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Nalubega, M.

Publications and source records attributed to Nalubega, M..

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Circulating T-follicular helper and type I regulatory T cells have overlapping phenotypes in P. falciparum malaria and are maintained by parasite exposure.

Immunity to P. falciparum malaria develops slowly, requiring repeated infection in areas of high transmission, and wanes rapidly in the absence of parasite exposure. Key to this immunity, is the development of antibodies which is supported by CD4 T follicular helper (Tfh) cells that drive robust germinal centre responses. However, in malaria, the malaria-specific CD4 T cell compartment in peripheral blood is dominated by Type 1 regulatory T cells (Tr1), which produce high levels of IL-10 in response to parasites. Tr1-like Tfh cells (Tfh10) have been reported in several settings of repeated antigen stimulation but have not been investigated in malaria. Here we used single-cell RNA sequencing and multiparameter flow cytometry to characterise malaria-specific Tfh and Tr1 cells in a longitudinal cohort of highly exposed individuals and assessed their persistence after transmission interruption. Malaria-specific Tfh and Tr1 cells shared overlapping profiles, and Tr1 cell-like transcriptional signatures and phenotypes were detectable within the Tfh cell compartment. Tfh10 cell subsets were the dominant phenotype of malaria-specific Tfh cells. Following disruption of malaria transmission, the frequencies of malaria-specific Tr1 and Tfh10 cells declined. These findings highlight a close relationship between Tfh and Tr1 cells and show that the Tfh cell compartment in malaria is dominated by Tfh10 cells. The rapid waning of these cells in the absence of continuous exposure is consistent with requirements of persistent antigen in maintaining regulatory CD4 T cell phenotypes.

immunology↗

Cytotoxic Vδ2+T cell subsets expand in response to malaria in human tonsil and spleen organoids

Vaccine effectiveness against malaria is dramatically reduced in malaria-exposed compared to malaria-naive populations, potentially due to altered immune responses in secondary lymphoid organs following repeated infection. Newly developed human tonsil and spleen organoids, which replicate key features of B and T cell immunity, provide an exciting opportunity to overcome challenges of other models and to improve our understanding of innate-adaptive interactions in lymphoid tissue. The objectives of this study were to use these organoids to investigate the impact of malaria parasites on 1) cells within lymphoid tissues and 2) responses to a heterologous antigen. When we exposed organoids from malaria-naive donors to Plasmodium falciparum-infected red blood cells (iRBC), we observed that iRBC exposure did not disrupt organoid formation and significantly increased V{delta}2+ {gamma}{delta} T cell frequencies in both tonsil and spleen organoids at multiple timepoints. Single-cell RNA/TCR sequencing revealed that iRBC-responsive V{delta}2+ T cells in organoids were clonally expanded and exhibited activated, cytotoxic phenotypes with upregulated expression of granzymes, interferon-stimulated genes, and antigen presentation machinery. TCR repertoire analysis demonstrated that malaria exposure drove clonal expansion of cytotoxic V{delta}2+ T cells, contrasting with the diverse, smaller clones observed in control conditions. To validate these findings, we analyzed tonsils from Ugandan children with asymptomatic malaria infection and found expanded V{delta}2+ T cells with enhanced cytotoxic potential compared to uninfected controls. When we tested whether malaria pre-exposure affected subsequent recall responses to influenza vaccine, malaria pre-exposure or {gamma}{delta} T cell depletion did not significantly alter cellular frequencies or influenza-specific antibody responses in most donors, though modest reductions were observed in some individuals. This work demonstrates the utility of human lymphoid organoids for studying malaria-host interactions and provides novel insights into V{delta}2+ T cell biology, including evidence for antigen-specific clonal expansion and cytotoxic differentiation in response to malaria parasites within secondary lymphoid tissues. Author SummaryMalaria vaccines are significantly less effective in populations with endemic malaria exposure compared to malaria-naive individuals. We used human tonsil and spleen organoids to investigate whether repeated malaria infections alter immune responses in secondary lymphoid organs, potentially contributing to this reduced vaccine efficacy. These organoids create a controlled system that preserves the architecture and cellular interactions of secondary lymphoid tissues. When we exposed organoids to Plasmodium falciparum-infected red blood cells, we observed dramatic expansion of the V{delta}2+ subset of {gamma}{delta} T cells. This finding was particularly noteworthy because V{delta}2+ T cells are not typically considered major participants in immune responses within secondary lymphoid organs. Single-cell analysis revealed that these expanded V{delta}2+ T cells underwent clonal expansion and acquired cytotoxic phenotypes, suggesting antigen-specific responses. Tonsil tissue from Ugandan children with asymptomatic malaria infections showed similar patterns of V{delta}2+ T cell expansion and enhanced cytotoxic potential. Surprisingly, malaria pre-exposure did not affect subsequent recall responses to influenza vaccine in most donors, although this does not discount a possible impact on immune responses to primary vaccination. Our work reveals unexpected roles for {gamma}{delta} T cells in lymphoid tissues during malaria infection and establishes organoids as valuable models for studying host-pathogen interactions.

immunology↗

Comparison of CD4 T cell response in Plasmodium falciparum and vivax malaria

BackgroundPlasmodium falciparum and P. vivax are parasites responsible for most malaria cases globally. In areas where these species co-exist, individuals gain protection from P. vivax more rapidly, and important biological differences between species may impact the immune response. CD4 T cells are key drivers of immunity to malaria, both as effector and helper cells, with T-follicular helper (Tfh) having key roles in antibody development. Comparative studies on CD4 T cell responses between these species are limited. MethodsWe assessed CD4 T cells in adults with either P. falciparum or P. vivax malaria. Activation and proliferation of CD4 T cells were measured ex vivo, and functional capacity determined by intracellular cytokine staining by flow cytometry. ResultsThe phenotype, activation and proliferation of CD4 T cells and effector CD4 T cell subsets were comparable between species. However, within the peripheral (p)Tfh cell compartment, there was evidence for a skew towards pTfh1 cells in P. falciparum, and pTfh2 cells in P. vivax. Additionally, in P. falciparum, increased IL-10 production was detected, including within IL-21 producing CD4 T cells. ConclusionWhile activation and function of CD4 T cells in malaria are largely comparable, some species-dependent responses are detected within the pTfh cell compartment that may impact antibody development.

immunology↗

Age dependent changes in circulating Tfh cells influence the development of functional antibodies to malaria in children.

T-follicular helper (Tfh) cells are key drivers of antibodies that protect from malaria. However, little is known regarding the host and parasite factors that influence Tfh and functional antibody development. Here, we use samples from a large cross-sectional study of children residing in an area of high malaria transmission in Uganda to characterize Tfh cells and functional antibodies to multiple parasites stages. We identify a dramatic re-distribution of the Tfh cell compartment with age that is independent of malaria exposure, with Th2-Tfh cells predominating in early childhood, while Th1-Tfh cell gradually increase to adult levels over the first decade of life. Functional antibody acquisition is age-dependent and hierarchical acquired based on parasite stage, with merozoite responses followed by sporozoite and gametocyte antibodies. Antibodies were boosted in children with current infection, and were higher in females. The children with the very highest antibody levels had increased Tfh cell activation and proliferation, consistent with a key role of Tfh cells in antibody development. Together, these data reveal a complex relationship between the circulating Tfh compartment, antibody development and protection from malaria.

immunology↗