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Novel intraoperative radiotherapy utilizing prefabricated custom three-dimensionally printed high-dose-rate applicators.

作者信息

Imber Brandon S, Wolden Suzanne L, Stambuk Hilda E, Matros Evan, Wexler Leonard H, Drew Alexander S, Rosen Evan B, Ganly Ian, Cohen Gil'ad N, Damato Antonio L

机构信息

Department of Radiation Oncology, Memorial Sloan Kettering Cancer Center, New York, NY.

Department of Radiation Oncology, Memorial Sloan Kettering Cancer Center, New York, NY.

出版信息

Brachytherapy. 2019 May-Jun;18(3):277-284. doi: 10.1016/j.brachy.2019.01.012. Epub 2019 Feb 22.

Abstract

BACKGROUND

Intraoperative radiotherapy (IORT) is an effective strategy for the delivery of high doses of radiotherapy to a residual tumor or resection cavity with relative sparing of nearby healthy tissues. This strategy is an important component of the multimodality management of pediatric soft tissue sarcomas, particularly in cases where patients have received prior courses of external beam radiotherapy.

PURPOSE

Tumor beds with significant topographic irregularity remain a therapeutic challenge because existing IORT technologies are typically most reliable with flat surfaces. To address this limitation, we have developed a novel strategy to create custom, prefabricated high-dose-rate (HDR)-IORT applicators designed to match the shape of an anticipated surgical cavity.

METHODS AND MATERIALS

Silastic applicators are constructed using three-dimensional (3D) printing and are derived from volumetric segmentation of preoperative imaging.

RESULTS

HDR preplanning with the applicators improves dosimetric accuracy and minimizes incremental operative time. In this report, we describe the fabrication process for the 3D-printed applicators and detail our experience utilizing this strategy in two pediatric patients who underwent HDR-IORT as part of complex base of skull sarcoma resections.

CONCLUSIONS

Early experience suggests that usage of the custom applicators is feasible, versatile for a variety of clinical situations, and enables the uniform delivery of high superficial doses of radiotherapy to irregularly shaped surgical cavities.

摘要

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