Patient dose from kilovoltage cone beam computed tomography imaging in radiation therapy

Доза пациента при КТ со сьёмкой коническим пучком в киловольтах в лучевой терапии
Mohammad K. Islam, Thomas G. Purdie, Bernhard D. Norrlinger, Hamideh Alasti, D Moseley, Michael B. Sharpe, Jeffrey H. Siewerdsen, David A. Jaffray
2006-05-10

dose conversion factor fCBCTfield-of-view (FOV) and scan geometry effectskV-CBCTkilovoltage cone-beam computed tomographypatient imaging dose
Kilovoltage cone-beam computerized tomography (kV-CBCT) systems integrated into the gantry of linear accelerators can be used to acquire high-resolution volumetric images of the patient in the treatment position. Using on-line software and hardware, patient position can be determined accurately with a high degree of precision and, subsequently, set-up parameters can be adjusted to deliver the intended treatment. While the patient dose due to a single volumetric imaging acquisition is small compared to the therapy dose, repeated and daily image guidance procedures can lead to substantial dose to normal tissue. The dosimetric properties of a clinical CBCT system have been studied on an Elekta linear accelerator (Synergy RP, XVI system) and additional measurements performed on a laboratory system with identical geometry. Dose measurements were performed with an ion chamber and MOSFET detectors at the center, periphery, and surface of 30 and 16-cm-diam cylindrical shaped water phantoms, as a function of x-ray energy and longitudinal field-of-view (FOV) settings of 5,10,15, and 26 cm. The measurements were performed for full 360 degrees CBCT acquisition as well as for half-rotation scans for 120 kVp beams using the 30-cm-diam phantom. The dose at the center and surface of the body phantom were determined to be 1.6 and 2.3 cGy for a typical imaging protocol, using full rotation scan, with a technique setting of 120 kVp and 660 mAs. The results of our measurements have been presented in terms of a dose conversion factor fCBCT, expressed in cGy/R. These factors depend on beam quality and phantom size as well as on scan geometry and can be utilized to estimate dose for any arbitrary mAs setting and reference exposure rate of the x-ray tube at standard distance. The results demonstrate the opportunity to manipulate the scanning parameters to reduce the dose to the patient by employing lower energy (kVp) beams, smaller FOV, or by using half-rotation scan.
1
Dose depends on beam quality, phantom size, and scan geometry; presented dose conversion factor fCBCT (cGy/R) enables estimating dose for arbitrary mAs and tube exposure rate.
2
Dose measurements were performed using ion chamber and MOSFET detectors in 30- and 16-cm water phantoms across beam energies and longitudinal FOVs (5, 10, 15, 26 cm).
3
Half-rotation (versus full 360°) CBCT acquisitions were explicitly measured for 120 kVp beams, demonstrating reduced exposure in that geometry.
4
Measured patient dose from a typical full-rotation kV-CBCT protocol (120 kVp, 660 mAs) is 1.6 cGy at phantom center and 2.3 cGy at phantom surface for a 30-cm-diameter body phantom.
5
Using lower kVp, smaller FOV, or half-rotation scans can reduce patient dose from kV-CBCT imaging.

Kilovoltage cone-beam computed tomography (kV-CBCT) imaging as implemented on linear accelerators (Elekta Synergy RP, XVI system) and equivalent geometry laboratory CBCT systems using cylindrical water phantoms

Patient dosimetric properties: measurement and characterization of absorbed dose (center, periphery, surface) from kV-CBCT imaging as functions of x-ray energy (kVp), longitudinal field-of-view (FOV), scan geometry (full vs half rotation), and mAs, expressed including a dose conversion factor fCBCT (cGy/R)

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2006-05-10
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Mohammad K. Islam
Thomas G. Purdie
Bernhard D. Norrlinger
Hamideh Alasti
D Moseley
Michael B. Sharpe
Jeffrey H. Siewerdsen
David A. Jaffray
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