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The Radiobiological Effects of Proton Beam Therapy: Impact on DNA Damage and Repair

机译:质子束治疗的放射生物学效应:对DNA损伤和修复的影响

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摘要

Proton beam therapy (PBT) offers significant benefit over conventional (photon) radiotherapy for the treatment of a number of different human cancers, largely due to the physical characteristics. In particular, the low entrance dose and maximum energy deposition in depth at a well-defined region, the Bragg peak, can spare irradiation of proximal healthy tissues and organs at risk when compared to conventional radiotherapy using high-energy photons. However, there are still biological uncertainties reflected in the relative biological effectiveness that varies along the track of the proton beam as a consequence of the increases in linear energy transfer (LET). Furthermore, the spectrum of DNA damage induced by protons, particularly the generation of complex DNA damage (CDD) at high-LET regions of the distal edge of the Bragg peak, and the specific DNA repair pathways dependent on their repair are not entirely understood. This knowledge is essential in understanding the biological impact of protons on tumor cells, and ultimately in devising optimal therapeutic strategies employing PBT for greater clinical impact and patient benefit. Here, we provide an up-to-date review on the radiobiological effects of PBT versus photon radiotherapy in cells, particularly in the context of DNA damage. We also review the DNA repair pathways that are essential in the cellular response to PBT, with a specific focus on the signaling and processing of CDD induced by high-LET protons.
机译:质子束疗法(PBT)在治疗多种不同的人类癌症方面,比常规(光子)放射疗法具有明显优势,这在很大程度上是由于物理特性。特别是,与使用高能光子的常规放射疗法相比,在确定的区域(布拉格峰)处的低入射剂量和最大深度的能量沉积可避免对处于危险中的近端健康组织和器官进行辐射。但是,由于线性能量转移(LET)的增加,沿质子束轨迹变化的相对生物学有效性仍然反映出生物学不确定性。此外,由质子引起的DNA损伤的光谱,特别是在布拉格峰远侧边缘的高LET区域的复杂DNA损伤(CDD)的产生,以及取决于其修复的特定DNA修复途径尚不完全清楚。该知识对于理解质子对肿瘤细胞的生物学影响以及最终设计出采用PBT的最佳治疗策略以产生更大的临床影响和患者利益至关重要。在这里,我们提供有关PBT与光子放射疗法在细胞中的放射生物学效应的最新综述,尤其是在DNA损伤的情况下。我们还审查了对PBT的细胞应答中必不可少的DNA修复途径,特别关注由高LET质子诱导的CDD的信号传导和加工。

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