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Biology subjects

Kinz, N.

Publications and source records attributed to Kinz, N..

2 recordsLinked to original sources

TET2 loss promotes premalignant survival and clonal selection in MYC-driven B cell lymphoma

The DNA demethylase ten-eleven translocation enzyme 2 (TET2) is frequently inactivated in hematologic malignancies, yet how its loss shapes oncogene-driven transformation remains unclear. Using a mouse model in which MYC is overexpressed in the B cell lineage, driving aggressive B cell lymphoma, we show that Tet2 loss increases lymphoma penetrance and biases disease toward an IgM immunophenotype. Established lymphomas are broadly similar across genotypes, suggesting that Tet2 loss exerts much of its effects before lymphoma onset. Accordingly, Tet2 loss expands a premalignant IgM B cell subset with reduced apoptotic sensitivity and an increased frequency of BCL2BIMhi cells. Consistently, Tet2 deficient IgM B cells persist better in in vitro cultures, show increased clonogenic survival, and exhibit clonal skewing. These findings support a model in which Tet2 loss heightens MYC-driven lymphoma penetrance by promoting the survival and selection of premalignant B cells under apoptotic stress.

cancer biology↗

The PIDDosome controls cardiomyocyte polyploidization during postnatal heart development

The adult mammalian heart is characterized by post-mitotic polyploid cardiomyocytes (CMs). Understanding how CMs regulate cell cycle exit and ploidy can help developing new heart regenerative therapies. Here, we uncover that the PIDDosome, a multi-protein complex activating the endopeptidase Caspase-2, helps to implement a CM-specific differentiation program that limits ploidy during postnatal heart development. DNA content analyses show that PIDDosome-loss causes a cell-autonomous increase in nuclear and cellular CM ploidy. Remarkably, increased ploidy does not affect cardiac structure nor function. PIDDosome-imposed ploidy restriction commences at postnatal day 7 (P7), reaching a plateau on P14. PIDDosome activation requires ANKRD26, targeting PIDD1 to mother centrioles. Opposite to prior observations in liver development, the PIDDosome limits CM polyploidization in a p53-independent manner but reliant on p21/Cdkn1a, a notion supported by nuclear RNA sequencing and genetic deletion experiments. Our results provide new insights how proliferation of polyploid CMs is restricted during postnatal heart development.

developmental biology↗