Latent Regulatory Programs Generate Synthetic T Cell States with Enhanced Therapeutic Potential
Pratt, B. M.; Mullins, G. N.; Brown, N.; Green, W. D.; Modliszewski, J.; Xie, F.; van Rooyen, L.; Zhabotynsky, V.; Jambor, A. N.; Cannon, G.; Green, J. M.; Kennedy, A.; Alicea Paunto, C. d. M.; Shi, H.; Merritt, E.; Egawa, T.; Somasundaram, A.; Wang, W.; Thaxton, J. E.; Dotti, G.; Chung, H. K.; Milner, J. J.
Show abstract
Transcription factors (TFs) govern cell fate through coordinated gene-regulatory networks, yet the full potential of these networks to generate non-native, therapeutically advantageous cell states in vivo remains largely unexplored. We hypothesized that systematic gain-of-function (GOF) overexpression of TFs in CD8 T cells, central mediators of immune protection, could reveal latent, or "hidden," regulatory programs capable of generating synthetic T cell states with therapeutic utility. To test this, we developed single-cell GOF sequencing (scGOF-seq), a multiplexed platform for unbiased, in vivo mapping of GOF effects on T cell fate in immunocompetent mouse models of infection and cancer. scGOF-seq uncovered unexpected regulators of T cell differentiation and accumulation, including SOX2, OCT4, and GATA2, which are normally silenced during T cell differentiation. Notably, outside its native regulatory context, supraphysiologic cMyc GOF reprogrammed CD8 T cells into a synthetic stem-effector hybrid state, enabling >5,000-fold antigen-dependent expansion and antitumor activity, contrasting sharply with its native function in driving terminal differentiation. scGOF-seq further identified TF modules that cooperate with cMyc GOF to promote robust CD8 T cell responses in solid tumors. Together, these findings establish GOF perturbation as a powerful strategy for revealing latent immune regulatory programs and engineering synthetic immune states with therapeutic potential. One-Sentence SummaryIn vivo single-cell gain-of-function screening reveals latent transcriptional programs that can reprogram T cells into highly functional synthetic states.
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