MCL1
生物
糖酵解
髓系白血病
髓样
造血
癌症研究
祖细胞
白血病
内科学
干细胞
细胞生物学
新陈代谢
免疫学
内分泌学
医学
生物化学
下调和上调
基因
作者
Gianfranco Catalano,Alessandra Zaza,Cristina Banella,Elvira Pelosi,Germana Castelli,Elisabetta De Marinis,Ariela Smigliani,Serena Travaglini,Tiziana Ottone,Mariadomenica Divona,Maria Ilaria Del Principe,Francesco Buccisano,Luca Maurillo,Emanuele Ammatuna,Ugo Testa,Clara Nervi,Adriano Venditti,Maria Teresa Voso,Nélida I. Noguera
出处
期刊:Leukemia
[Springer Nature]
日期:2023-06-22
卷期号:37 (8): 1600-1610
被引量:3
标识
DOI:10.1038/s41375-023-01946-5
摘要
We characterize the metabolic background in distinct Acute Myeloid Leukemias (AMLs), by comparing the metabolism of primary AML blasts isolated at diagnosis with that of normal hematopoietic maturing progenitors, using the Seahorse XF Agilent. Leukemic cells feature lower spare respiratory (SRC) and glycolytic capacities as compared to hematopoietic precursors (i.e. day 7, promyelocytes). According with Proton Leak (PL) values, AML blasts can be grouped in two well defined populations. The AML group with blasts presenting high PL or high basal OXPHOS plus high SRC levels had shorter overall survival time and significantly overexpressed myeloid cell leukemia 1 (MCL1) protein. We demonstrate that MCL1 directly binds to Hexokinase 2 (HK2) on the outer mitochondrial membrane (OMM). Overall, these results suggest that high PL and high SRC plus high basal OXPHOS levels at disease onset, arguably with the concourse of MCL1/HK2 action, are significantly linked with shorter overall survival time in AML. Our data describe a new function for MCL1 protein in AMLs' cells: by forming a complex with HK2, MCL1 co-localizes to VDAC on the OMM, thus inducing glycolysis and OXPHOS, ultimately conferring metabolic plasticity and promoting resistance to therapy.
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