Targeting a lineage-specific PI3Kɣ-Akt signaling module in acute myeloid leukemia using a heterobifunctional degrader molecule.
Lois M KellyJustine C RutterKevin H LinFrank LingMatthieu DuchmannEmmanuelle LatourNadia ArangHélène PasquerDuong Ho NhatJuliette CharlesShane T KillarneyHazel Xiaohui AngFederica NamorCécile CuleuxBerangere LombardDamarys LoewDanielle L SwaneyNevan J KroganLuc BrunelÉlodie CarreteroPascal VerdiéMuriel AmblardSofiane FodilTony HuynhMarie SébertLionel AdesEmmanuel RaffouxNina FenouilleRaphaël A ItzyksonCamille LobryLina BenajibaAntoine ForgetAnthony R MartinKris C WoodAlexandre PuissantPublished in: Nature cancer (2024)
Dose-limiting toxicity poses a major limitation to the clinical utility of targeted cancer therapies, often arising from target engagement in nonmalignant tissues. This obstacle can be minimized by targeting cancer dependencies driven by proteins with tissue-restricted and/or tumor-restricted expression. In line with another recent report, we show here that, in acute myeloid leukemia (AML), suppression of the myeloid-restricted PIK3CG/p110γ-PIK3R5/p101 axis inhibits protein kinase B/Akt signaling and compromises AML cell fitness. Furthermore, silencing the genes encoding PIK3CG/p110γ or PIK3R5/p101 sensitizes AML cells to established AML therapies. Importantly, we find that existing small-molecule inhibitors against PIK3CG are insufficient to achieve a sustained long-term antileukemic effect. To address this concern, we developed a proteolysis-targeting chimera (PROTAC) heterobifunctional molecule that specifically degrades PIK3CG and potently suppresses AML progression alone and in combination with venetoclax in human AML cell lines, primary samples from patients with AML and syngeneic mouse models.
Keyphrases
- acute myeloid leukemia
- signaling pathway
- allogeneic hematopoietic stem cell transplantation
- pi k akt
- small molecule
- induced apoptosis
- cell cycle arrest
- cell proliferation
- papillary thyroid
- endothelial cells
- single cell
- cancer therapy
- mouse model
- poor prognosis
- body composition
- stem cells
- gene expression
- protein kinase
- social media
- cell death
- genome wide
- drug delivery
- immune response
- oxidative stress
- bone marrow
- squamous cell
- acute lymphoblastic leukemia
- protein protein
- binding protein