急性髓性白血病中PRDM16代谢重编程驱动阿糖胞苷耐药

IF 7.9 1区 医学 Q1 HEMATOLOGY
Junji Ikeda, Hiroyoshi Kunimoto, Yusuke Saito, Shin-Ichi Tsujimoto, Masanobu Takeuchi, Ayaka Miura, Takayuki Kurosawa, Koichi Murakami, Ikuma Kato, Megumi Funakoshi-Tago, Akihiko Yokoyama, Norio Shiba, Souichi Adachi, Daisuke Tomizawa, Tomohiko Tamura, Shuichi Ito, Hideaki Nakajima
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引用次数: 0

摘要

PRDM16高表达的急性髓性白血病(AML)患者经常出现诱导失败,预后较差。然而,这些临床特征背后的分子机制仍然难以捉摸。我们发现,通过MLL::AF9融合和致癌短异构体Prdm16过表达(以下简称MF9/sPrdm16)转化的小鼠AML细胞在体外和体内均表现出对阿糖胞苷(AraC)的耐药性,但对蒽环类药物没有耐药性。有趣的是,MF9/sPrdm16细胞显示出高氧化磷酸化(OxPHOS)和线粒体呼吸增加的基因表达特征。二甲双胍或替加环素对线粒体呼吸的抑制通过向低OxPHOS状态的能量转变,消除了MF9/sPrdm16细胞中的AraC耐药性。此外,sPrdm16上调Myc和谷氨酰胺转运体Slc1a5,激活TCA循环和谷氨酰胺水解。值得注意的是,在PRDM16高表达的AML患者样本中,OxPHOS和myc靶基因特征都显著富集。总之,我们发现PRDM16过表达通过myc - slc1a5 -谷氨酰胺溶解轴的代谢重编程激活线粒体呼吸,从而赋予AML细胞AraC抗性。这些结果表明,靶向线粒体呼吸可能是克服PRDM16高表达AML患者化疗耐药的一种新的治疗策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Metabolic reprogramming by PRDM16 drives cytarabine resistance in acute myeloid leukemia.

Acute myeloid leukemia (AML) patients with high PRDM16 expression frequently experience induction failure and have a poor prognosis. However, the molecular mechanisms underlying these clinical features remain elusive. We found that murine AML cells transformed by MLL::AF9 fusion and oncogenic short-isoform Prdm16 overexpression (hereafter, MF9/sPrdm16) exhibited resistance to cytarabine (AraC), but not to anthracycline, both in vitro and in vivo. Intriguingly, MF9/sPrdm16 cells displayed a gene expression signature of high oxidative phosphorylation (OxPHOS) and increased mitochondrial respiration. The inhibition of mitochondrial respiration with metformin or tigecycline abrogated AraC resistance in MF9/sPrdm16 cells via an energetic shift toward low OxPHOS status. Furthermore, sPrdm16 upregulated Myc and the glutamine transporter Slc1a5, activating TCA cycle and glutaminolysis. Of note, both OxPHOS and MYC-target gene signatures were significantly enriched in AML patient samples with high PRDM16 expression. Together, we showed that PRDM16 overexpression activates mitochondrial respiration through metabolic reprogramming via MYC-SLC1A5-Glutaminolysis axis, thereby conferring AraC resistance on AML cells. These results suggest that targeting mitochondrial respiration might be a novel treatment strategy to overcome chemoresistance in AML patients with high PRDM16 expression.

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来源期刊
Haematologica
Haematologica 医学-血液学
CiteScore
14.10
自引率
2.00%
发文量
349
审稿时长
3-6 weeks
期刊介绍: Haematologica is a journal that publishes articles within the broad field of hematology. It reports on novel findings in basic, clinical, and translational research. Scope: The scope of the journal includes reporting novel research results that: Have a significant impact on understanding normal hematology or the development of hematological diseases. Are likely to bring important changes to the diagnosis or treatment of hematological diseases.
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