High-LET charged particles: radiobiology and application for new approaches in radiotherapy

Strahlenther Onkol. 2023 Dec;199(12):1225-1241. doi: 10.1007/s00066-023-02158-7. Epub 2023 Oct 23.

Abstract

The number of patients treated with charged-particle radiotherapy as well as the number of treatment centers is increasing worldwide, particularly regarding protons. However, high-linear energy transfer (LET) particles, mainly carbon ions, are of special interest for application in radiotherapy, as their special physical features result in high precision and hence lower toxicity, and at the same time in increased efficiency in cell inactivation in the target region, i.e., the tumor. The radiobiology of high-LET particles differs with respect to DNA damage repair, cytogenetic damage, and cell death type, and their increased LET can tackle cells' resistance to hypoxia. Recent developments and perspectives, e.g., the return of high-LET particle therapy to the US with a center planned at Mayo clinics, the application of carbon ion radiotherapy using cost-reducing cyclotrons and the application of helium is foreseen to increase the interest in this type of radiotherapy. However, further preclinical research is needed to better understand the differential radiobiological mechanisms as opposed to photon radiotherapy, which will help to guide future clinical studies for optimal exploitation of high-LET particle therapy, in particular related to new concepts and innovative approaches. Herein, we summarize the basics and recent progress in high-LET particle radiobiology with a focus on carbon ions and discuss the implications of current knowledge for charged-particle radiotherapy. We emphasize the potential of high-LET particles with respect to immunogenicity and especially their combination with immunotherapy.

Keywords: Bragg peak; Carbon ions; Combined therapies; Immunogenicity; Relative biological effectiveness.

Publication types

  • Review

MeSH terms

  • Carbon / therapeutic use
  • Heavy Ion Radiotherapy* / methods
  • Humans
  • Ions
  • Linear Energy Transfer*
  • Radiobiology
  • Relative Biological Effectiveness

Substances

  • Ions
  • Carbon