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Biology subjects

Aussenac, F.

Publications and source records attributed to Aussenac, F..

2 recordsLinked to original sources

Increased Th1 bias in memory T cells corresponds with protection from reinfection in Plasmodium infection, and is regulated by T cell-intrinsic STAT3

Hybrid Th1/Tfh cells (IFN-{gamma}+IL-21+CXCR5+) predominate in response to persistent infections; however, molecular regulation of their function is poorly defined. In infection with Plasmodium spp, an IFN-{gamma}+ T helper-1 (Th1) response controls initial parasitemia, while antibody and IL-21+CXCR5+ T follicular helper (Tfh) function effect final clearance. Here, we found that CD4-intrinsic Bcl6, Blimp-1 and STAT3 all regulate T-bet expression, which controls IFN-{gamma} expression. While Bcl6 and Blimp-1 regulate the level of CXCR5, only T-bet and STAT3 affected the functional bias of the Th1/Tfh phenotype. Infected mice with STAT3-deficient T cells produced less antibody, and more IFN-{gamma}+IL-21-CXCR5lo T cells, significantly increasing protection from re-infection. Conversely, reduced Th1 bias in re-infected T-bet KO was reflected in prolonged secondary parasitemia. In summary, each feature of hybrid Th1/Tfh population in Plasmodium infection is uniquely regulated and the cytokine bias of memory T cells can be modified to enhance the effectiveness of the response.

immunology

Observing an antisense drug complex in intact human cells by in-cell NMR

Gaining insight into the uptake of drugs into cells, trafficking and their target engagement enhances understanding of the drugs function and efficiency. Here we study an antisense oligonucleotide drug (ASO) delivered into HEK293T and HeLa cells, by Nuclear Magnetic Resonance (NMR). Using a combination of transfection, cryoprotection and dynamic nuclear polarization (DNP), we were able to detect the drug directly in intact frozen cells. Activity of the drug was confirmed by qRT-PCR, measuring downregulation of its target mSTAT3. Applying DNP NMR to frozen cells, we overcome limitations of traditional solution-state in-cell NMR (e.g. size, stability and sensitivity) as well as of visualization techniques, where (e.g. fluorescent) tagging of the ASO decreases its activity. The possibility to study an untagged, active drug, interacting in its natural environment, will increase insights into molecular mechanisms of delivery, intracellular trafficking and target engagement in intact cells.

biophysics