gyrd-Hansen

Nucleotide-binding and oligomerization domain (NOD)-like receptors constitute a first line of defense against invading bacteria. X-linked Inhibitor of Apoptosis (XIAP) is implicated in the control of bacterial infections, and mutations in XIAP are causally linked to immunodeficiency in X-linked lymphoproliferative syndrome type-2 (XLP-2). Here, we demonstrate that the RING domain of XIAP is essential for NOD2 signaling and that XIAP contributes to exacerbation of inflammation-induced hepatitis in experimental mice. We find that XIAP ubiquitylates RIPK2 and recruits the linear ubiquitin chain assembly complex (LUBAC) to NOD2. We further show that LUBAC activity is required for efficient NF-κB activation and secretion of proinflammatory cytokines after NOD2 stimulation. Remarkably, XLP-2-derived XIAP variants have impaired ubiquitin ligase activity, fail to ubiquitylate RIPK2, and cannot facilitate NOD2 signaling. We conclude that XIAP and LUBAC constitute essential ubiquitin ligases in NOD2-mediated inflammatory signaling and propose that deregulation of NOD2 signaling contributes to XLP-2 pathogenesis.


Nature Immunology | 2015

The diverse role of RIP kinases in necroptosis and inflammation

John Silke; James A Rickard; Motti Gerlic

Inflammation is a healthy response to infection or danger and should be rapid, specific and terminated once the threat has passed. Inflammatory diseases, where this regulation fails, cause considerable human suffering. Treatments have successfully targeted pro-inflammatory cytokines, such as tumor-necrosis factor (TNF), that directly induce genes encoding inflammatory products. Inflammatory signals, including TNF, may also directly induce caspase-independent cell death (necroptosis), which can also elicit inflammation. Necroptosis was originally defined as being dependent on the kinase RIPK1 but is now known to be dependent on RIPK3 and the pseudo-kinase MLKL. Therefore, RIPK1, RIPK3 and MLKL are potential therapeutic targets. RIPK1 and RIPK3 also directly regulate inflammatory signaling, which complicates interpretation of their function but might alter their therapeutic utility. This Review examines the role of cell death, particularly necroptosis, in inflammation, in the context of recent insights into the roles of the key necroptosis effector molecules RIPK1, RIPK3 and MLKL.


eLife | 2014

TNFR1-dependent cell death drives inflammation in Sharpin-deficient mice

James A Rickard; Holly Anderton; Nima Etemadi; Ueli Nachbur; Maurice Darding; Nieves Peltzer; Najoua Lalaoui; Kate E. Lawlor; Hannah K. Vanyai; Cathrine Hall; Aleks Bankovacki; Lahiru Gangoda; W. Wei-Lynn Wong; Jason Corbin; Chunzi Huang; Edward S. Mocarski; James M. Murphy; Warren S. Alexander; Anne K. Voss; David L. Vaux; William J. Kaiser; Henning Walczak; John Silke

SHARPIN regulates immune signaling and contributes to full transcriptional activity and prevention of cell death in response to TNF in vitro. The inactivating mouse Sharpin cpdm mutation causes TNF-dependent multi-organ inflammation, characterized by dermatitis, liver inflammation, splenomegaly, and loss of Peyers patches. TNF-dependent cell death has been proposed to cause the inflammatory phenotype and consistent with this we show Tnfr1, but not Tnfr2, deficiency suppresses the phenotype (and it does so more efficiently than Il1r1 loss). TNFR1-induced apoptosis can proceed through caspase-8 and BID, but reduction in or loss of these players generally did not suppress inflammation, although Casp8 heterozygosity significantly delayed dermatitis. Ripk3 or Mlkl deficiency partially ameliorated the multi-organ phenotype, and combined Ripk3 deletion and Casp8 heterozygosity almost completely suppressed it, even restoring Peyers patches. Unexpectedly, Sharpin, Ripk3 and Casp8 triple deficiency caused perinatal lethality. These results provide unexpected insights into the developmental importance of SHARPIN. DOI: http://dx.doi.org/10.7554/eLife.03464.001


Journal of Biological Chemistry | 2011

In TNF-stimulated cells, RIPK1 promotes cell survival by stabilizing TRAF2 and cIAP1, which limits induction of non-canonical NF-κB and activation of caspase-8.

