The Investigation Regarding the Dose Change due to the Heterogeneity of Prostate Cancer Treatment with IMRT

전립선암의 세기조절 방사선치료 시 불균질부에 의한 선량변화에 관한 고찰

  • Yoon, Il-Kyu (Department of Radiation Oncology, Seoul National University Hospital) ;
  • Park, Jang-Pil (Department of Radiation Oncology, Seoul National University Hospital) ;
  • Lee, Jae-Hee (Department of Radiation Oncology, Seoul National University Hospital) ;
  • Park, Heung-Deuk (Department of Radiation Oncology, Seoul National University Hospital)
  • 윤일규 (서울대학교병원 방사선종양학과) ;
  • 박장필 (서울대학교병원 방사선종양학과) ;
  • 이제희 (서울대학교병원 방사선종양학과) ;
  • 박흥득 (서울대학교병원 방사선종양학과)
  • Published : 2007.09.30

Abstract

Purpose: The pelvic phantom was fabricated in the following purposes: (1) Dose verification of IMRT plan using Eclipse planning computer, (2) to study the interface effect at the interface between rectal wall and air. The TLD can be inserted in the pelvic phantom to confirm the dose distribution as well as uncertainty at the interface. Materials and Methods: A pelvic phantom with the dimension of 30 cm diameter, 20 cm height and 20 cm thickness was fabricated to investigate the dose at the rectal wall. The phantom was filled with water and has many features like bladder, rectum, and prostate and seminal vesicle (SV). The rectum is made of 3 cm-dimater plastic pipe, and it cab be blocked by using a plug, and film can be inserted around the rectal wall. The phantom was scanned with Philips Brillance scanner and various organs such as prostate, SV, and rectal wall, and bladder wall were delineated. The treatment parameters used in this study are the same as those used in the protocols in the SNUH. TLD chips are inserted to the phantom to evaluate the dose distribution to the rectal wall (to simulate high dose gradient region), bladder wall and SV (to simulate the high dose region) and 2 spots in anterior surface (to simulate the low dose region). The TLD readings are compared with those of the planning computer (ECLIPSE, Varian, USA). Results: The target TLD doses represented as the prostate and SV show excellent agreements with the doses from the RTP within +/-3%. The rectal wall doses measured at the rectal wall are different from the those of the RTP by -11%. This is in literatures called as an interface effect. The underdosages at the rectal wall is independent of 3 heterogeneity correction algorithm in the Eclipse RTP. Also the low dose regions s represented as surface in this study were within +/-1%. Conclusion: The RTP estimate the dosage very accurately withihn +/-3% in the high dose (SV, or prostate) and low dose region (surface). However, the dosage at the rectal wall differed by as much as 11% (In literatures, the underdosage of 9$\sim$15% were reported). This range of errors occurs at the interface, for example, at the interface between lung and chest wall, or vocal cord. This interface effect is very important in clinical situations, for example, to estimate the NTCP (normal tissue complication probability) and to estimate the limitations of the current RTP system. Monte-carlo-based RTP will handle this issue correctly.

목 적: 본원에서 시행하고 있는 전립선암의 세기조절 방사선치료시 직장 내에 존재하는 불균질부에 의한 선량변화를 전산화 치료계획 선량과 자체 제작한 전립선암 환자형 골반 팬톰을 이용하여 측정한 선량을 비교하고자 한다. 대상 및 방법: 전립선암 환자형 골반 팬톰(타원형의 물 팬톰: $30\times20\times20cm^3$, 방광, 직장, 정낭을 묘사하는 팬톰)을 제작하였으며, 전산화단층촬영으로 3차원 영상을 획득하였다. 전산화치료계획장치(ECLIPSE, Varian, USA), 6 MV X선(Clinac 6EX, Varian, USA)을 이용하여 세기조절 방사선치료계획을 수립한 후, 전립선암 환자형 골반 팬톰을 이용하여 직장벽, 방광벽, 정낭 부위에 TLD를 삽입하고, 전산화치료계획 선량과 비교하였다. 결 과: 전산화치료계획에 의한 선량은 직장벽 100%, 방광벽 52%, 우측 정낭 86%, 좌측 정낭 87%, 표면 18%였으나, TLD로 측정 한 선량은 직장벽 89%, 방광벽 54%, 우측 정낭 85%, 좌측 정낭 84%, 표면 17%로 측정되었다. 직장벽은 11%, 방광벽은 2%, 우측 정낭은 1%, 좌측 정낭 3%, 표면 1%의 선량차이를 확인하였다. 결 론: 본원에서 개발한 전립선암 환자형 골반 팬톰으로 전산화치료계획에서 구현하는 불균질부 선량계산의 오차를 확인할 수 있었으며, 다양한 선량 측정 장치(TLD, film)를 이용하여 쉽고 간편하게 선량 검증을 할 수 있을 것으로 사료된다.

Keywords