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Beattie, L.

Publications and source records attributed to Beattie, L..

8 recordsLinked to original sources

Optimization of a liver Trm cell-inducing mRNA vaccine by reduction of type I interferon response

CD8+ tissue-resident memory T cells provide rapid frontline protection at pathogen invasion sites, making them attractive targets for vaccine-mediated immunity. We previously developed an NKT cell-adjuvanted mRNA lipoplex vaccine capable of inducing liver Trm cells and sterile protection against malaria in mice. Here, we show that type I interferon (IFN-I) signalling through dendritic cells -- not T cells -- is a key brake on liver Trm induction by this vaccine. Optimising mRNA manufacturing to reduce immunostimulatory contaminants substantially dampened IFN-I production, boosted antigen expression in the lymphoid tissues, and drove significantly greater Trm accumulation. These enhanced responses translated into superior protection against parasite challenge. Our findings identify DC-intrinsic IFN-I signalling as a tractable target, and mRNA manufacturing quality as a critical and underappreciated lever, for maximising Trm-based vaccine efficacy.

immunology↗

Innate immune sensing of cell traversal by Plasmodium sporozoites drives protective T cell responses

Attenuated Plasmodium sporozoites elicit robust adaptive immune responses that protect against parasite challenge, yet how they engage the innate immune system remains poorly understood. To obtain sterile preparation of sporozoites we used flow cytometry to isolate pure GFP+ P. berghei and P. falciparum sporozoites, which were sorted onto murine bone marrow-derived macrophages (BMDMs) or human PBMCs to assess innate immune activation. Sporozoites induced a distinctive activation pattern resembling cell wounding responses, consistent with their ability to traverse host cells en route to the liver. Traversal-deficient sporozoites failed to activate BMDMs and showed impaired priming of protective CD8+ T cell immunity. This wounding response was independent of inflammasome or Toll-like receptor signaling but required {gamma}{delta} T cells, which are known to support CD8+ T cell responses against Plasmodium. These findings reveal a previously unappreciated innate sensing mechanism triggered by cell traversal that underpins the potent immunogenicity of Plasmodium sporozoites.

immunology↗

Mitochondrial Dysfunction in Endothelial Cells Drives Greater Vascular Impairment in Females with Diabetes-Associated Peripheral Artery Disease

BackgroundWomen with peripheral artery disease (PAD) experience poorer clinical outcomes than men, particularly in the setting of diabetes. However, the mechanistic basis for these sex- specific disparities remains unclear. MethodsHere, we investigated endothelial cell (EC) function(s) in diabetes-associated PAD, with a focus on sex differences. Limb tissues from patients with diabetes and chronic limb-threatening ischemia (CLTI) undergoing amputation, and a diabetes mouse model of hindlimb ischemia (HLI), were assessed for vasodilatory capacity, angiogenesis, oxidative stress and changes to expression of mitochondrial complex genes. ECs exposed to a hyperglycemic environment in vitro were assessed for mitochondrial function. The therapeutic potential of the mitochondrial-targeted antioxidant MitoQ was investigated. ResultsECs from females with diabetes-associated PAD have altered responses compared to males. Specifically, limb vessels and skeletal muscle from females exhibit reduced arterial relaxation, angiogenesis and increased oxidative stress in response to HLI in mice, and in tissues from patients. Single-cell RNA sequencing of murine limbs revealed marked suppression of EC mitochondrial complex genes in females with diabetes. Female human ECs exposed to high glucose had reduced respiration, reduced expression of mitochondrial genes and increased oxidative stress. Remarkably, MitoQ restored arterial relaxation and the angiogenic response in female diabetes- associated PAD. ConclusionOur findings uncover a striking sex-specific vulnerability involving oxidative stress and mitochondrial dysfunction in EC health in diabetes-associated PAD. These results highlight the need for sex-specific therapeutic strategies in diabetic PAD, which might include mitochondrial targeted antioxidant strategies.