Ian E. Gentle; W. Wei-Lynn Wong; Joseph M Evans; Alexandra Bankovacki; Wendy D. Cook; Nufail Khan; Ulrich Nachbur; James A Rickard; Holly Anderton; Maryline Moulin; Josep M. Lluis; Donia M. Moujalled; John Silke; David L. Vaux

RIPK1 is involved in signaling from TNF and TLR family receptors. After receptor ligation, RIPK1 not only modulates activation of both canonical and NIK-dependent NF-κB, but also regulates caspase-8 activation and cell death. Although overexpression of RIPK1 can cause caspase-8-dependent cell death, when RIPK1−/− cells are exposed to TNF and low doses of cycloheximide, they die more readily than wild-type cells, indicating RIPK1 has pro-survival as well as pro-apoptotic activities (1, 2). To determine how RIPK1 promotes cell survival, we compared wild-type and RIPK1−/− cells treated with TNF. Although TRAF2 levels remained constant in TNF-treated wild-type cells, TNF stimulation of RIPK1−/− cells caused TRAF2 and cIAP1 to be rapidly degraded by the proteasome, which led to an increase in NIK levels. This resulted in processing of p100 NF-κB2 to p52, a decrease in levels of cFLIPL, and activation of caspase-8, culminating in cell death. Therefore, the pro-survival effect of RIPK1 is mediated by stabilization of TRAF2 and cIAP1.


eLife | 2015

TRAF2 regulates TNF and NF-κB signalling to suppress apoptosis and skin inflammation independently of Sphingosine kinase 1.

Nima Etemadi; Michaël Chopin; Holly Anderton; Maria C. Tanzer; James A Rickard; Waruni Abeysekera; Cathrine Hall; Sukhdeep Kaur Spall; Bing Wang; Yuquan Xiong; Timothy Hla; Stuart M. Pitson; Claudine S. Bonder; W. Wei-Lynn Wong; Matthias Ernst; Gordon K. Smyth; David L. Vaux; Stephen L. Nutt; Ueli Nachbur; John Silke

TRAF2 is a component of TNF superfamily signalling complexes and plays an essential role in the regulation and homeostasis of immune cells. TRAF2 deficient mice die around birth, therefore its role in adult tissues is not well-explored. Furthermore, the role of the TRAF2 RING is controversial. It has been claimed that the atypical TRAF2 RING cannot function as a ubiquitin E3 ligase but counterclaimed that TRAF2 RING requires a co-factor, sphingosine-1-phosphate, that is generated by the enzyme sphingosine kinase 1, to function as an E3 ligase. Keratinocyte-specific deletion of Traf2, but not Sphk1 deficiency, disrupted TNF mediated NF-κB and MAP kinase signalling and caused epidermal hyperplasia and psoriatic skin inflammation. This inflammation was driven by TNF, cell death, non-canonical NF-κB and the adaptive immune system, and might therefore represent a clinically relevant model of psoriasis. TRAF2 therefore has essential tissue specific functions that do not overlap with those of Sphk1. DOI: http://dx.doi.org/10.7554/eLife.10592.001


Cell Death & Differentiation | 2017

Combination of IAP antagonist and IFNγ activates novel caspase-10- and RIPK1-dependent cell death pathways.

