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Towards bridging non-ionizing, ultra intense, laser radiation and ionizing radiation in cancer therapy

机译:促进癌症治疗中的非电离,超强度,激光辐射和电离辐射

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In oncology, cancer radiotherapy is a well-established therapeutic technique for more than 100 years and, worldwide, about two-thirds of all cancer patients will undergo conventional X-rays or gamma-rays therapy, as monotherapy or as part of their treatment, to destroy tumor cells by damaging their DNA. As the high energy electromagnetic waves based radiotherapy is not equally effective in all types and location of cancerous tumors, radiotherapy using accelerator based hadron beams is a well-established alternative, especially for deep-placed tumors, as a result of the well-known Bragg peak phenomenon. External proton beam radiation therapy is most commonly used in the treatment of pediatric, central nervous system and intraocular cancers. To overcome the major obstacle of the very expensive proton production facilities (through accelerators) in building of proton cancer treatment medical centers, the use of high-power lasers for particle radiation production was proposed. The recent development of lasers with ultrashort pulses (e.g. with pulse lengths around 30 fs) resulted in particle acceleration from the rear side of a laser-irradiated thin foil, based on their unique properties and laser-matter interaction mechanisms. In this review work, we aim to present the progress toward laser-driven radiotherapy, as well as to discuss if and how the radiobiological effectiveness of particle radiation generated by lasers differs from that provided by other conventional techniques. We will discuss the expectations and limitations in anti-cancer laser-driven proton therapy, reported in literature over the last decade. In the framework of the national project HELLAS-CH, we will present some of the preliminary efforts on the combined photodynamic and ionizing radiation action, with ultra-fast laser pulses, on tissue simulators and biological samples.
机译:在肿瘤学中,癌症放射疗法是一种熟悉的治疗技术,超过100年,全球大约三分之二的癌症患者将经过常规的X射线或γ射线治疗,作为单药治疗或作为其治疗的一部分,通过损害他们的DNA来破坏肿瘤细胞。由于基于高能电磁波的放射疗法在癌症肿瘤的所有类型和位置同样有效,因此使用基于加速器的强子梁的放射疗法是一种良好的替代方案,特别是对于众所周知的布拉格,特别是对于深度放置的肿瘤峰值现象。外部质子束辐射治疗最常用于治疗儿科,中枢神经系统和眼内癌症。为了克服价格在质子癌症处理医疗中心的建设中,克服了非常昂贵的质子生产设施(通过加速器)的主要障碍,提出了对粒子辐射产生的高功率激光器。基于其独特的性质和激光物质相互作用机制,最近具有超短脉冲的激光器(例如,脉冲长度约为30fs的脉冲长度)导致粒子加速度,导致激光照射薄箔的后侧。在这篇审查工作中,我们的目标是展示激光驱动放射治疗的进展,以及讨论激光器产生的粒子辐射的放射性效能如何与其他常规技术提供的不同。我们将在过去十年中讨论抗癌激光驱动质子疗法的期望和局限性。在国家项目Hellas-Ch的框架中,我们将在组织模拟器和生物样品上提出具有超快速激光脉冲的组合光动力和电离辐射作用的一些初步努力。

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