pathology↗

Defining the roles of NKG7 expressed by CD4+ and CD8+ T cells during malaria

Malaria, caused by Plasmodium parasites, is a significant global health issue. CD4+ and CD8+ T cells are important for immunity against Plasmodium infections, but the specific roles of many immune-related effector molecules in T cells remain poorly defined. Here, we investigated the function of NK cell granule protein 7 (NKG7) in T cells during malaria, focusing on its role in CD4+ and CD8+ T cells in Plasmodium blood-stage responses. In a non-lethal malaria model, NKG7 played a protective role in CD4+ T cell responses, affecting pro-inflammatory T helper 1 (Th1), IL-10-producing type 1 regulatory (Tr1), and T follicular helper cell development. In a model of cerebral malaria, NKG7 was shown to have a cell-intrinsic role in CD4+ T cells for perforin and granzyme B expression, as well as the development of Tr1 cells. Human investigations involving peripheral blood mononuclear cells from volunteers participating in controlled human P. falciparum malaria infection studies, as well as endemic country patients with P. falciparum and P. vivax malaria, corroborated these findings. High NKG7 expression in T cells from Plasmodium-infected humans was observed, as well as differences in NKG7 expression based on the infecting Plasmodium species. NKG7 expression was associated with both cytotoxic and non-cytotoxic T cells, indicating varied functions following infection. These results advance our understanding about NKG7s role in T cell-mediated malaria immunity and suggest potential for targeting NKG7 to improve outcomes following Plasmodium infection.

immunology↗

Vgamma1+ gammadelta T cell-derived IL-4 initiates CD8 T cell immunity

Dendritic cells (DC) are pivotal for initiating adaptive immunity, a process triggered by the activation of DC via pathogen products or damage. Here, we describe an additional layer to this process, essential when pathogen-derived signals alone cannot directly achieve full DC activation. Immunisation with sporozoites from Plasmodium leads to CD8 T cell priming in a complex response that is initiated by a collaboration between conventional type 1 DC (cDC1) and {gamma}{delta} T cells. We unveil a pivotal initiating role for V{gamma}1+ {gamma}{delta} T cells, as they directly supply IL-4 to DC and CD8 T cells. IL-4 synergises with a CD4 T cell-derived CD40L signal to induce IL-12 production by cDC1. Both IL-12 and IL-4 then directly signal CD8 T cells, with synergy between these cytokines driving enhanced IL-12 receptor expression and expansion of responding CD8 T cells. This study reveals a key role for V{gamma}l+ {gamma}{delta} T cells in initiating CD8 T cell immunity to Plasmodium. More broadly, it shows that responses to some pathogens require help from innate-like T cells to pass an initiation threshold and further amplify the response in a process underscored by IL-4 production.

immunology↗

Long lived liver-resident memory T cells of biased specificities for abundant sporozoite antigens drive malaria protection by radiation-attenuated sporozoite vaccination

Vaccination with radiation-attenuated sporozoites (RAS) can provide highly effective protection against malaria in both humans and mice. To extend understanding of malaria immunity and inform the development of future vaccines, we studied the protective response elicited by this vaccine in C57BL/6 mice. We reveal that successive doses of Plasmodium berghei RAS favour the generation of liver CD8+ tissue-resident memory T cells (TRM cells) over circulating memory cells, and markedly enhance their longevity. Importantly, RAS immunisation strongly skews the composition of the liver CD8+ TRM compartment towards cells specific for abundant sporozoite antigens, such as thrombospondin-related adhesive protein (TRAP) and circumsporozoite protein (CSP), which become major mediators of protection. The increased prevalence of sporozoite specificities is associated with limited intrahepatic parasite development and inhibition of naive T cell responses to all parasite antigens in previously vaccinated mice. This leads to the exclusive expansion of effector T cells formed upon initial immunisation, ultimately reducing the diversity of the liver TRM pool later established. These findings provide novel insights into the mechanisms governing malaria immunity induced by attenuated sporozoite vaccination and highlight the susceptibility of this vaccine to limitations imposed by strain-specific immunity associated with the abundant, yet highly variable sporozoite antigens CSP and TRAP. Author SummaryMalaria remains a significant global health challenge. An efficient vaccine could significantly enhance malaria control. Vaccination with radiation-attenuated sporozoites (RAS) can induce highly efficient protection against malaria, and our study brings critical insights into the protective mechanisms elicited by this vaccine. We show that RAS stimulates the formation of parasite-specific cytotoxic memory T cells that permanently reside in the liver (liver TRM cells). These cells are critical mediators of protection. Interestingly, multiple doses of RAS extend the lifespan of these memory cells, potentially improving long term immunity. However, we found that the induced memory T cell response is strongly skewed towards abundant, but highly variable, sporozoite proteins. Thus, this phenomenon exposes a potential limitation of the RAS vaccine against the great parasite diversity in the field, as it focuses the T cell response away from less abundant, but more conserved, parasite antigens.

