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首页> 外文期刊>Medical Physics >Depth absorbed dose and LET distributions of therapeutic 1H, 4He, 7Li, and 12C beams.
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Depth absorbed dose and LET distributions of therapeutic 1H, 4He, 7Li, and 12C beams.

机译:治疗性1H,4He,7Li和12C光束的深度吸收剂量和LET分布。

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The depth absorbed dose and LET (linear energy transfer) distribution of different ions of clinical interest such as 1H, 4He, 7Li, and 12C ions have been investigated using the Monte Carlo code SHIELD-HIT. The energies of the projectiles correspond to ranges in water and soft tissue of approximately 260 mm. The depth dose distributions of the primary particles and their secondaries have been calculated and separated with regard to their low and high LET components. A LET value below 10 eVm can generally be regarded as low LET and sparsely ionizing like electrons and photons. The high LET region may be assumed to start at 20 eVm where on average two double-strand breaks can be formed when crossing the periphery of a nucleosome, even though strictly speaking the LET limits are not sharp and ought to vary with the charge and mass of the ion. At the Bragg peak of a monoenergetic high energy proton beam, less than 3% of the total absorbed dose is comprised of high LET components above 20 eVm. The highLET contribution to the total absorbed dose in the Bragg peak is significantly larger with increasing ion charge as a natural result of higher stopping power and lower range straggling. The fact that the range straggling and multiple scattering are reduced by half from hydrogen to helium increases the possibility to accurately deposit only the high LET component in the tumor with negligible dose to organs at risk. Therefore, the lateral penumbra is significantly improved and the higher dose gradients of 7Li and 12C ions both longitudinally and laterally will be of major advantage in biological optimized radiation therapy. With increasing charge of the ion, the high LET absorbed dose in the beam entrance and the plateau regions where healthy normal tissues are generally located is also increased. The dose distribution of the high LET components in the 7Li beam is only located around the Bragg peak, characterized by a Gaussian-type distribution. Furthermore, the secondary particles produced by high energy 7Li ions in tissuelike media have mainly low LET character both in front of and beyond the Bragg peak.
机译:已使用蒙特卡罗代码SHIELD-HIT研究了临床上感兴趣的不同离子(例如1H,4He,7Li和12C离子)的深度吸收剂量和LET(线性能量转移)分布。弹丸的能量对应于水和软组织中大约260毫米的范围。已计算出初级粒子及其次级粒子的深度剂量分布,并根据其低和高LET成分进行了分离。低于10 eV / nm的LET值通常可以视为低LET,并且像电子和光子一样稀疏地电离。高LET区域可假定始于20 eV / nm,在该区域中,穿过核小体的外围平均可形成两个双链断裂,即使严格说来,LET限并不严格,且应随电荷而变化和离子的质量。在单能高能质子束的布拉格峰,少于总吸收剂量的3%由高于20 eV / nm的高LET成分组成。随着离子电荷的增加,高LET对Bragg峰中总吸收剂量的高贡献明显更大,这是更高的停止能力和更低的范围散乱的自然结果。散乱的范围和多重散射从氢到氦减少了一半的事实增加了将高LET成分准确地沉积在肿瘤中的可能性,而对危险器官的剂量却可以忽略不计。因此,明显改善了外侧半影,并且在生物优化放射治疗中,纵向和横向更高的7Li和12C离子剂量梯度将具有重大优势。随着离子电荷的增加,通常在健康的正常组织所在的射束入口和高原区域中的高LET吸收剂量也增加了。 7Li光束中高LET成分的剂量分布仅位于布拉格峰附近,其特征在于高斯型分布。此外,由高能7Li离子在类组织介质中产生的次级粒子在布拉格峰的前面和之后都具有较低的LET特性。

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