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Mulet-Lazaro, R.

Publications and source records attributed to Mulet-Lazaro, R..

2 recordsLinked to original sources

Hematological phenotypes in GATA2 deficiency syndrome arise from secondary injuries and maladaptation to proliferation

The GATA2 transcription factor is a pivotal regulator of hematopoiesis. Disruptions in the GATA2 gene drive severe hematologic abnormalities and are associated with an increased risk of myelodysplastic syndromes and acute myeloid leukemia; however, the mechanisms underlying the pathophysiology of GATA2 deficiency remain still unclear. We developed two different mouse models that are based on serial and limiting donor cell transplantation of (aged) GATA2 haploinsufficient cells and mirror the symptoms of GATA2 deficiency. Similar to what has been observed in patients, our models show that GATA2 haploinsufficiency leads to B lymphopenia, monocytopenia, lethal bone marrow failure (BMF), myelodysplasia and leukemia. Leukemia arises exclusively as a result of BMF, driven by somatic aberrations and accompanied by increased Myc target expression and genomic instability. These findings were confirmed in human GATA2+/- K562 cell lines showing defects in cytokinesis and are in line with the fact that monosomy 7 and trisomy 8 are frequent events in patients with MDS. Key pointsO_LIIn a mouse model for GATA2 deficiency, leukemia emerges from bone marrow failure C_LIO_LIMaladaptation to proliferative signals and chromosomal segregation defects contribute to the hematological phenotypes in GATA2 deficiency C_LI

cell biology↗

Oncogene EVI1 Drives Acute Myeloid Leukemia Via a Targetable Interaction with CTBP2

Acute myeloid leukemia (AML) driven by the activation of EVI1 due to chromosome 3q26/MECOM rearrangements is incurable. Since transcription factors like EVI1 are notoriously hard to target, insight into the mechanism by which EVI1 drives myeloid transformation could provide alternative avenues for therapy. Applying protein folding predictions combined with proteomics technologies, we demonstrate that interaction with CTBP1 and CTBP2 via a single PLDLS motif in EVI1 is indispensable for leukemic transformation. Furthermore, we show that a 4x PLDLS repeat construct outcompetes binding of EVI1 to CTBP1 and CTBP2 and thereby inhibits proliferation of 3q26/MECOM rearranged AML both in in vitro and in xenotransplant models. This proof-of-concept study opens the possibility to therapeutically target one of the most incurable forms of AML with specific EVI1-CTBP inhibitors. This has important implications for other tumour types with aberrant expression of EVI1 as well as for cancers transformed by distinct CTBP-dependent oncogenic transcription factors.

cancer biology↗