Ceramide nanoliposomes augment the efficacy of venetoclax and cytarabine in models of acute myeloid leukemia.
Andrei V KhokhlatchevArati SharmaTye G DeeringJeremy J P ShawPedro Costa-PinheiroUpendarrao GollaCharyguly AnnageldiyevMyles C CabotMark R ConawaySu-Fern TanJohnson UngDavid J FeithThomas P LoughranDavid F ClaxtonTodd E FoxMark KesterPublished in: FASEB journal : official publication of the Federation of American Societies for Experimental Biology (2022)
Despite several new therapeutic options for acute myeloid leukemia (AML), disease relapse remains a significant challenge. We have previously demonstrated that augmenting ceramides can counter various drug-resistance mechanisms, leading to enhanced cell death in cancer cells and extended survival in animal models. Using a nanoscale delivery system for ceramide (ceramide nanoliposomes, CNL), we investigated the effect of CNL within a standard of care venetoclax/cytarabine (Ara-C) regimen. We demonstrate that CNL augmented the efficacy of venetoclax/cytarabine in in vitro, ex vivo, and in vivo models of AML. CNL treatment induced non-apoptotic cytotoxicity, and augmented cell death induced by Ara-C and venetoclax. Mechanistically, CNL reduced both venetoclax (Mcl-1) and cytarabine (Chk1) drug-resistant signaling pathways. Moreover, venetoclax and Ara-C augmented the generation of endogenous pro-death ceramide species, which was intensified with CNL. Taken together, CNL has the potential to be utilized as an adjuvant therapy to improve outcomes, potentially extending survival, in patients with AML.
Keyphrases
- acute myeloid leukemia
- cell death
- chronic lymphocytic leukemia
- drug resistant
- allogeneic hematopoietic stem cell transplantation
- multidrug resistant
- healthcare
- signaling pathway
- free survival
- acinetobacter baumannii
- cell cycle arrest
- atomic force microscopy
- type diabetes
- virtual reality
- high glucose
- metabolic syndrome
- cystic fibrosis
- high dose
- adipose tissue
- dna damage
- skeletal muscle
- oxidative stress
- high resolution
- anti inflammatory
- induced apoptosis
- stress induced
- endothelial cells
- dna damage response
- weight loss
- replacement therapy