Overcoming Wnt-β-catenin dependent anticancer therapy resistance in leukaemia stem cells.
John M PerryFang TaoAnuradha RoyTara L LinXi C HeShiyuan ChenXiuling LuJacqelyn NemechekLinhao RuanXiazhen YuDebra DukesAndrea MoranJennifer PaceKealan SchroederMeng ZhaoAparna VenkatramanPengxu QianZhenrui LiMark HembreeAriel PaulsonZhiquan HeDong XuThanh-Huyen TranPrashant DeshmukhChi Thanh NguyenRajeswari M KasiRobin RyanMelinda BrowardSheng DingErin GuestKeith J AugustAlan S GamisAndrew GodwinG Sitta SittampalamScott J WeirLinheng LiPublished in: Nature cell biology (2020)
Leukaemia stem cells (LSCs) underlie cancer therapy resistance but targeting these cells remains difficult. The Wnt-β-catenin and PI3K-Akt pathways cooperate to promote tumorigenesis and resistance to therapy. In a mouse model in which both pathways are activated in stem and progenitor cells, LSCs expanded under chemotherapy-induced stress. Since Akt can activate β-catenin, inhibiting this interaction might target therapy-resistant LSCs. High-throughput screening identified doxorubicin (DXR) as an inhibitor of the Akt-β-catenin interaction at low doses. Here we repurposed DXR as a targeted inhibitor rather than a broadly cytotoxic chemotherapy. Targeted DXR reduced Akt-activated β-catenin levels in chemoresistant LSCs and reduced LSC tumorigenic activity. Mechanistically, β-catenin binds multiple immune-checkpoint gene loci, and targeted DXR treatment inhibited expression of multiple immune checkpoints specifically in LSCs, including PD-L1, TIM3 and CD24. Overall, LSCs exhibit distinct properties of immune resistance that are reduced by inhibiting Akt-activated β-catenin. These findings suggest a strategy for overcoming cancer therapy resistance and immune escape.
Keyphrases
- cell proliferation
- cancer therapy
- signaling pathway
- pi k akt
- epithelial mesenchymal transition
- stem cells
- drug delivery
- induced apoptosis
- cell cycle arrest
- mouse model
- chemotherapy induced
- cell therapy
- poor prognosis
- genome wide
- squamous cell carcinoma
- oxidative stress
- mesenchymal stem cells
- combination therapy
- endoplasmic reticulum stress
- locally advanced
- genome wide analysis