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Relative biological damage in and out of field of 6, 10 and 18 MV clinical photon beams

机译:进入,离开6、10和18 MV临床光子束的相对生物学损伤

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The lower energy of scattered radiation in and out of a megavoltage (MV) photon beam suggests that relative biological damage (RBD) may change from in-to out-of-field regions for unit absorbed dose. Because of high linear energy transfer (LET) and potential of causing severe damage to the DNA, low-energy (10 eV-1 keV) slowing down electrons should be included in radiation biological damage calculations. In this study RBD was calculated in and out of field of 6, 10 and 18MV clinical photon beams including low-energy slowing down electrons in the track length estimated method. Electron spectra at energies higher than 2 keV were collected in a water phantom at different depths and off-axis points by using the MCNP code. A new extrapolation method was used to estimate the electron spectra at energies lower than 2 keV. The obtained spectra at energies lower than 2 keV merged with spectra at energies higher than 2 keV by using continuity of the spectra. These spectra were used as an input to a validated microdosimetric Monte Carlo (MC) code, MC damage simulation (MCDS), to calculate the RBD of induced DSB in DNA at points in and out of the primary radiation field under fully aerobic (100% O-2) and anoxic (0% O-2) conditions. There was an observable difference in the energy spectra for electrons for points in the primary radiation field and those points out of field. RBD had maximum variation, 11% in 6MV photons at field size of 20 x 20 cm(2). This variation was less than 11% for 10 and 18MV photons and field sizes smaller than 20 x 20 cm(2). Our simulations also showed that under the anoxic condition, RBD increases up to 6% for 6 and 10MV photons and the 20 x 20 cm(2) field size. This work supports the hypothesis that in megavoltage treatments out-of-field radiation quality can vary enough to have an impact on RBD per unit dose and that this may play a role as the radiation therapy community explores biological optimization as a tool to assist treatment planning.
机译:兆伏(MV)光子束内外的散射辐射能量较低,表明单位吸收剂量的相对生物损伤(RBD)可能从场内变为场外。由于高的线性能量转移(LET)和对DNA造成严重破坏的可能性,因此在辐射生物破坏计算中应包括使电子减速的低能量(10 eV-1 keV)。在这项研究中,RBD是在6、10和18MV临床光子束的场内和场外计算得出的,其中包括低能量减速电子,采用轨道长度估算方法。通过使用MCNP代码,在水模型中以不同的深度和离轴点收集了能量高于2 keV的电子光谱。一种新的外推方法用于估计能量低于2 keV的电子光谱。通过使用光谱的连续性,获得的能量低于2 keV的光谱与能量高于2 keV的光谱合并。这些光谱用作经过验证的微剂量蒙特卡罗(MC)代码,MC损伤模拟(MCDS)的输入,以计算完全有氧(100%)时在初级辐射场内外的点处DNA中诱导的DSB的RBD。 O-2)和缺氧(0%O-2)条件。对于一次辐射场中的点和场外的点,电子的能谱存在明显差异。 RBD具有最大变化,在6MV光子中,场大小为20 x 20 cm(2)时,变化为11%。对于10和18MV光子,场大小小于20 x 20 cm(2),这种变化小于11%。我们的模拟还显示,在缺氧条件下,对于6和10MV光子,以及20 x 20 cm(2)的场大小,RBD增大高达6%。这项工作支持以下假设:在大电压治疗中,场外辐射质量可能会发生变化,足以影响每单位剂量的RBD,这可能会在放射治疗界将生物学优化探索为辅助治疗计划的工具时发挥作用。

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