The renal lineage factor PAX8 controls oncogenic signalling in kidney cancer.
Saroor A PatelShoko HirosuePaulo RodriguesErika VojtasovaEmma K RichardsonJianfeng GeSaiful E SyafruddinAlyson SpeedEvangelia K PapachristouDavid BakerDavid ClarkeStephenie PurvisLudovic WesolowskiAnna DyasLeticia CastillonVeronica CaraffiniDóra BiharyCissy YongDavid J HarrisonGrant D StewartMitchell J MachielaMark P PurdueStephen J ChanockAnne Y WarrenShamith A SamarajiwaJason S CarrollSakari VanharantaPublished in: Nature (2022)
Large-scale human genetic data 1-3 have shown that cancer mutations display strong tissue-selectivity, but how this selectivity arises remains unclear. Here, using experimental models, functional genomics and analyses of patient samples, we demonstrate that the lineage transcription factor paired box 8 (PAX8) is required for oncogenic signalling by two common genetic alterations that cause clear cell renal cell carcinoma (ccRCC) in humans: the germline variant rs7948643 at 11q13.3 and somatic inactivation of the von Hippel-Lindau tumour suppressor (VHL) 4-6 . VHL loss, which is observed in about 90% of ccRCCs, can lead to hypoxia-inducible factor 2α (HIF2A) stabilization 6,7 . We show that HIF2A is preferentially recruited to PAX8-bound transcriptional enhancers, including a pro-tumorigenic cyclin D1 (CCND1) enhancer that is controlled by PAX8 and HIF2A. The ccRCC-protective allele C at rs7948643 inhibits PAX8 binding at this enhancer and downstream activation of CCND1 expression. Co-option of a PAX8-dependent physiological programme that supports the proliferation of normal renal epithelial cells is also required for MYC expression from the ccRCC metastasis-associated amplicons at 8q21.3-q24.3 (ref. 8 ). These results demonstrate that transcriptional lineage factors are essential for oncogenic signalling and that they mediate tissue-specific cancer risk associated with somatic and inherited genetic variants.
Keyphrases
- transcription factor
- dna binding
- endothelial cells
- binding protein
- poor prognosis
- papillary thyroid
- single cell
- copy number
- squamous cell
- genome wide identification
- gene expression
- study protocol
- long non coding rna
- dna repair
- machine learning
- young adults
- oxidative stress
- big data
- induced pluripotent stem cells
- cell death
- anti inflammatory
- artificial intelligence
- pluripotent stem cells
- heat shock
- cell cycle arrest