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Molecular Imaging of the Tumor Microenvironment Reveals the Relationship between Tumor Oxygenation, Glucose Uptake, and Glycolysis in Pancreatic Ductal Adenocarcinoma

糖酵解 肿瘤微环境 缺氧(环境) 胰腺癌 磁共振成像 肿瘤缺氧 癌症 充氧 胰腺导管腺癌 癌症研究 腺癌 病理 医学 化学 内分泌学 内科学 新陈代谢 氧气 放射科 放射治疗 有机化学
作者
Kazutoshi Yamamoto,Jeffrey Brender,Tomohiro Seki,Shun Kishimoto,Nobu Oshima,Rajani Choudhuri,Stephen Adler,Elaine M. Jagoda,Keita Saito,Nallathamby Devasahayam,Peter L. Choyke,James B. Mitchell,Murali C. Krishna
出处
期刊:Cancer Research [American Association for Cancer Research]
卷期号:80 (11): 2087-2093 被引量:34
标识
DOI:10.1158/0008-5472.can-19-0928
摘要

Abstract Molecular imaging approaches for metabolic and physiologic imaging of tumors have become important for treatment planning and response monitoring. However, the relationship between the physiologic and metabolic aspects of tumors is not fully understood. Here, we developed new hyperpolarized MRI and electron paramagnetic resonance imaging procedures that allow more direct assessment of tumor glycolysis and oxygenation status quantitatively. We investigated the spatial relationship between hypoxia, glucose uptake, and glycolysis in three human pancreatic ductal adenocarcinoma tumor xenografts with differing physiologic and metabolic characteristics. At the bulk tumor level, there was a strong positive correlation between 18F-FDG-PET and lactate production, while pO2 was inversely related to lactate production and 18F-2-fluoro-2-deoxy-D-glucose (18F-FDG) uptake. However, metabolism was not uniform throughout the tumors, and the whole tumor results masked different localizations that became apparent while imaging. 18F-FDG uptake negatively correlated with pO2 in the center of the tumor and positively correlated with pO2 on the periphery. In contrast to pO2 and 18F-FDG uptake, lactate dehydrogenase activity was distributed relatively evenly throughout the tumor. The heterogeneity revealed by each measure suggests a multimodal molecular imaging approach can improve tumor characterization, potentially leading to better prognostics in cancer treatment. Significance: Novel multimodal molecular imaging techniques reveal the potential of three interrelated imaging biomarkers to profile the tumor microenvironment and interrelationships of hypoxia, glucose uptake, and glycolysis.
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