immunology↗

B cells targeting parasites capture spatially linked antigens to secure T cell help

Our understanding of T-cell-dependent humoral responses has been largely shaped by studies involving model antigens such as recombinant proteins and viruses 1,2. In these contexts, B cells internalize the entire antigen or pathogen, and present a range of antigens to helper CD4+ T cells to initiate the humoral response. However, this model does not account for large pathogens (such as parasites) that are too large to be taken up by individual B cells, and the mechanisms by which B cells acquire and present antigens from large complex pathogens to T cells remain poorly understood. Here we used Plasmodium, the causative parasite of malaria, as a model to investigate the requirements for T cell help for B cells targeting the Plasmodium surface circumsporozoite protein (CSP). Upon Plasmodium sporozoite (SPZ) immunization, CSP-specific B cells can form a synapse-like structure with SPZs and take up CSP and non-CSP surface antigens. As a result, CSP-specific B cells can receive help from CD4+ T cells specific to antigens that are located on the surface but not cytosol of the Plasmodium SPZ. Therefore, B cells can obtain help, not only from T cells with the same protein specificity, but also from T cells specific for spatially linked antigens. This flexibility in T cell help may enhance the initiation and maintenance of humoral immune responses to complex pathogens.

immunology↗

Selective regulation of IFN-γ and IL-4 co-producing unconventional T cells by purinergic signalling

Unconventional T cells, including mucosal-associated invariant T (MAIT), natural killer T (NKT), and gamma-delta T ({gamma}{delta}T) cells, comprise distinct T-bet+, IFN-{gamma}+ and ROR{gamma}t+, IL-17+ subsets which play differential roles in health and disease. NKT1 cells are susceptible to ARTC2-mediated P2X7 receptor (P2RX7) activation, but the effects on other unconventional T-cell types are unknown. Here, we show that MAIT, {gamma}{delta}T, and NKT cells express P2RX7 and are sensitive to P2RX7-mediated cell death. Mouse peripheral T-bet+ MAIT1, {gamma}{delta}T1, and NKT1 cells, especially in liver, co-express ARTC2 and P2RX7, which can be further upregulated by retinoic acid. Blocking ARTC2 or inhibiting P2RX7 protected MAIT1, {gamma}{delta}T1, and NKT1 cells from cell death, enhanced their survival in vivo, and increased the number of IFN-{gamma}-secreting cells without affecting IL-17 production. Importantly, this revealed the existence of IFN-{gamma} and IL-4 co-producing unconventional T-cell populations normally lost upon isolation due to ARTC2/P2RX7-induced death. Administering extracellular NAD in vivo activated this pathway, depleting P2RX7-sensitive unconventional T cells. Our study reveals ARTC2/P2RX7 as a common regulatory axis modulating the unconventional T-cell compartment, affecting the viability of IFN-{gamma}- and IL-4-producing T cells, offering important insights to facilitate future studies into how these cells can be regulated in health and disease.

immunology↗