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Biology subjects

Savage, A. R.

Publications and source records attributed to Savage, A. R..

4 recordsLinked to original sources

HpBoRB, a helminth-derived CCP domain protein which binds RELMβ

Helminth infections persist by influencing host immunity through the release of immunomodulatory proteins which prevent immune ejection. The intestinal nematode Heligmosomoides polygyrus bakeri (Hpb) secretes multiple families of immunomodulatory proteins, many of which are composed of consecutive Complement Control Protein (CCP) domains. We hypothesized that further CCP domain proteins are secreted by the parasite to interact with the host. We identified an unusually large number of CCP domain-containing proteins in the genome of Hpb, and cloned a range of these for screening in an Avidity-based Extracellular Interaction Screening (AVEXIS) assay, focussing on interactions with host immune proteins. This screen confirmed the binding of known immunomodulators (HpBARI, TGM1) for their targets (ST2, TGFBR2) and identified a new interaction between a 2 CCP domain Hpb protein and mouse resistin-like molecule beta (RELM{beta}), a host protein demonstrated to have anti-helminth properties. This protein was named Binder of RELM{beta} (HpBoRB). This interaction was confirmed in ELISA, competition assays, size exclusion chromatography and surface plasmon resonance experiments, identifying a subnanomolar affinity interaction between HpBoRB and RELM{beta}. These data may indicate that Hpb interferes with the potent anti-helminth host protein RELM{beta} and adds to our knowledge of the host-parasite interactions mediated by Hpb secreted proteins.

immunology↗

CD8 T lymphocytes redeploy embryonic cell cycle control mechanisms to facilitate rapid cell proliferation

Rapid proliferation and expansion of cytotoxic CD8 T lymphocytes is crucial for adaptive immunity against viral infection. CD8 T cell cycles complete cell division cycles in <6 hours, representing a physiological extreme for somatic mammalian cells. Embryonic stem cells also rapidly divide and have been shown to utilize specialized cell cycle control mechanisms that differ from somatic fibroblasts, including subdued periodicity of cyclin proteins. CD8 T cell cycle control remains poorly understood compared to embryonic and other somatic cell types. Here, we tested whether CD8 T cells utilize similar control mechanisms to embryonic stem cells to promote rapid cell cycles. We used mass spectrometry-based proteomics to comprehensively measure protein abundances in G1, S and G2&M phases somatic mouse CD8 T cells, mouse embryonic stem cells (mESC) and mouse fibroblasts (NIH3T3). We isolated cell cycle phases using PRIMMUS, thereby avoiding potential artefacts due to arrest-based synchronization. We discovered striking similarities between mESC and CD8 T cells. Similar to mESC, Cyclin E1 was expressed at high levels and constitutively across the cell cycle in CD8 T cells. Overall, cyclins and cell cycle regulated proteins were present in higher abundance in CD8 T cells and mESC as compared with NIH3T3 cells. Additionally, CD8 T cells express high levels of Emi1/Fbxo5 to promote S-phase entry. Interestingly, Emi1 deletion unexpectedly resulted in changes in markers of CD8 T cell phenotype, suggesting an association between cell cycle control and immune function. Thus, we show several adaptations of cell cycle control of embryonic stem cells are redeployed in somatic T cells to promote rapid cell cycles.

cell biology↗

Heparan sulphate binding controls in vivo half-life of the HpARI protein family

The parasitic nematode Heligmosomoides polygyrus bakeri secretes the HpARI family, which bind to IL-33, either suppressing (HpARI1 and HpARI2) or enhancing (HpARI3) responses to the cytokine. We previously showed that HpARI2 also bound to DNA via its first Complement Control Protein (CCP1) domain. Here, we find that HpARI1 can also bind DNA, while HpARI3 cannot. Through the production of HpARI2/HpARI3 CCP1 domain-swapped chimeras, DNA-binding ability can be transferred, and correlates with in vivo half-life of administered proteins. We found that HpARI1 and HpARI2 (but not HpARI3) also binds to the extracellular matrix component heparan sulphate (HS), and structural modelling showed a basic charged patch in the CCP1 domain of HpARI1 and HpARI2 (but not HpARI3) which could facilitate these interactions. Finally, a mutant of HpARI2 was produced which lacked DNA and HS binding, and was also shown to have a short half-life in vivo. Therefore, we propose that during infection the suppressive HpARI1 and HpARI2 proteins have long-lasting effects at the site of deposition due to DNA and/or extracellular matrix interactions, while HpARI3 has a shorter half-life due to a lack of these interactions.

immunology↗

Gut bacteria-derived serotonin promotes immune tolerance in early life

The gut microbiome promotes immune system development in early life, but the neonatal gut metabolome remains undefined. Here, we demonstrate that, distinct from adults, the neonatal mouse gut is enriched with neurotransmitters, and specific bacteria produce serotonin directly while downregulating monoamine oxidase A to limit serotonin breakdown. Serotonin inhibits mTOR activation to promote regulatory T cells and suppress T cell responses both ex vivo and in vivo in the neonatal intestine. Oral gavage of serotonin into neonatal mice leads to long-term immune tolerance toward both dietary antigens and commensal bacteria as well as alterations of the gut microbiome. Together, our study has uncovered unique microbiome-dependent mechanisms to maximize serotonin in the neonatal gut and a novel role for intestinal serotonin to promote immune tolerance in early life.

immunology↗