PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
May 11, 2026International Journal of Particle Therapy0 citationsOpen Access

BED-optimized multi-IMPT: a biologically comparable alternative to proton ARC therapy

View Full Paper
NSNimita ShindeYZYanan ZhuWWWei Wang

Key Points

  • The aim is to develop a multiple IMPT framework that achieves biologically comparable performance to proton ARC by incorporating fractionation effects.
  • Developed a biologically optimized multiple IMPT (multi-IMPT) framework that factors in the fractionation effect during treatment planning.
  • Evaluated the multi-IMPT approach in terms of BED objectives compared to traditional ARC and IMPT methods.
  • Utilized iterative convex relaxation and alternating direction method for solving the BED-based optimization problem.
  • Multi-IMPT provided similar plan quality to ARC, with better organ at risk (OAR) sparing and slightly enhanced target dose coverage for prostate cases.
  • It showed comparable dose distribution for lung and slightly poorer dose coverage for brain cases.
  • For head-and-neck cases, multi-IMPT achieved better dose coverage but resulted in slightly higher BED in OAR.

Abstract

Proton spot-scanning arc therapy (ARC) is an emerging technique that can enhance high-dose conformity to targets compared with standard intensity-modulated proton therapy (IMPT). Although proton ARC is highly desirable, it is not yet clinically available. Multiple IMPT plans delivered over different fractions and optimized simultaneously provide a practical means to approximate ARC plan quality. However, existing multiple IMPT approaches are not optimized to be biologically comparable to proton ARC because they neglect the fractionation effect during treatment planning. This work proposes a biologically optimized multiple IMPT (multi-IMPT) framework that achieves comparable performance to proton ARC in terms of the biologically effective dose (BED). This is achieved through direct optimization of BED by explicitly incorporating the fractionation effect during planning, thereby ensuring biological comparability between multi-IMPT and proton ARC treatments. The proposed multi-IMPT method utilizes a different subset of limited number of beam angles in each fraction for dose delivery. Due to the different dose delivered to organs at risk (OAR) in each fraction, biologically effective dose (BED) delivered to OAR and the physical dose delivered to target is optimized in each fraction. The BED-based multi-IMPT inverse optimization problem is solved via iterative convex relaxation method and the alternating direction method of multipliers. The effectiveness of the proposed multi-IMPT method is evaluated in terms of BED objectives in comparison with ARC and IMPT. Multi-IMPT provided similar plan quality with ARC. For example, multi-IMPT provided better OAR sparing and slightly better target dose coverage for the prostate case; similar dose distribution for the lung case; slightly worse dose coverage for the brain case; better dose coverage but slightly higher BED in OAR for the head-and-neck case. A multi-IMPT approach is proposed that delivers ARC-comparable plan quality under the evaluated conditions in terms of biologically effective dose.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Shinde et al. (2026) studied this question.

synapsesocial.com/papers/6a0171ce3a9f334c28271d05https://doi.org/10.1016/j.ijpt.2026.101321
Ask AI
Helpful
Bookmark
Share
View Full Paper