Orthogonal proteogenomic analysis identifies the druggable PA2G4-MYC axis in 3q26 AML.
Matteo MarchesiniAndrea GherliElisa SimonciniLucas Moron Dalla TorAnna MontanaroNatthakan ThongonFederica VentoChiara LiveraniElisa CerretaniAnna D'AntuonoLuca PagliaroRaffaella ZamponiChiara SpadazziElena FolliniBenedetta CambòMariateresa GiaimoAngela FalcoGabriella SammarelliGiannalisa TodaroSabrina BonominiValentina AdamiSilvano PiazzaClaudia CorboBruno LorussoFederica MezzasomaCostanza Anna Maria LagrastaMaria Paola MartelliRoberta La StarzaAntonio CuneoFranco AversaCristina MecucciFederico QuainiSimona CollaGiovanni RotiPublished in: Nature communications (2024)
The overexpression of the ecotropic viral integration site-1 gene (EVI1/MECOM) marks the most lethal acute myeloid leukemia (AML) subgroup carrying chromosome 3q26 abnormalities. By taking advantage of the intersectionality of high-throughput cell-based and gene expression screens selective and pan-histone deacetylase inhibitors (HDACis) emerge as potent repressors of EVI1. To understand the mechanism driving on-target anti-leukemia activity of this compound class, here we dissect the expression dynamics of the bone marrow leukemia cells of patients treated with HDACi and reconstitute the EVI1 chromatin-associated co-transcriptional complex merging on the role of proliferation-associated 2G4 (PA2G4) protein. PA2G4 overexpression rescues AML cells from the inhibitory effects of HDACis, while genetic and small molecule inhibition of PA2G4 abrogates EVI1 in 3q26 AML cells, including in patient-derived leukemia xenografts. This study positions PA2G4 at the crosstalk of the EVI1 leukemogenic signal for developing new therapeutics and urges the use of HDACis-based combination therapies in patients with 3q26 AML.
Keyphrases
- acute myeloid leukemia
- gene expression
- genome wide
- small molecule
- high throughput
- allogeneic hematopoietic stem cell transplantation
- induced apoptosis
- bone marrow
- transcription factor
- histone deacetylase
- cell cycle arrest
- dna methylation
- copy number
- cell proliferation
- single cell
- mesenchymal stem cells
- sars cov
- oxidative stress
- dna damage
- stem cells
- clinical trial
- protein protein
- long non coding rna
- open label