PO.MCB09.02 · 分子与细胞生物学
EPR成像检测FH缺陷型肾肿瘤中NQO1激活化合物驱动的耗氧
EPR imaging of oxygen consumption driven by NQO1-activated compounds in FH-deficient renal tumors
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
遗传性平滑肌瘤病与肾细胞癌(HLRCC)患者以延胡索酸水合酶(FH)基因突变为特征,具有发生侵袭性FH缺陷型RCC的风险。FH缺陷型肿瘤细胞发生显著且不可逆的代谢转变,转向乳酸发酵,部分原因是线粒体DNA的丢失和突变。FH缺陷型肿瘤细胞中延胡索酸的积累通过激活NRF2转录因子导致NAD(P)H-醌氧化还原酶1(NQO1)表达升高。尽管若干治疗药物在FH缺陷型RCC的治疗中显示出前景,但患者的临床结局仍不令人满意。在本研究中,我们检验了异丁基-脱氧尼波醌(IB-DNQ)的机制和治疗疗效,该化合物在NQO1和氧存在下进行无效氧化还原循环,导致持续产生高反应性和毒性的超氧阴离子。首先,我们发现患者来源的FH缺陷型肿瘤细胞在体外表现出极低的耗氧,FH缺陷型肿瘤异种移植物的体内EPR氧成像显示,相对于其他基因定义的RCC体内模型,肿瘤氧水平升高。在荷瘤动物中输注IB-DNQ导致FH缺陷型肿瘤异种移植物中快速而强劲的非线粒体耗氧,这通过EPR氧成像和肿瘤血红蛋白饱和度的光声成像共同测得。重复给予IB-DNQ导致肿瘤生长率降低。代谢组学分析显示,IB-DNQ处理通过快速耗竭NADH和NADPH,强烈抑制FH缺陷型肿瘤细胞的糖酵解并降低细胞ATP水平。最后,[1-13C]丙酮酸超极化MR波谱显示,IB-DNQ处理后FH缺陷型肿瘤异种移植物中丙酮酸向乳酸的转化减少,直接测量了IB-DNQ对体内乳酸发酵的影响。这些体内成像技术与代谢物测量的结合表明,NQO1激活的醌类可以有效靶向依赖乳酸发酵生长的FH缺陷型肿瘤中的有氧糖酵解。
查看英文原文 English abstract
Patients with hereditary leiomyomatosis and renal cell carcinoma (HLRCC), characterized by mutations in the fumarate hydratase (FH) gene, are at risk for development of aggressive FH-deficient RCCs. FH-deficient tumor cells undergo a pronounced and irreversible metabolic shift to lactate fermentation due in part to loss and mutation of mitochondrial DNA. Fumarate accumulation in FH-deficient tumor cells leads to increased expression of NAD(P)H-quinone oxidoreductase 1 (NQO1) through activation of the NRF2 transcription factor. Although several therapeutic agents have shown promise in the treatment of FH-deficient RCC, clinical outcomes in patients remain unsatisfactory. In this study, we examined the mechanism and therapeutic efficacy of isobutyl-deoxynyboquinone (IB-DNQ), which undergoes futile redox cycling in the presence of NQO1 and oxygen, leading to sustained generation of the highly reactive and toxic superoxide anion. First, we found that patient-derived FH-deficient tumor cells exhibit minimal oxygen consumption in vitro, and EPR oxygen mapping of FH-deficient tumor xenografts in vivo revealed that tumor oxygen levels were elevated relative to other genetically defined in vivo models of RCC. Infusion of IB-DNQ in tumor-bearing animals resulted in rapid and robust non-mitochondrial oxygen consumption in FH-deficient tumor xenografts as measured by both EPR oxygen imaging and photoacoustic mapping of tumor hemoglobin saturation. Repeated doses of IB-DNQ resulted in reduced tumor growth rates. Metabolomic analyses revealed that IB-DNQ treatment strongly suppressed glycolysis and reduced cellular ATP levels by rapidly depleting NADH and NADPH in FH-deficient tumor cells. Finally, [1- 13 C]pyruvate hyperpolarized MR spectroscopy revealed decreased conversion of pyruvate to lactate in FH-deficient tumor xenografts following IB-DNQ treatment, providing a direct measurement of the impact of IB-DNQ on lactate fermentation in vivo. The combination of these in vivo imaging techniques and metabolite measurements demonstrate that NQO1-activated quinones can effectively target aerobic glycolysis in FH-deficient tumors which rely heavily on lactate fermentation for growth.
利益披露 Disclosure
Y. Shibata, None..
S. Kishimoto, None..
Y. Yang, None..
M. Wei, None..
J. Medina-Velazquez, None..
B. Blackman, None..
J. Munasinghe, None..
V. Chegu, None..
V. S. Srirama, None..
T. A. On, None..
N. Devasahayam, None..
J. R. Brender, None..
M. C. Krishna, None..
D. R. Crooks, None..
W. M. Linehan, None.