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Biology subjects

Fort, G.

Publications and source records attributed to Fort, G..

3 recordsLinked to original sources

Characterization of the BRAF interactome identifies BRAFV600E<=>TP53 interaction in melanoma

Melanoma is a highly aggressive and frequently metastatic cancer with its incidence reported to be on the rise. Although most oncogenic drivers in melanoma converge on activation of the RAS>RAF>MEK>ERK MAPK signaling pathway, not all MAPK-activating mutations are recurrently observed in this disease, suggesting a unique functional role for BRAFV600E, which is present in [~]50% of all melanoma cases. However, the prevalence of BRAFV600E alterations over other known MAPK-promoting oncoproteins raises questions regarding whether BRAFV600E possesses additional functions outside of MAPK pathway activation. Thus, we performed TurboID to differentiate the interactome between wild-type BRAF and BRAFV600E. We identified novel interacting partners of normal vs. BRAFV600E, most strikingly being the tumor suppressor TP53. While TP53 is commonly altered or lost across many malignancies, it is notable that TP53 alterations are rare in melanoma. Our studies suggest that BRAFV600E can interact with and inactivate TP53, thus providing potential mechanistic explanation as to why TP53 inactivation or loss is infrequent in BRAFV600E-driven melanoma.

cancer biology↗

Opposing lineage specifiers induce a pro-tumor hybrid-identity state in lung adenocarcinoma

The ability of cancer cells to alter their identity, known as lineage plasticity, is crucial for tumor progression and therapy resistance. In lung adenocarcinoma (LUAD), tumor progression is characterized by a gradual loss of lineage fidelity and the emergence of non-pulmonary identity programs. This can lead to hybrid-identity (hybrid-ID) states in which developmentally incompatible identity programs are co-activated within individual cells. However, the molecular mechanisms underlying these identity shifts remain incompletely understood. Here, we identify the gastrointestinal (GI) transcriptional regulator HNF4 as a critical driver of tumor growth and proliferation in KRAS-driven LUAD. In LUAD cells that express the lung lineage specifier NKX2-1, HNF4 can induce a GI/liver-like state by directly binding and activating its canonical targets. HNF4 also forms an aberrant protein complex with NKX2-1, which disrupts NKX2-1 localization and dampens pulmonary identity within hybrid-ID LUAD. Sustained signaling through the RAS/MEK pathway is critical for maintaining the hybrid-ID state. Moreover, RAS/MEK inhibition augments NKX2-1 chromatin binding at pulmonary-specific genes and induces resistance-associated pulmonary signatures. Finally, we demonstrate that HNF4 depletion enhances sensitivity to pharmacologic KRASG12D inhibition. Collectively, our data show that co-expression of opposing lineage specifiers leads to a hybrid identity state that can drive tumor progression and dictate response to targeted therapy in LUAD.

cancer biology↗

FoxA1/2-dependent epigenomic reprogramming drives lineage switching in lung adenocarcinoma

The ability of cancer cells to alter their identity is essential for tumor survival and progression. Loss of the pulmonary lineage specifier NKX2-1 within KRAS-driven lung adenocarcinoma (LUAD) enhances tumor progression and results in a pulmonary-to-gastric lineage switch that is dependent upon the activity of pioneer factors FoxA1 and FoxA2; however, the underlying mechanism remains largely unknown. Here, we show that FoxA1/2 reprogram the epigenetic landscape of NKX2-1-negative LUAD to facilitate a gastric identity. After Nkx2-1 deletion, FoxA1/2 mediate demethylation of gastric-defining genes through recruitment of TET3, an enzyme that induces DNA demethylation. H3K27ac ChIP-seq and HiChIP show that FoxA1/2 also control the activity of regulatory elements and their 3D interactions at gastric loci. Furthermore, oncogenic KRAS is required for the FoxA1/2-dependent epigenetic reprogramming. This work demonstrates the role of FoxA1/2 in rewiring the methylation and histone landscape and cis-regulatory dynamics of NKX2-1-negative LUAD to drive cancer cell lineage switching.

cancer biology↗