透過您的圖書館登入
IP:18.117.196.217
  • 期刊
  • OpenAccess

電腦斷層掃描顯影劑對於放射治療劑量之影響與修正

Impact of the CT contrast agent on dosimetry and calibration of radiotherapy

摘要


本實驗利用Gammex 467 假體內各種模擬人體材質,建立密度與CT 值的校正直線。同時利用KI 溶液來模擬顯影劑,以瞭解一般顯影劑對於電腦斷層掃描後的高CT 值以及劑量擾動的現象。實驗發現,在模擬人體一般軟組織 (密度0.95~1.82 g/cm^3)的各種密度的介質中,CT 值與物理密度或相對電子密度都呈現了一般所熟知的直線關係,但是密度較低的模擬材質(肺)卻不適用這樣的直線關係。若病人含有顯影劑主要成分之一的碘元素,則CT 非常高(本實驗的KI 之CTnumber 可高至2614),明顯落在一般軟組織的校正回歸直線之外。根據蒙地卡羅劑量模擬結果,在含有模擬顯影劑的材質KI 溶液的前後軟組織,與一般不含顯影劑單純是水的介質來比,出現了劑量擾動現象,且正比於KI 濃度。在本實驗中大溶解度的KI 溶液中,在介面的前端將高出22%,介面的後端將低了15%。

關鍵字

密度 CT 值 劑量擾動 顯影劑 KI

並列摘要


The calibration curves of density versus CT values have been established through the Gammex 647 phantom which simulates soft tissues in this study. In order to understand the high CT value of contrast agent and the dose perturbation phenomena, various KI solutions were used to simulate the contrast agent. The well-known linear relationship was found between the physical density (or relative electron density) and CT values, however, the CT values of lung materials were not fit to such linear relationship. The CT values of KI were extremely high (The maximum CT number of KI solution =2614 in this study) and away from the linear regions. According to the Monte Carlo simulations, the dose perturbations were found in front of and after the regions of contrast-simulated KI solutions, such phenomena were found to be proportional to the concentration of KI solutions. Using the KI solution with maximum solubility, KI solution would result in 22% higher dose at the media in front of the KI solution, and would give 15% lower dose at the media after the KI solution, compared to soft tissues (water) without contrast agent.

並列關鍵字

Density CT values Dose perturbation Contrast agent KI

參考文獻


Constantinou C, Harrington JC, DeWerd LA. “An electron density calibration phantom for CT-based treatment planning computers.” Med Phys (1992) 9:325–7.
Mackie TR, El-Khatib E, Battista J, et al. ”Lung dose corrections for 6 and 15 MV X-rays.” Med Phys(1985) 12:327-32.
Saw CB, Loper A, Komanduri K, et al. ”Determination of CT-to-density conversion relationship for image-based treatment planning systems.” Med Dosim (2005) 30:145-8.
Kale-Ezra JA, Karantanas AH, Koliqliatis T, et al. ”Electron density of tissues and breast cancer radiotherapy: A quantitative CT study.” Int J Radiat Oncol Bio Phys (1998) 41:1209-1214.
Hughes J, Holloway LC, Quinn A, Fielding A. “An investigation into factors affecting electron density calibration for a megavoltage cone-beam CT system.” J Appl Clin Med Phys (2012) 13:93-107

延伸閱讀