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Technological progress in radiation therapy for brain tumors

机译:脑肿瘤放射治疗技术进展

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摘要

To achieve a good therapeutic ratio the radiation dose to the tumor should be as high as possible with the lowest possible dose to the surrounding normal tissue. This is especially the case for brain tumors. Technological ad- vancements in diagnostic imaging, dose calculations, and radiation delivery systems, combined with a better un- derstanding of the pathophysiology of brain tumors have led to improvements in the therapeutic results. The widely used technology of delivering 3-D conformal therapy with photon beams (gamma rays) produced by Li-near Accelerators has progressed into the use of Intensity modulated radiation therapy (IMRT). Particle beams have been used for several decades for radiotherapy because of their favorable depth dose characteristics. The introduction of clinically dedicated proton beam therapy facilities has improved the access for cancer patients to this treatment. Proton therapy is of particular interest for pediatric malignancies. These technical improvements are further enhanced by the evolution in tumor physiology imaging which allows for improved delineation of the tumor. This in turn opens the potential to adjust the radiation dose to maximize the radiobiological effects. The advances in both imaging and radiation therapy delivery will be discussed.
机译:为了达到良好的治疗率,对肿瘤的辐射剂量应尽可能高,而对周围正常组织的辐射剂量应尽可能低。对于脑肿瘤尤其如此。诊断成像,剂量计算和放射传输系统中的技术进步,加上对脑肿瘤病理生理学的更好理解,已导致治疗结果的改善。 Li-ear Accelerators产生的使用光子束(γ射线)进行3-D保形疗法的广泛使用的技术已经发展到强度调制放射疗法(IMRT)的使用。粒子束由于其良好的深度剂量特性已被用于放射治疗数十年。临床专用质子束治疗设备的引入改善了癌症患者接受该治疗的机会。质子治疗对于小儿恶性肿瘤特别重要。这些技术改进通过肿瘤生理学成像的发展而得到进一步增强,这可以改善肿瘤的轮廓。反过来,这打开了调节辐射剂量以最大化放射生物学效应的潜力。将讨论成像和放射治疗的进展。

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