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Biology subjects

Steiner, T. M.

Publications and source records attributed to Steiner, T. M..

2 recordsLinked to original sources

Temporally overlapping mechanisms diversify clonal B cell responses in vivo.

Naive B cells amplify and diversify their responses when activated by cognate antigen, via Myc-dependent clonal expansion, immunoglobulin class switch recombination (CSR), phenotypic variation, and somatic hypermutation (SHM). Whether these mechanisms act combinatorially in vivo to diversify clonal responses to a single pathogen remains unclear. Since diversity in the antigenic targets, functional classes, and production kinetics of parasite-specific antibodies influences immunity to malaria, we test here whether individual B cell clones diversify over time during Plasmodium infection and treatment. During the first week of infection, amid widespread Type I Interferon (IFN)-mediated bystander activation, CSR initiates soon after Myc up-regulation, and overlaps partially with clonal expansion, resulting in isotype variegation amongst clones. During the second week of infection, expanded clones that seed germinal centres (GC) bifurcate into extra-follicular plasmablasts, exhibit isotype variegation, and initiate SHM, revealing substantial intra-clonal diversification. Over the following month, GC clones exhibit SHM at approximately four mutations per week, with IgG mutational diversity and IgM+ cells also preserved in GCs over time. Anti-malarial intervention does not impede SHM, but instead exerts quantitative limits on GC size, plasma cell emergence, circulating IgG levels, and protection against re-infection. Finally, contemporaneous B cell development relocates from bone marrow to spleen during infection and treatment. Thus, multiple temporally overlapping mechanisms combine in vivo to amplify, diversify, and safeguard humoral immune responses. We present this data as a temporal, multi-parameter atlas of B cell differentiation in vivo: https://bcell-dynamics.science.unimelb.edu.au Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=130 SRC="FIGDIR/small/628863v2_ufig1.gif" ALT="Figure 1"> View larger version (32K): org.highwire.dtl.DTLVardef@c57890org.highwire.dtl.DTLVardef@6e5936org.highwire.dtl.DTLVardef@a2e872org.highwire.dtl.DTLVardef@14abbac_HPS_FORMAT_FIGEXP M_FIG C_FIG HighlightsO_LIPartial temporal overlap of CSR with clonal expansion leads to isotype variegation in clones. C_LIO_LIClones seeding GCs bifurcate into plasmablasts and exhibit isotype variegation. C_LIO_LIGC B cells accrue [~]4 mutations/week, a rate unaffected by anti-malarials. C_LIO_LIPlasmodium infection triggers antigen-independent Type I IFN-mediated bystander activation. C_LIO_LIB cell development is preserved in malaria by shifting from bone marrow to spleen. C_LI

immunology↗

Spatial transcriptomics maps molecular and cellular requirements for CD4+ T cell-dependent immunity to malaria.

CD4+ T cells orchestrate adaptive immunity to circulating malaria parasites; yet cellular interactions and molecular mechanisms controlling Th1 and Tfh differentiation in the spleen remain to be fully defined in vivo. Here, using a murine model of CD4-dependent immunity, we tested if Slide-seqV2, a spatial transcriptomic method with near single-cell resolution, could determine the locations of multiple CD4+ T cell subsets and potentially interacting cellular partners in the spleen during infection. Firstly, Slide-seqV2 readily mapped splenic cellular structure and microanatomical change during infection. Next, computational integration with scRNA-seq reference datasets of splenocytes, stromal cells, and specifically of polyclonal CD4+ T cells and B cells, mapped the relative locations of multiple cell-types within this dense tissue. scRNA-seq of B cells over time mapped emergence of germinal centre B cells, red pulp-located plasmablasts and atypical B cells, and uncovered a prolonged CD4+ T-cell-independent, follicular bystander B cell response marked by Sca-1 and Ly6C upregulation. scRNA-seq of activated, polyclonal CD4+ T cells revealed their similarity to our previous TCR transgenic models. Importantly, spatial analysis revealed polyclonal Th1 cells co-localised with CXCL9/10-producing monocytes in the red pulp, while polyclonal Tfh-like cells were located close to CXCL13-expressing B cell follicles, consistent with our previous CXCR3/CXCR5 competition model of Th1/Tfh bifurcation. CRISPR/Cas9 disruption of either or both CXCR3 and CXCR5 in naive Plasmodium-specific CD4+ T cells had unexpectedly minor effects on Th1 differentiation in vivo. Instead, CXCR5 was essential for maximising clonal expansion, suggesting a role for splenic CXCL13+ cells in supporting CD4+ T cell proliferation in malaria. Thus, spatial transcriptomics at near single-cell resolution was feasible in densely packed secondary lymphoid tissue, providing multiple insights into mechanisms controlling splenic polyclonal CD4+ T cell and B cell differentiation during infection. HighlightsO_LISlide-seqV2 maps splenic microanatomy, including stromal and immune cell location. C_LIO_LIBystander activation of all follicular B cells occurs in malaria, marked by Sca-1/Ly6C upregulation. C_LIO_LISingle naive polyclonal CD4+ T cells differentiate mostly into Th1 and Tfh cells in malaria. C_LIO_LICell-cell colocalization analysis positions Th1 cells with monocytes in red pulp, and Tfh cells with Cxcl13+ B cell follicles. C_LIO_LICXCR5, but not CXCR3, supports parasite-specific CD4+ T cell clonal expansion. C_LI

immunology↗