Inflammation in the pancreas drives acinar-to-ductal metaplasia (ADM), a progenitor-like state that can be hijacked by mutant Kras in the formation of pancreatic ductal adenocarcinoma. How these cell fate decisions vary according to KRAS mutation remains poorly understood. To define mutation-specific lineage reversion and tumor initiation, we implement Ptf1a-tdTomato mice and multiple KRAS mutants across several genetic, pharmacologic, and inflammatory perturbations in vivo. Whereas KRASG12D co-opts injury to enable lineage reversion, enhancer reprogramming, and tumor initiation, KRASG12R/V cannot sustain dedifferentiated and neoplastic transcriptional and epigenetic programs. Specifically, KRASG12R/V mutants fail to invoke robust EGFR, AKT, and RAC1/VAV1 signaling and to license Pou2f3 and Vav1 in chromatin, such that only constitutive AKT activation is sufficient to rescue the tumorigenic potential of KRASG12Rin vivo. As the marked heterogeneity among KRAS variants begins early in tumorigenesis, these data are crucial to deciphering mutation-specific oncogenic trajectories and directing the implementation of KRAS-directed therapeutics.
A. Grimont, David Falvo, W. Sisso et al.· Developmental Cell· 1 citation
In autoimmunity and chronic infection, both settings of persistent (self or foreign) antigen, immune responses are sustained by stem-like CD8 T cells, which self-renew and give rise to differentiated progeny. However, if and how T stemness is epigenetically encoded, which transcription factor(s) regulate the stem-T cells, and whether the stem-T cell state is disease-specific or shared across diseases, is currently not known.
We used clinically relevant models of autoimmune type 1 diabetes (T1D) and chronic infection and conducted serial T cell transplantation studies in vivo, combined with single cell paired RNA- and ATAC-sequencing on antigen-specific T cells. We developed CRISPR/Cas9-mediated gene-editing approaches in primary T cells as well as CUT&RUN studies, identifying a novel hierarchy of transcription factors regulating stem T cell identity and function.
We discovered that a small subset of stem-T cells (TSC) express lymphoid enhancer-binding factor 1 (LEF1), a member of the TCF/LEF TF family. Paired single cell transcriptomic and epigenomic analyses reveal that the LEF1+ TSC harbor a unique epigenetically encoded molecular state enriched in genes and pathways characteristic of embryonic and adult (somatic) stem cells (e.g. neural stem cells). Strikingly, we found that TSC in chronic infection harbor a LEF1+ TSC pool sharing the core stemness epigenetic and molecular program observed in autoimmune LEF1+ TSC. Loss- and gain-of-function studies in both autoimmune T1D and chronic infection confirmed the critical role of LEF1 in maintaining T cell stemness. CUT&RUN analyses provide clues as to how LEF1 instructs the epigenetically encoded program of stem-T cells.
Here we reveal novel insights into the molecular circuitries of CD8 T cell stemness and differentiation. We discover LEF1 as the master regulator defining T cell stemness and identify novel targets for therapeutic intervention.
NIH R01AI173249, JDRF SRA-2023-1410-S-B, MSKCC Basic Research Innovation Award, The Hearst Foundation
Lymphocyte Differentiation and Peripheral Maintenance (LYM)
Katrina M. Hawley, S. Miakicheva, P. Zumbo et al.· Journal of Immunology· 0 citations