Targeting Acute Myelogenous Leukemia Using Potent Human Dihydroorotate Dehydrogenase Inhibitors Based on the 2-Hydroxypyrazolo[1,5- a ]pyridine Scaffold: SAR of the Aryloxyaryl Moiety.
Stefano SainasMarta GiorgisPaola CircostaGiulio PoliMarta AlbertiAlice PassoniValentina GaidanoAgnese C PippioneNicoletta VitaleDavide BonanniBarbara RolandoAlessandro CignettiCristina RamondettiAlessia LannoDavide M FerrarisBarbara CanepaBarbara BuccinnàMarco PiccininiMenico RizziGiuseppe SaglioSalam Al-KaradaghiDonatella BoschiRiccardo MiggianoTiziano TuccinardiMarco Lucio LolliPublished in: Journal of medicinal chemistry (2022)
In recent years, human dihydroorotate dehydrogenase inhibitors have been associated with acute myelogenous leukemia as well as studied as potent host targeting antivirals. Starting from MEDS433 (IC 50 1.2 nM), we kept improving the structure-activity relationship of this class of compounds characterized by 2-hydroxypyrazolo[1,5- a ]pyridine scaffold. Using an in silico/crystallography supported design, we identified compound 4 (IC 50 7.2 nM), characterized by the presence of a decorated aryloxyaryl moiety that replaced the biphenyl scaffold, with potent inhibition and pro-differentiating abilities on AML THP1 cells (EC 50 74 nM), superior to those of brequinar (EC 50 249 nM) and boosted when in combination with dipyridamole. Finally, compound 4 has an extremely low cytotoxicity on non-AML cells as well as MEDS433; it has shown a significant antileukemic activity in vivo in a xenograft mouse model of AML.
Keyphrases
- acute myeloid leukemia
- induced apoptosis
- photodynamic therapy
- endothelial cells
- liver failure
- cell cycle arrest
- mouse model
- bone marrow
- structure activity relationship
- anti inflammatory
- respiratory failure
- induced pluripotent stem cells
- tissue engineering
- endoplasmic reticulum stress
- cancer therapy
- computed tomography
- cell death
- signaling pathway
- aortic dissection
- oxidative stress
- quantum dots
- magnetic resonance
- molecular docking
- acute lymphoblastic leukemia
- cell proliferation
- pi k akt
- highly efficient
- drug delivery
- extracorporeal membrane oxygenation
- molecular dynamics simulations