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首页> 外文期刊>Cancer & Metabolism >Metabolic characterization of isocitrate dehydrogenase (IDH) mutant and IDH wildtype gliomaspheres uncovers cell type-specific vulnerabilities
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Metabolic characterization of isocitrate dehydrogenase (IDH) mutant and IDH wildtype gliomaspheres uncovers cell type-specific vulnerabilities

机译:异柠檬酸脱氢酶(IDH)突变体和IDH野生型神经胶质瘤的代谢特征揭示了细胞类型特异性的脆弱性

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Background There is considerable interest in defining the metabolic abnormalities of IDH mutant tumors to exploit for therapy. While most studies have attempted to discern function by using cell lines transduced with exogenous IDH mutant enzyme, in this study, we perform unbiased metabolomics to discover metabolic differences between a cohort of patient-derived IDH1 mutant and IDH wildtype gliomaspheres. Methods Using both our own microarray and the TCGA datasets, we performed KEGG analysis to define pathways differentially enriched in IDH1 mutant and IDH wildtype cells and tumors. Liquid chromatography coupled to mass spectrometry analysis with labeled glucose and deoxycytidine tracers was used to determine differences in overall cellular metabolism and nucleotide synthesis. Radiation-induced DNA damage and repair capacity was assessed using a comet assay. Differences between endogenous IDH1 mutant metabolism and that of IDH wildtype cells transduced with the IDH1 (R132H) mutation were also investigated. Results Our KEGG analysis revealed that IDH wildtype cells were enriched for pathways involved in de novo nucleotide synthesis, while IDH1 mutant cells were enriched for pathways involved in DNA repair. LC-MS analysis with fully labeled 13C-glucose revealed distinct labeling patterns between IDH1 mutant and wildtype cells. Additional LC-MS tracing experiments confirmed increased de novo nucleotide synthesis in IDH wildtype cells relative to IDH1 mutant cells. Endogenous IDH1 mutant cultures incurred less DNA damage than IDH wildtype cultures and sustained better overall growth following X-ray radiation. Overexpression of mutant IDH1 in a wildtype line did not reproduce the range of metabolic differences observed in lines expressing endogenous mutations, but resulted in depletion of glutamine and TCA cycle intermediates, an increase in DNA damage following radiation, and a rise in intracellular ROS. Conclusions These results demonstrate that IDH1 mutant and IDH wildtype cells are easily distinguishable metabolically by analyzing expression profiles and glucose consumption. Our results also highlight important differences in nucleotide synthesis utilization and DNA repair capacity that could be exploited for therapy. Altogether, this study demonstrates that IDH1 mutant gliomas are a distinct subclass of glioma with a less malignant, but also therapy-resistant, metabolic profile that will likely require distinct modes of therapy.
机译:背景技术对定义IDH突变体肿瘤的代谢异常以用于治疗有相当大的兴趣。虽然大多数研究都试图通过使用外源IDH突变酶转导的细胞系来识别功能,但在这项研究中,我们进行了无偏代谢组学研究,以发现患者衍生的IDH1突变体和IDH野生型神经胶质瘤之间的代谢差异。方法使用我们自己的微阵列和TCGA数据集,我们进行了KEGG分析,以定义差异丰富IDH1突变体和IDH野生型细胞及肿瘤的途径。液相色谱结合质谱分析,使用标记的葡萄糖和脱氧胞苷示踪剂确定整体细胞代谢和核苷酸合成的差异。辐射诱导的DNA损伤和修复能力使用彗星试验评估。还研究了内源性IDH1突变体代谢与IDH1(R132H)突变转导的IDH野生型细胞之间的差异。结果我们的KEGG分析表明,IDH野生型细胞富含涉及从头核苷酸合成的途径,而IDH1突变型细胞富含涉及DNA修复的途径。完全标记的 13 C-葡萄糖的LC-MS分析显示IDH1突变体与野生型细胞之间的标记方式不同。额外的LC-MS追踪实验证实,相对于IDH1突变型细胞,IDH野生型细胞中从头核苷酸合成增加。内源性IDH1突变体培养物比IDH野生型培养物遭受的DNA损伤更少,并且在X射线照射后可保持更好的总体生长。在野生型品系中突变IDH1的过表达不能重现表达内源突变的品系中代谢差异的范围,但会导致谷氨酰胺和TCA循环中间体的消耗,辐射后DNA损伤的增加以及细胞内ROS的升高。结论这些结果表明,通过分析表达谱和葡萄糖消耗,IDH1突变体和IDH野生型细胞很容易在代谢上进行区分。我们的研究结果还突出了核苷酸合成利用和DNA修复能力的重要差异,这些差异可用于治疗。总而言之,这项研究表明IDH1突变型神经胶质瘤是神经胶质瘤的一个独特亚类,其恶性程度较低,但对治疗的抗性代谢特征可能需要不同的治疗方式。

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