利用超极化琥珀酸盐实现癌症的实时代谢分析。

Journal of molecular imaging & dynamics Pub Date : 2016-06-01 Epub Date: 2016-01-11 DOI:10.4172/2155-9937.1000123
Niki M Zacharias, Christopher R McCullough, Shawn Wagner, Napapon Sailasuta, Henry R Chan, Youngbok Lee, Jingzhe Hu, William H Perman, Cameron Henneberg, Brian D Ross, Pratip Bhattacharya
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引用次数: 14

摘要

目的:产能线粒体克雷布斯循环在许多癌症和其他疾病中被抑制或突变。在大多数细胞中,氧化磷酸化的克雷布斯循环产生细胞中大约90%的三磷酸腺苷。我们设计并超极化了碳-13标记琥珀酸盐(SUC)及其衍生物琥珀酸二乙酯(DES),在癌症动物模型中实时检测克雷布斯循环。方法:利用对氢诱导极化(PHIP),我们通过加氢各自的富马酸前体生成超极化的SUC和DES。在乳腺癌(4T1)、肾癌(RENCA)、结肠癌(CT26)、淋巴瘤NSO和淋巴瘤A20五种异体肿瘤移植动物模型中研究DES和SUC的代谢。结果:动物尾静脉注射后5 s内可观察到DES和SUC在Krebs循环中的代谢情况,分别为超极化程度(8±2%)和超极化程度(2.1±0.6%)。用13C FISP显像观察化合物的生物分布。我们观察到两种化合物在体内和体外不同细胞类型中摄取和转化的显著差异。结论:利用超极化DES和超极化SUC,我们能够满足高极化、较长的T1值、低毒性和高水溶性等对一种可用的体内代谢成像化合物的要求。然而,琥珀酸盐及其衍生物DES可以被RENCA代谢,而不被其他癌症模型代谢。我们的研究结果强调了癌细胞的异质性和细胞摄取在超极化代谢光谱中的作用。
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Towards Real-time Metabolic Profiling of Cancer with Hyperpolarized Succinate.

Purpose: The energy-yielding mitochondrial Krebs cycle has been shown in many cancers and other diseases to be inhibited or mutated. In most cells, the Krebs cycle with oxidative phosphorylation generates approximately 90% of the adenosine triphosphate in the cell. We designed and hyperpolarized carbon-13 labeled succinate (SUC) and its derivative diethyl succinate (DES) to interrogate the Krebs cycle in real-time in cancer animal models.

Procedures: Using Parahydrogen Induced Polarization (PHIP), we generated hyperpolarized SUC and DES by hydrogenating their respective fumarate precursors. DES and SUC metabolism was studied in five cancer allograft animal models: breast (4T1), Renal Cell Carcinoma (RENCA), colon (CT26), lymphoma NSO, and lymphoma A20.

Results: The extent of hyperpolarization was 8 ± 2% for SUC and 2.1 ± 0.6% for DES. The metabolism of DES and SUC in the Krebs cycle could be followed in animals 5 s after tail vein injection. The biodistribution of the compounds was observed using 13C FISP imaging. We observed significant differences in uptake and conversion of both compounds in different cell types both in vivo and in vitro.

Conclusion: With hyperpolarized DES and SUC, we are able to meet many of the requirements for a useable in vivo metabolic imaging compound - high polarization, relatively long T1 values, low toxicity and high water solubility. However, succinate and its derivative DES are metabolized robustly by RENCA but not by the other cancer models. Our results underscore the heterogeneity of cancer cells and the role cellular uptake plays in hyperpolarized metabolic spectroscopy.

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