Maria C. Tanzer; Nufail Khan; James A Rickard; Nima Etemadi; Najoua Lalaoui; Sukhdeep Kaur Spall; Joanne M. Hildebrand; David J. Segal; Maria Miasari; Diep Chau; WendyWei-Lynn Wong; Mark A. McKinlay; Srinivas K. Chunduru; Christopher A. Benetatos; Stephen M. Condon; James E. Vince; Marco J. Herold; John Silke

Peptido-mimetic inhibitor of apoptosis protein (IAP) antagonists (Smac mimetics (SMs)) can kill tumour cells by depleting endogenous IAPs and thereby inducing tumour necrosis factor (TNF) production. We found that interferon-γ (IFNγ) synergises with SMs to kill cancer cells independently of TNF− and other cell death receptor signalling pathways. Surprisingly, CRISPR/Cas9 HT29 cells doubly deficient for caspase-8 and the necroptotic pathway mediators RIPK3 or MLKL were still sensitive to IFNγ/SM-induced killing. Triple CRISPR/Cas9-knockout HT29 cells lacking caspase-10 in addition to caspase-8 and RIPK3 or MLKL were resistant to IFNγ/SM killing. Caspase-8 and RIPK1 deficiency was, however, sufficient to protect cells from IFNγ/SM-induced cell death, implying a role for RIPK1 in the activation of caspase-10. These data show that RIPK1 and caspase-10 mediate cell death in HT29 cells when caspase-8-mediated apoptosis and necroptosis are blocked and help to clarify how SMs operate as chemotherapeutic agents.


Nature Immunology | 2015

Erratum: The diverse role of RIP kinases in necroptosis and inflammation

John Silke; James A Rickard; Motti Gerlic

Nat. Immunol. 16, 689–697 (2015); published online 18 June 2015; corrected after print 26 June 2015 In the version of this article initially published, the following were incorrect and should be corrected as stated here. In Fig 1, ref. 84 should be ref. 82, and “pers. comm.” should be cited one linebelow (aligned with Mlkl−/−).


Journal of Investigative Dermatology | 2017

Inhibitor of Apoptosis Proteins (Iaps) Limit Ripk1 Mediated Skin Inflammation

Holly Anderton; James A Rickard; George Varigos; Najoua Lalaoui; John Silke

Inhibitor of apoptosis proteins (IAPs) are critical regulators of cell death and survival pathways. Mice lacking cIAP1 and either cIAP2 or XIAP die in utero, and myeloid lineage-specific deletion of all IAPs causes sterile inflammation, but their role in the skin is unknown. We generated epidermal-specific IAP-deficient mice and found that combined genetic deletion of cIAP1 (epidermal knockout [EKO]) in keratinocytes and ubiquitous cIAP2 deletion (cIap1EKO/EKO.cIap2-/-) caused profound skin inflammation and keratinocyte death, lethal by postpartum day 10. To investigate their role in skin homeostasis, we injected an IAP antagonist compound subcutaneously into wild-type and knockout mice. This induced a toxic epidermal necrolysis-like local inflammation, which mirrored the phenotype seen in cIap1EKO/EKO.cIap2-/- mice. Loss of one Ripk1 allele limited lesion formation and significantly extended the lifespan of cIap1EKO/EKO.cIap2-/- mice. cIAP activities are important for recruitment of LUBAC to signaling complexes, and loss of LUBAC component SHARPIN, induces dermatitis in mice. Consistent with this relationship between cIAPs and LUBAC, Ripk1 heterozygosity also protected against development of dermatitis in Sharpin-deficient mice. This work therefore refines our molecular understanding of inflammatory signaling in the skin and defines potential targets for treating skin inflammation.

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John Silke

University of Melbourne

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Holly Anderton

Walter and Eliza Hall Institute of Medical Research

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David L. Vaux

Walter and Eliza Hall Institute of Medical Research

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Ueli Nachbur

Walter and Eliza Hall Institute of Medical Research

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Cathrine Hall

Walter and Eliza Hall Institute of Medical Research

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Najoua Lalaoui

Walter and Eliza Hall Institute of Medical Research

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Nima Etemadi

Walter and Eliza Hall Institute of Medical Research

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Sukhdeep Kaur Spall

Walter and Eliza Hall Institute of Medical Research

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Henning Walczak

University College London

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