Dale Roger, Carabe-Fernandez Alejandro
Radiation Physics and Radiobiology, Charing Cross Hospital, London, UK.
Cancer Biother Radiopharm. 2005 Feb;20(1):47-51. doi: 10.1089/cbr.2005.20.47.
The linear-quadratic (LQ) model of radiobiological effect is well established in conventional, i.e., external beam, radiotherapy. Because the model is derived from sound biophysical principles, it is also emerging as the standard formalism for assessing biological responses for the whole range of radiotherapy treatments. A central feature of LQ methodology is the quantity known as the biologically effective dose (BED), which may be used to quantify the radiobiological impact of a treatment on both tumors and normal tissues. The BEDs commonly associated with conventional therapy may thus be compared to those expected from novel radiotherapy treatments, such as targeted radionuclide therapy. This approach also provides a mechanism for designing targeted treatments which are therapeutically equivalent to external beam treatments. In this paper the LQ methodology is outlined and worked examples are provided which demonstrate the tentative link between targeted radiotherapy doses and those used in conventional radiotherapy. The incorporation of an allowance for relative biological effectiveness (RBE) effects is also discussed. The complexity of the subject and the potentially large number of variables does place a restriction on overall predictive accuracy and the necessary caveats are outlined.
放射生物学效应的线性二次(LQ)模型在传统的即外照射放疗中已得到充分确立。由于该模型源自可靠的生物物理原理,它也正成为评估全范围放疗治疗生物学反应的标准形式。LQ方法的一个核心特征是被称为生物有效剂量(BED)的量,它可用于量化治疗对肿瘤和正常组织的放射生物学影响。因此,可将通常与传统治疗相关的BED与新型放疗治疗(如靶向放射性核素治疗)预期的BED进行比较。这种方法还为设计与外照射治疗等效的靶向治疗提供了一种机制。本文概述了LQ方法,并提供了实例,展示了靶向放疗剂量与传统放疗中使用的剂量之间的初步联系。还讨论了纳入相对生物效应(RBE)效应的考量。该主题的复杂性以及潜在的大量变量确实对整体预测准确性造成了限制,并概述了必要的注意事项。