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Clinical PET Imaging in Prostate Cancer

前列腺癌 医学 谷氨酸羧肽酶Ⅱ 骨闪烁照相术 磁共振成像 生物标志物 正电子发射断层摄影术 前列腺癌的治疗 闪烁照相术 前列腺 癌症 肿瘤科 核医学 放射科 内科学 化学 生物化学
作者
Kathryn Wallitt,Sairah R. Khan,Suraiya Dubash,Henry Tam,Sameer Khan,Tara Barwick
出处
期刊:Radiographics [Radiological Society of North America]
卷期号:37 (5): 1512-1536 被引量:109
标识
DOI:10.1148/rg.2017170035
摘要

Prostate cancer is the second most common cancer in men worldwide, with a wide spectrum of biologic behavior ranging from indolent low-risk disease to highly aggressive castration-resistant prostate cancer. Conventional imaging with computed tomography, magnetic resonance imaging, and bone scintigraphy is limited for the detection of nodal disease and distant bone metastases. In addition, advances in the available therapeutic options, both localized and systemic, drive the requirement for precise diagnostic and prognostic tools to refine the individual therapeutic approach at various times in the management of patients with prostate cancer. Positron emission tomography (PET) has a rapidly evolving role in the assessment of prostate cancer, particularly in the scenario of biochemical relapse. Fluorine 18 (18F) fluorodeoxyglucose, the most widely available PET tracer, has limitations, particularly in indolent prostate cancer. In the past decade, several PET tracers with specific molecular targets have reached the clinical domain. These tracers include 18F–sodium fluoride, which is a bone-specific biomarker of osteoblastic activity; 18F-choline and carbon 11–choline, which are directed at cell membrane metabolism; gallium 68–prostate-specific membrane antigen ligands; and, more recently, an amino acid analog, 18F-fluciclovine (anti-1-amino-3-18F-fluorocyclobutane-1-carboxylic acid; also known as FACBC), which is also directed at cell membrane turnover. The mechanisms of actions of the clinically available PET tracers are reviewed, as well as their role in the imaging of prostate cancer with reference to relevant guidelines and the technical and imaging pearls and pitfalls of these tracers. ©RSNA, 2017 An earlier incorrect version of this article appeared online. This article was corrected on October 2, 2017.
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