Medical Biology - Research Publications

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    Mind bomb 2 limits inflammatory dermatitis in Sharpin mutant mice independently of cell death
    Simpson, DS ; Anderton, H ; Yousef, J ; Vaibhav, V ; Cobbold, SA ; Bandala-Sanchez, E ; Kueh, AJ ; Dagley, LF ; Herold, MJ ; Silke, J ; Vince, JE ; Feltham, R ; Gutkind, JS (OXFORD UNIV PRESS, 2023-12-21)
    Skin inflammation is a complex process implicated in various dermatological disorders. The chronic proliferative dermatitis (cpd) phenotype driven by the cpd mutation (cpdm) in the Sharpin gene is characterized by dermal inflammation and epidermal abnormalities. Tumour necrosis factor (TNF) and caspase-8-driven cell death causes the pathogenesis of Sharpincpdm mice; however, the role of mind bomb 2 (MIB2), a pro-survival E3 ubiquitin ligase involved in TNF signaling, in skin inflammation remains unknown. Here, we demonstrate that MIB2 antagonizes inflammatory dermatitis in the context of the cpd mutation. Surprisingly, the role of MIB2 in limiting skin inflammation is independent of its known pro-survival function and E3 ligase activity. Instead, MIB2 enhances the production of wound-healing molecules, granulocyte colony-stimulating factor, and Eotaxin, within the skin. This discovery advances our comprehension of inflammatory cytokines and chemokines associated with cpdm pathogenesis and highlights the significance of MIB2 in inflammatory skin disease that is independent of its ability to regulate TNF-induced cell death.
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    Caspase-8-driven apoptotic and pyroptotic crosstalk causes cell death and IL-1β release in X-linked inhibitor of apoptosis (XIAP) deficiency
    Hughes, SA ; Lin, M ; Weir, A ; Huang, B ; Xiong, L ; Chua, NK ; Pang, J ; Santavanond, JP ; Tixeira, R ; Doerflinger, M ; Deng, Y ; Yu, C-H ; Silke, N ; Conos, SA ; Frank, D ; Simpson, DS ; Murphy, JM ; Lawlor, KE ; Pearson, JS ; Silke, J ; Pellegrini, M ; Herold, M ; Poon, IKH ; Masters, SL ; Li, M ; Tang, Q ; Zhang, Y ; Rashidi, M ; Geng, L ; Vince, JE (WILEY, 2023-03-01)
    Genetic lesions in X-linked inhibitor of apoptosis (XIAP) pre-dispose humans to cell death-associated inflammatory diseases, although the underlying mechanisms remain unclear. Here, we report that two patients with XIAP deficiency-associated inflammatory bowel disease display increased inflammatory IL-1β maturation as well as cell death-associated caspase-8 and Gasdermin D (GSDMD) processing in diseased tissue, which is reduced upon patient treatment. Loss of XIAP leads to caspase-8-driven cell death and bioactive IL-1β release that is only abrogated by combined deletion of the apoptotic and pyroptotic cell death machinery. Namely, extrinsic apoptotic caspase-8 promotes pyroptotic GSDMD processing that kills macrophages lacking both inflammasome and apoptosis signalling components (caspase-1, -3, -7, -11 and BID), while caspase-8 can still cause cell death in the absence of both GSDMD and GSDME when caspase-3 and caspase-7 are present. Neither caspase-3 and caspase-7-mediated activation of the pannexin-1 channel, or GSDMD loss, prevented NLRP3 inflammasome assembly and consequent caspase-1 and IL-1β maturation downstream of XIAP inhibition and caspase-8 activation, even though the pannexin-1 channel was required for NLRP3 triggering upon mitochondrial apoptosis. These findings uncouple the mechanisms of cell death and NLRP3 activation resulting from extrinsic and intrinsic apoptosis signalling, reveal how XIAP loss can co-opt dual cell death programs, and uncover strategies for targeting the cell death and inflammatory pathways that result from XIAP deficiency.
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    Ubiquitylation of RIPK3 beyond-the-RHIM can limit RIPK3 activity and cell death
    Frank, D ; Garnish, SE ; Sandow, JJ ; Weir, A ; Liu, L ; Clayer, E ; Meza, L ; Rashidi, M ; Cobbold, SA ; Scutts, SR ; Doerflinger, M ; Anderton, H ; Lawlor, KE ; Lalaoui, N ; Kueh, AJ ; Eng, VV ; Ambrose, RL ; Herold, MJ ; Samson, AL ; Feltham, R ; Murphy, JM ; Ebert, G ; Pearson, JS ; Vince, JE (CELL PRESS, 2022-07-15)
    Pathogen recognition and TNF receptors signal via receptor interacting serine/threonine kinase-3 (RIPK3) to cause cell death, including MLKL-mediated necroptosis and caspase-8-dependent apoptosis. However, the post-translational control of RIPK3 is not fully understood. Using mass-spectrometry, we identified that RIPK3 is ubiquitylated on K469. The expression of mutant RIPK3 K469R demonstrated that RIPK3 ubiquitylation can limit both RIPK3-mediated apoptosis and necroptosis. The enhanced cell death of overexpressed RIPK3 K469R and activated endogenous RIPK3 correlated with an overall increase in RIPK3 ubiquitylation. Ripk3 K469R/K469R mice challenged with Salmonella displayed enhanced bacterial loads and reduced serum IFNγ. However, Ripk3 K469R/K469R macrophages and dermal fibroblasts were not sensitized to RIPK3-mediated apoptotic or necroptotic signaling suggesting that, in these cells, there is functional redundancy with alternate RIPK3 ubiquitin-modified sites. Consistent with this idea, the mutation of other ubiquitylated RIPK3 residues also increased RIPK3 hyper-ubiquitylation and cell death. Therefore, the targeted ubiquitylation of RIPK3 may act as either a brake or accelerator of RIPK3-dependent killing.
