Parodi Katia
a Department of Experimental Physics - Medical Physics , Ludwig-Maximilians-Universität München , Munich , Germany.
Int J Radiat Biol. 2018 Aug;94(8):752-755. doi: 10.1080/09553002.2018.1427904. Epub 2018 Jan 25.
Starting from the birth of high linear energy transfer (LET) radiotherapy in USA in the mid-1970s, the field has continuously evolved and to date over 20,000 patients have been treated with C ions worldwide. The purpose of this contribution is to review the advancements in clinical fractionated radiotherapy using high LET radiation in the last decades, with special focus on biological treatment planning. Along with technological developments for ion acceleration and beam delivery, progress in radiation biology and computational modeling has enabled a remarkable evolution in the planning capabilities of highly conformal, biologically optimized treatment with high LET radiation. In particular, recent efforts have provided the possibility of direct comparison between treatment plans obtained at different facilities with different biological models for the same ion species. This achievement represents an important step forward to gather better understanding of the remaining uncertainties in biological modeling and the impact of fractionation for optimal dose prescriptions, ultimately aiming to promote clinical exploitation of the anticipated, yet not fully demonstrated advantages of high LET-charged particles.
自20世纪70年代中期美国诞生高传能线密度(LET)放射治疗以来,该领域不断发展,迄今为止,全球已有超过20000名患者接受了碳离子治疗。本文旨在回顾过去几十年中使用高LET辐射进行临床分次放射治疗的进展,特别关注生物治疗计划。随着离子加速和束流传输技术的发展,放射生物学和计算建模的进步使得高LET辐射的高度适形、生物优化治疗的计划能力有了显著提升。特别是,最近的努力使得在不同设施中使用不同生物模型针对同一离子种类获得的治疗计划之间进行直接比较成为可能。这一成果代表了向前迈出的重要一步,有助于更好地理解生物建模中仍存在的不确定性以及分次治疗对最佳剂量处方的影响,最终目标是推动对高LET带电粒子预期但尚未完全证明的优势进行临床应用。