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A modular approach to intensity-modulated arc therapy optimization with noncoplanar trajectories.

Abstract
Utilizing noncoplanar beam angles in volumetric modulated arc therapy (VMAT) has the potential to combine the benefits of arc therapy, such as short treatment times, with the benefits of noncoplanar intensity modulated radiotherapy (IMRT) plans, such as improved organ sparing. Recently, vendors introduced treatment machines that allow for simultaneous couch and gantry motion during beam delivery to make noncoplanar VMAT treatments possible. Our aim is to provide a reliable optimization method for noncoplanar isocentric arc therapy plan optimization. The proposed solution is modular in the sense that it can incorporate different existing beam angle selection and coplanar arc therapy optimization methods. Treatment planning is performed in three steps. First, a number of promising noncoplanar beam directions are selected using an iterative beam selection heuristic; these beams serve as anchor points of the arc therapy trajectory. In the second step, continuous gantry/couch angle trajectories are optimized using a simple combinatorial optimization model to define a beam trajectory that efficiently visits each of the anchor points. Treatment time is controlled by limiting the time the beam needs to trace the prescribed trajectory. In the third and final step, an optimal arc therapy plan is found along the prescribed beam trajectory. In principle any existing arc therapy optimization method could be incorporated into this step; for this work we use a sliding window VMAT algorithm. The approach is demonstrated using two particularly challenging cases. The first one is a lung SBRT patient whose planning goals could not be satisfied with fewer than nine noncoplanar IMRT fields when the patient was treated in the clinic. The second one is a brain tumor patient, where the target volume overlaps with the optic nerves and the chiasm and it is directly adjacent to the brainstem. Both cases illustrate that the large number of angles utilized by isocentric noncoplanar VMAT plans can help improve dose conformity, homogeneity, and organ sparing simultaneously using the same beam trajectory length and delivery time as a coplanar VMAT plan.
AuthorsDávid Papp, Thomas Bortfeld, Jan Unkelbach
JournalPhysics in medicine and biology (Phys Med Biol) Vol. 60 Issue 13 Pg. 5179-98 (Jul 07 2015) ISSN: 1361-6560 [Electronic] England
PMID26083759 (Publication Type: Journal Article, Research Support, Non-U.S. Gov't)
Topics
  • Algorithms
  • Glioblastoma (surgery)
  • Humans
  • Lung Neoplasms (surgery)
  • Radiosurgery (methods, standards)
  • Radiotherapy Dosage
  • Radiotherapy Planning, Computer-Assisted (methods)
  • Radiotherapy, Intensity-Modulated (methods, standards)

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