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Publication : Pml nuclear body disruption cooperates in APL pathogenesis and impairs DNA damage repair pathways in mice.

First Author  Voisset E Year  2018
Journal  Blood Volume  131
Issue  6 Pages  636-648
PubMed ID  29191918 Mgi Jnum  J:262172
Mgi Id  MGI:6120347 Doi  10.1182/blood-2017-07-794784
Citation  Voisset E, et al. (2018) Pml nuclear body disruption cooperates in APL pathogenesis and impairs DNA damage repair pathways in mice. Blood 131(6):636-648
abstractText  A hallmark of acute promyelocytic leukemia (APL) is altered nuclear architecture, with disruption of promyelocytic leukemia (PML) nuclear bodies (NBs) mediated by the PML-retinoic acid receptor alpha (RARalpha) oncoprotein. To address whether this phenomenon plays a role in disease pathogenesis, we generated a knock-in mouse model with NB disruption mediated by 2 point mutations (C62A/C65A) in the Pml RING domain. Although no leukemias developed in Pml(C62A/C65A) mice, these transgenic mice also expressing RARalpha linked to a dimerization domain (p50-RARalpha model) exhibited a doubling in the rate of leukemia, with a reduced latency period. Additionally, we found that response to targeted therapy with all-trans retinoic acid in vivo was dependent on NB integrity. PML-RARalpha is recognized to be insufficient for development of APL, requiring acquisition of cooperating mutations. We therefore investigated whether NB disruption might be mutagenic. Compared with wild-type cells, primary Pml(C62A/C65A) cells exhibited increased sister-chromatid exchange and chromosome abnormalities. Moreover, functional assays showed impaired homologous recombination (HR) and nonhomologous end-joining (NHEJ) repair pathways, with defective localization of Brca1 and Rad51 to sites of DNA damage. These data directly demonstrate that Pml NBs are critical for DNA damage responses, and suggest that Pml NB disruption is a central contributor to APL pathogenesis.
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