Targetable leukaemia dependency on noncanonical PI3Kγ signalling.
Qingyu LuoEvangeline G RaulstonMiguel A PradoXiaowei WuKira GritsmanKarley S WhalenKezhi YanChristopher A G BoothRan XuPeter van GalenJohn G DoenchShai ShimonyHenry W LongDonna S NeubergJoao A PauloAndrew A LanePublished in: Nature (2024)
Phosphoinositide-3-kinase-γ (PI3Kγ) is implicated as a target to repolarize tumour-associated macrophages and promote antitumour immune responses in solid cancers 1-4 . However, cancer cell-intrinsic roles of PI3Kγ are unclear. Here, by integrating unbiased genome-wide CRISPR interference screening with functional analyses across acute leukaemias, we define a selective dependency on the PI3Kγ complex in a high-risk subset that includes myeloid, lymphoid and dendritic lineages. This dependency is characterized by innate inflammatory signalling and activation of phosphoinositide 3-kinase regulatory subunit 5 (PIK3R5), which encodes a regulatory subunit of PI3Kγ 5 and stabilizes the active enzymatic complex. We identify p21 (RAC1)-activated kinase 1 (PAK1) as a noncanonical substrate of PI3Kγ that mediates this cell-intrinsic dependency and find that dephosphorylation of PAK1 by PI3Kγ inhibition impairs mitochondrial oxidative phosphorylation. Treatment with the selective PI3Kγ inhibitor eganelisib is effective in leukaemias with activated PIK3R5. In addition, the combination of eganelisib and cytarabine prolongs survival over either agent alone, even in patient-derived leukaemia xenografts with low baseline PIK3R5 expression, as residual leukaemia cells after cytarabine treatment have elevated G protein-coupled purinergic receptor activity and PAK1 phosphorylation. Together, our study reveals a targetable dependency on PI3Kγ-PAK1 signalling that is amenable to near-term evaluation in patients with acute leukaemia.
Keyphrases
- protein kinase
- immune response
- genome wide
- acute myeloid leukemia
- oxidative stress
- high dose
- dna methylation
- induced apoptosis
- transcription factor
- tyrosine kinase
- dendritic cells
- single cell
- stem cells
- crispr cas
- respiratory failure
- hydrogen peroxide
- preterm infants
- intensive care unit
- binding protein
- endoplasmic reticulum stress
- cell therapy
- cell proliferation
- low dose
- long non coding rna
- combination therapy
- drug induced
- acute respiratory distress syndrome
- inflammatory response
- mechanical ventilation