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线粒体叶酸代谢的抑制通过mTORC1介导的嘌呤感知驱动分化。

Inhibition of mitochondrial folate metabolism drives differentiation through mTORC1 mediated purine sensing.

作者信息

Zarou Martha M, Rattigan Kevin M, Sarnello Daniele, Shokry Engy, Dawson Amy, Ianniciello Angela, Dunn Karen, Copland Mhairi, Sumpton David, Vazquez Alexei, Helgason G Vignir

机构信息

Wolfson Wohl Cancer Research Centre, School of Cancer Sciences, University of Glasgow, Glasgow, G61 1QH, UK.

Cancer Research UK Scotland Institute, Glasgow, G61 1BD, UK.

出版信息

Nat Commun. 2024 Mar 2;15(1):1931. doi: 10.1038/s41467-024-46114-0.

Abstract

Supporting cell proliferation through nucleotide biosynthesis is an essential requirement for cancer cells. Hence, inhibition of folate-mediated one carbon (1C) metabolism, which is required for nucleotide synthesis, has been successfully exploited in anti-cancer therapy. Here, we reveal that mitochondrial folate metabolism is upregulated in patient-derived leukaemic stem cells (LSCs). We demonstrate that inhibition of mitochondrial 1C metabolism through impairment of de novo purine synthesis has a cytostatic effect on chronic myeloid leukaemia (CML) cells. Consequently, changes in purine nucleotide levels lead to activation of AMPK signalling and suppression of mTORC1 activity. Notably, suppression of mitochondrial 1C metabolism increases expression of erythroid differentiation markers. Moreover, we find that increased differentiation occurs independently of AMPK signalling and can be reversed through reconstitution of purine levels and reactivation of mTORC1. Of clinical relevance, we identify that combination of 1C metabolism inhibition with imatinib, a frontline treatment for CML patients, decreases the number of therapy-resistant CML LSCs in a patient-derived xenograft model. Our results highlight a role for folate metabolism and purine sensing in stem cell fate decisions and leukaemogenesis.

摘要

通过核苷酸生物合成来支持细胞增殖是癌细胞的一项基本需求。因此,抑制叶酸介导的一碳(1C)代谢(核苷酸合成所必需)已在抗癌治疗中得到成功应用。在此,我们揭示线粒体叶酸代谢在患者来源的白血病干细胞(LSC)中上调。我们证明,通过损害从头嘌呤合成来抑制线粒体1C代谢对慢性髓性白血病(CML)细胞具有细胞生长抑制作用。因此,嘌呤核苷酸水平的变化导致AMPK信号通路激活和mTORC1活性抑制。值得注意的是,线粒体1C代谢的抑制增加了红系分化标志物的表达。此外,我们发现增加的分化独立于AMPK信号通路发生,并且可以通过嘌呤水平的重建和mTORC1的重新激活而逆转。具有临床相关性的是,我们确定1C代谢抑制与伊马替尼(CML患者的一线治疗药物)联合使用,可减少患者来源的异种移植模型中对治疗耐药的CML LSC数量。我们的结果突出了叶酸代谢和嘌呤感知在干细胞命运决定和白血病发生中的作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e1a4/10908830/0f7d44b9e506/41467_2024_46114_Fig1_HTML.jpg

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