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Weaver, G. C.

Publications and source records attributed to Weaver, G. C..

2 recordsLinked to original sources

Peptide Avidity for TCR on CD4 Effectors Determines the Extent of Memory Generation

The impact of initial peptide antigen affinity for TCR in driving memory fate has been studied previously, however its contributions when effectors contract to memory is unclear. To become memory, effector CD4 T cells must recognize antigen at 5-8 days post-infection, at what we call the "effector checkpoint." We examined whether peptide affinity for the TCR of effectors impacts the extent of memory and degree of protection against rechallenge. We made an influenza A virus (IAV) nucleoprotein (NP)-specific TCR transgenic strain, FluNP, and generated NP-peptide variants that bind FluNP TCR with a broad range of avidity. To vary avidity in vivo, we primed naive donor FluNP in IAV-infected hosts, purified 6d FluNP effectors and co-transferred them with peptide-pulsed APC into uninfected second hosts. Higher affinity peptides yielded higher numbers of FluNP memory cells in the spleen and most dramatically in the lung and dLN, and drove better protection against lethal influenza infection. The major impact of avidity was on memory cell number, not cytokine production, and was already apparent within several days of transfer. We previously showed that autocrine IL-2 production during the effector checkpoint prevented default effector apoptosis and supported memory formation. Here, peptide avidity determined the level of IL-2 produced by effectors. IL-2R expression by APC drove more memory cell formation, suggesting that transpresentation of IL-2 by APC at this checkpoint enhanced CD4 memory generation. Secondary memory generation was also avidity-dependent. We propose this pathway selects CD4 effectors of highest affinity to progress to memory.

immunology↗

Broadly-recognized, cross-reactive SARS-CoV-2 CD4 T cell epitopes are highly conserved across human coronaviruses and presented by common HLA alleles

Sequence homology between SARS-CoV-2 and common-cold human coronaviruses (HCoVs) raises the possibility that memory responses to prior HCoV infection can impact the T cell response in COVID-19. We studied T cells recognizing SARS-CoV-2 and HCoVs in convalescent COVID-19 donors, and identified a highly conserved SARS-CoV-2 sequence S811-831, with two overlapping epitopes presented by common MHC-II proteins HLA-DQ5 and HLA-DP4. These epitopes were recognized by CD4+ T cells from convalescent COVID-19 donors, mRNA vaccine recipients, and by low-abundance CD4+ T cells in uninfected donors. TCR sequencing revealed a diverse repertoire with public TCRs. CD4+ T cell cross-reactivity was driven by the remarkably strong conservation of T cell contact residues in both HLA-DQ5 and HLA-DP4 binding frames, with distinct patterns of HCoV cross-reactivity explained by MHC-II binding preferences and substitutions at secondary TCR contact sites. These data highlight S811-831 as a highly-conserved CD4+ T cell epitope broadly recognized across human populations.

immunology↗