Universal antigen encoding of T cell activation from high-dimensional cytokine dynamics.

Achar, Sooraj R; Bourassa, François X P; Rademaker, Thomas J; Lee, Angela; Kondo, Taisuke; Salazar-Cavazos, Emanuel; Davies, John S; Taylor, Naomi et al. · Science · 2022

basic_science · Level V

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Abstract

Systems immunology lacks a framework with which to derive theoretical understanding from high-dimensional datasets. We combined a robotic platform with machine learning to experimentally measure and theoretically model CD8<sup>+</sup> T cell activation. High-dimensional cytokine dynamics could be compressed onto a low-dimensional latent space in an antigen-specific manner (so-called "antigen encoding"). We used antigen encoding to model and reconstruct patterns of T cell immune activation. The model delineated six classes of antigens eliciting distinct T cell responses. We generalized antigen encoding to multiple immune settings, including drug perturbations and activation of chimeric antigen receptor T cells. Such universal antigen encoding for T cell activation may enable further modeling of immune responses and their rational manipulation to optimize immunotherapies.

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