生物
转录因子
重编程
效应器
基因
叉头转录因子
计算生物学
细胞生物学
表观遗传学
染色质
功能(生物学)
T细胞
遗传学
基因表达调控
抄写(语言学)
抑制器
细胞毒性T细胞
激活剂(遗传学)
细胞
DNA结合蛋白
蛋白质结构域
Jurkat细胞
乙酰化
发起人
基因调控网络
细胞分化
蛋白质-蛋白质相互作用
转录激活物样效应核酸酶
基因表达
转录调控
表型
增强子
电池类型
转录组
Cis监管模块
作者
Oliver Takacsi-Nagy,Sivakanthan Kasinathan,Austin Hartman,Yajie Yin,Lujing Wu,Andy Y. Chen,Laura M. Moser,Audre P. May,Gabriella C. Reeder,Emily Celallos Fuentes,Courtney Kernick,Johnathan Lu,Alison McClellan,Colin J. Raposo,Brendan Terrall,Nicole E. Theberath,Patrick Yan,Peng Xu,Elena Sotillo,Justin Eyquem
出处
期刊:Cell
[Cell Press]
日期:2026-08-01
标识
DOI:10.1016/j.cell.2026.07.054
摘要
Human protein-coding genes evolved via rearrangement of domains from ancestral genes. We develop a scalable, evolutionarily guided method to assemble novel genes from constituent domains within a protein family, termed DESynR (domain engineered via synthesis and recombination) genes. In primary human T cells, DESynR activator protein-1 (AP-1) transcription factors (TFs) significantly outperform natural AP-1 TFs across in vitro and in vivo antitumor assays. DESynR AP-1 TFs induce broad transcriptional and epigenetic reprogramming and establish non-natural T cell states that optimize features of exhaustion, effector and cytotoxic function, and persistence-sometimes co-opting gene modules from disparate cell types. Reprogramming is primarily driven by differential regulation of established AP-1-bound regulatory elements rather than unique binding. Finally, we screen DESynR erythroblast transformation-specific (ETS) and forkhead box (FOX) TFs to support generalizability across protein families. Overall, we demonstrate that reconfiguring existing protein domains may uncover non-evolved genes that program therapeutically relevant cell states.
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