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    CXCL11 expressing C57BL/6 mice have intact adaptive immune responses to viral infection
    Dalit, L ; Alvarado, C ; Kuijper, L ; Kueh, AJ ; Weir, A ; D'Amico, A ; Herold, MJ ; Vince, JE ; Nutt, SL ; Groom, JR (WILEY, 2022-05)
    The chemokine receptor CXCR3 is expressed on immune cells to co-ordinate lymphocyte activation and migration. CXCR3 binds three chemokine ligands, CXCL9, CXCL10 and CXCL11. These ligands display distinct expression patterns and ligand signaling biases; however, how each ligand functions individually and collaboratively is incompletely understood. CXCL9 and CXCL10 are considered pro-inflammatory chemokines during viral infection, while CXCL11 may induce a tolerizing state. The investigation of the individual role of CXCL11 in vivo has been hampered as C57BL/6 mice carry several mutations that result in a null allele. Here, CRISPR/Cas9 was used to correct these mutations on a C57BL/6 background. It was validated that CXCL11KI mice expressed CXCL11 protein in dendritic cells, spleen and lung. CXCL11KI mice were largely phenotypically indistinguishable from C57BL/6 mice, both at steady-state and during two models of viral infection. While CXCL11 expression did not modify acute antiviral responses, this study provides a new tool to understand the role of CXCL11 in other experimental settings.
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    Flexible Usage and Interconnectivity of Diverse Cell Death Pathways Protect against Intracellular Infection
    Doerflinger, M ; Deng, Y ; Whitney, P ; Salvamoser, R ; Engel, S ; Kueh, AJ ; Tai, L ; Bachem, A ; Gressier, E ; Geoghegan, ND ; Wilcox, S ; Rogers, KL ; Garnham, AL ; Dengler, MA ; Bader, SM ; Ebert, G ; Pearson, JS ; De Nardo, D ; Wang, N ; Yang, C ; Pereira, M ; Bryant, CE ; Strugnell, RA ; Vince, JE ; Pellegrini, M ; Strasser, A ; Bedoui, S ; Herold, MJ (CELL PRESS, 2020-09-15)
    Programmed cell death contributes to host defense against pathogens. To investigate the relative importance of pyroptosis, necroptosis, and apoptosis during Salmonella infection, we infected mice and macrophages deficient for diverse combinations of caspases-1, -11, -12, and -8 and receptor interacting serine/threonine kinase 3 (RIPK3). Loss of pyroptosis, caspase-8-driven apoptosis, or necroptosis had minor impact on Salmonella control. However, combined deficiency of these cell death pathways caused loss of bacterial control in mice and their macrophages, demonstrating that host defense can employ varying components of several cell death pathways to limit intracellular infections. This flexible use of distinct cell death pathways involved extensive cross-talk between initiators and effectors of pyroptosis and apoptosis, where initiator caspases-1 and -8 also functioned as executioners when all known effectors of cell death were absent. These findings uncover a highly coordinated and flexible cell death system with in-built fail-safe processes that protect the host from intracellular infections.
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    The ubiquitylation of IL-1β limits its cleavage by caspase-1 and targets it for proteasomal degradation
    Vijayaraj, SL ; Feltham, R ; Rashidi, M ; Frank, D ; Liu, Z ; Simpson, DS ; Ebert, G ; Vince, A ; Herold, MJ ; Kueh, A ; Pearson, JS ; Dagley, LF ; Murphy, JM ; Webb, AI ; Lawlor, KE ; Vince, JE (NATURE RESEARCH, 2021-05-11)
    Interleukin-1β (IL-1β) is activated by inflammasome-associated caspase-1 in rare autoinflammatory conditions and in a variety of other inflammatory diseases. Therefore, IL-1β activity must be fine-tuned to enable anti-microbial responses whilst limiting collateral damage. Here, we show that precursor IL-1β is rapidly turned over by the proteasome and this correlates with its decoration by K11-linked, K63-linked and K48-linked ubiquitin chains. The ubiquitylation of IL-1β is not just a degradation signal triggered by inflammasome priming and activating stimuli, but also limits IL-1β cleavage by caspase-1. IL-1β K133 is modified by ubiquitin and forms a salt bridge with IL-1β D129. Loss of IL-1β K133 ubiquitylation, or disruption of the K133:D129 electrostatic interaction, stabilizes IL-1β. Accordingly, Il1bK133R/K133R mice have increased levels of precursor IL-1β upon inflammasome priming and increased production of bioactive IL-1β, both in vitro and in response to LPS injection. These findings identify mechanisms that can limit IL-1β activity and safeguard against damaging inflammation.