초록
목 적: 두피 악성종양의 치료에 광자선을 사용할 때 필요한 Bolus 재질들의 단점으로 인하여 3D Printer용 헬멧형 bolus가 제작되고 있다. 하지만 사용되는 재질인 PLA은 조직등가물질에 비해 높은 밀도를 가지고 있으며 환자가 착용할 경우 불편한 점들이 발생한다. 이에 본 연구에서는 3D Printer를 이용한 M3 wax 헬멧을 제작하여 악성 두피종양을 치료하는 방법을 시도해 보고자 한다. 대상 및 방법: 헬멧형 M3 wax의 모델링을 위해 두부인체모형팬텀을 CT로 촬영해 DICOM file로 획득하고, 두피 위에 헬멧이 위치할 부위를 Helmet contour로 제작하였다. M3 Wax 헬멧의 제작은 paraffin wax를 녹이고, 산화마그네슘, 탄산칼슘을 섞어 용해시킨 후 PLA 3D 헬멧의 내부에 넣고 표면의 PLA 3D 헬멧을 제거하였다. 치료계획은 총 10 Portal의 Intensity-Modulated Radiation Therapy(IMRT)로 세웠으며, 치료선량은 200 cGy로 eclipse의 Analytical Anisotropic Algorithm(AAA)를 사용하였다. 그 후 EBT3 film과 Mosfet(Metal Oxide Semiconductor Field Effect Transistor: USA)를 이용해 선량검증을 실시하였으며, CT 모의치료실과 동일한 조건으로 두부인체모형팬텀을 재현해 IMRT Plan을 측정하였다. 결 과: CT상에서 측정된 Bolus의 Hounsfield unit(HU)는 $52{\pm}37.1$으로 나타났다. M3 wax bolus 측정점 A, B, C에서 TPS의 선량은 186.6 cGy, 193.2 cGy, 190.6 cGy으로 확인되었고, Mostet으로 3회 측정한 선량은 $179.66{\pm}2.62cGy$, $184.33{\pm}1.24cGy$, $195.33{\pm}1.69cGy$, 오차율은 -3.71 %, -4.59 %, +2.48 %였다. EBT3 Film으로 측정된 선량은 $182.00{\pm}1.63cGy$, $193.66{\pm}2.05cGy$, $196{\pm}2.16cGy$이었으며, 오차율은 -2.46%, +0.23 %, +2.83 %로 확인되었다. 결 론: M3 wax bolus는 2 cm의 두께로 제작되어 뇌 부분의 선량을 보다 쉽게 낮추어 치료계획을 수립할 수 있었다. 치료선량 검증에서의 EBT3 Film과 Mosfet의 선량계의 A, B, C 측정값에서도 두피의 표면선량 최대 오차율은 5 % 이내로 측정되었으며, 일반적으로 3 % 이내로 정확하게 측정되었다. M3 wax bolus는 제작과정 기간이 3D Printer보다 빠르고 비용이 저렴하며, 재사용 가능하고, 인체조직 등가물질로서 두피 악성종양 치료에 매우 유용한 Bolus이다. 따라서 3D Printer의 대용량 Bolus, Compensator의 제작시간 및 비용이 비싼 단점을 극복하는 주조형 M3 wax bolus의 사용이 추후 확대될 것으로 사료된다.
Purpose: Helmet type bolus for 3D printer is being manufactured because of the disadvantages of Bolus materials when photon beam is used for the treatment of scalp malignancy. However, PLA, which is a used material, has a higher density than a tissue equivalent material and inconveniences occur when the patient wears PLA. In this study, we try to treat malignant scalp tumors by using M3 wax helmet with 3D printer. Methods and materials: For the modeling of the helmet type M3 wax, the head phantom was photographed by CT, which was acquired with a DICOM file. The part for helmet on the scalp was made with Helmet contour. The M3 Wax helmet was made by dissolving paraffin wax, mixing magnesium oxide and calcium carbonate, solidifying it in a PLA 3D helmet, and then eliminated PLA 3D Helmet of the surface. The treatment plan was based on Intensity-Modulated Radiation Therapy (IMRT) of 10 Portals, and the therapeutic dose was 200 cGy, using Analytical Anisotropic Algorithm (AAA) of Eclipse. Then, the dose was verified by using EBT3 film and Mosfet (Metal Oxide Semiconductor Field Effect Transistor: USA), and the IMRT plan was measured 3 times in 3 parts by reproducing the phantom of the head human model under the same condition with the CT simulation room. Results: The Hounsfield unit (HU) of the bolus measured by CT was $52{\pm}37.1$. The dose of TPS was 186.6 cGy, 193.2 cGy and 190.6 cGy at the M3 Wax bolus measurement points of A, B and C, and the dose measured three times at Mostet was $179.66{\pm}2.62cGy$, $184.33{\pm}1.24cGy$ and $195.33{\pm}1.69cGy$. And the error rates were -3.71 %, -4.59 %, and 2.48 %. The dose measured with EBT3 film was $182.00{\pm}1.63cGy$, $193.66{\pm}2.05cGy$ and $196{\pm}2.16cGy$. The error rates were -2.46 %, 0.23 % and 2.83 %. Conclusions: The thickness of the M3 wax bolus was 2 cm, which could help the treatment plan to be established by easily lowering the dose of the brain part. The maximum error rate of the scalp surface dose was measured within 5 % and generally within 3 %, even in the A, B, C measurements of dosimeters of EBT3 film and Mosfet in the treatment dose verification. The making period of M3 wax bolus is shorter, cheaper than that of 3D printer, can be reused and is very useful for the treatment of scalp malignancies as human tissue equivalent material. Therefore, we think that the use of casting type M3 wax bolus, which will complement the making period and cost of high capacity Bolus and Compensator in 3D printer, will increase later.