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Single-cell RNA-seq reveals developmental plasticity with coexisting oncogenic states and immune evasion programs in ETP-ALL

生物 癌症研究 干细胞 癌症干细胞 白血病 Notch信号通路 免疫系统 癌症的体细胞进化 祖细胞 免疫检查点 细胞生物学 癌症 信号转导 免疫学 遗传学 免疫疗法
作者
Praveen Anand,Amy Guillaumet-Adkins,Valeriya Dimitrova,Huiyoung Yun,Yotam Drier,Noori Sotudeh,Anna J. Rogers,Madhu M. Ouseph,Monica S. Nair,Sayalee Potdar,Randi Isenhart,Jake A. Kloeber,Tushara Vijaykumar,Leili Niu,Tiffaney L. Vincent,Guangwu Guo,Julia Frede,Marian H. Harris,Andrew E. Place,Lewis B. Silverman,David T. Teachey,Andrew A. Lane,Daniel J. DeAngelo,Jon C. Aster,B Bernstein,Jens G. Lohr,Birgit Knoechel
出处
期刊:Blood [Elsevier BV]
卷期号:137 (18): 2463-2480 被引量:47
标识
DOI:10.1182/blood.2019004547
摘要

Abstract Lineage plasticity and stemness have been invoked as causes of therapy resistance in cancer, because these flexible states allow cancer cells to dedifferentiate and alter their dependencies. We investigated such resistance mechanisms in relapsed/refractory early T-cell progenitor acute lymphoblastic leukemia (ETP-ALL) carrying activating NOTCH1 mutations via full-length single-cell RNA sequencing (scRNA-seq) of malignant and microenvironmental cells. We identified 2 highly distinct stem-like states that critically differed with regard to cell cycle and oncogenic signaling. Fast-cycling stem-like leukemia cells demonstrated Notch activation and were effectively eliminated in patients by Notch inhibition, whereas slow-cycling stem-like cells were Notch independent and rather relied on PI3K signaling, likely explaining the poor efficacy of Notch inhibition in this disease. Remarkably, we found that both stem-like states could differentiate into a more mature leukemia state with prominent immunomodulatory functions, including high expression of the LGALS9 checkpoint molecule. These cells promoted an immunosuppressive leukemia ecosystem with clonal accumulation of dysfunctional CD8+ T cells that expressed HAVCR2, the cognate receptor for LGALS9. Our study identified complex interactions between signaling programs, cellular plasticity, and immune programs that characterize ETP-ALL, illustrating the multidimensionality of tumor heterogeneity. In this scenario, combination therapies targeting diverse oncogenic states and the immune ecosystem seem most promising to successfully eliminate tumor cells that escape treatment through coexisting transcriptional programs.
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