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Revealing the underlying mechanism of microbeam radiation therapy with low energy Monte Carlo simulations

机译:揭示微观放射治疗低能量蒙特卡罗模拟的潜在机制

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Microbeam radiation therapy (MRT) is a new experimental oncological modality, intended for the treatment of inoperable brain tumours, particularly in difficult cases where conventional radiation therapy can cause irreversible damage. MRT consists of an array of highly collimated, quasi-parallel x-ray microbeams aimed at the tumour tissue, delivering high dose within the beam path and low doses in regions between the beams. For reasons still not fully understood, healthy tissue exposed to the microbeam array is able to regenerate while tumour volumes are significantly reduced. Low energy Monte Carlo radiative transport simulations provide new insight into understanding the underlying mechanisms of MRT. In particular, predicting the ionisation cluster distribution, which is a significant cause of lethal damage to cells, would provide insight into the biological responses. Geant4-DNA was used to model an x-ray microbeam of width 20 μm in liquid water. Secondary electrons, predominately responsible for ionisation clustering, were tracked to predict damage to cells within and adjacent to the beams. We find that higher energy beams (100 keV) produce less secondary electrons in the regions outside the beam than low energy beams (30-50 keV).
机译:Microbeam放射治疗(MRT)是一种新的实验性肿瘤态,用于治疗脑肿瘤不可操作的脑肿瘤,特别是在常规放射治疗可能导致不可逆的损伤的困难情况下。 MRT由朝向肿瘤组织的高度准直,准平行的X射线微观阵列组成,在梁路径内输送高剂量,在梁之间的区域中提供低剂量。由于尚未完全理解,暴露于微观阵列的健康组织能够再生,而肿瘤体积显着降低。低能量蒙特卡罗辐射运输模拟为了解MRT的潜在机制提供了新的洞察力。特别地,预测电离聚类分布,这是对细胞造成致命损伤的显着原因,将提供对生物反应的洞察力。 GEANT4-DNA用于在液态水中模拟宽度20μm的X射线微观。跟踪主要负责电离聚类的二次电子,以预测梁内部和横梁内的细胞损坏。我们发现较高的能量梁(100keV)在光束外的区域中产生的较少的二次电子,而不是低能量束(30-50keV)。

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