METHODS
Ten patients with locally advanced rectal cancer were recontoured according to defined protocol on
computed tomography simulation that was previously scanned. Dosimetric comparison was performed
for each patient with 7 and 9 fields intensity-modulated radiation therapy and VMAT. Compared dosimetric
parameters were determined as doses of organs at risk, the total duration of treatment, target
coverage, conformity index, homogeneity index, and the total monitor unit (MU).
RESULTS
All plans provided comparable dosimetric parameters for target volumes. Arc plans demonstrated a
statistically significant benefit with lower doses on V15 and Dmean of the small bowel than intensity-modulated
radiation therapy. Arc plans were obviously superior relating to measured volumes of the whole
body, and plans with 7 field had the worst results. In addition, the reduction in total treatment time by
approximately 60% was achieved in arc plans.
CONCLUSION
VMAT with short treatment duration and low MUs can be considered as providing a more comfortable
and qualified treatment.
Keywords: Intensity-modulated radiotherapy; preoperative chemoradiotherapy; rectal cancer; volumetric arc therapy
The relationship between specific dose-volume
constraints and organ toxicity has been known.[
Accordingly, highly conformal radiation therapy
planning and delivery techniques, such as intensitymodulated
radiotherapy (IMRT) and volumetric arc
therapy (VMAT), that allows for a reduction of high
doses to organs at risk (OARs), without compromising
target coverage, are being investigated. Therefore, there
are several studies comparing the inverse planning system
with different IMRT and VMAT techniques, and
the clinical implications of the results are still unclear.
[
Monitoring, Target Volume Determination, and
Dose Prescription
Planning Techniques and Objectives
Plan optimization is defined as taking 100% of the
prescription dose covered by at least 95% of the PTV.
The values of D98% (dose received by 98% of the PTV)
and D2% (dose received by 2% of the PTV) for PTV
were determined as the minimum and maximum doses
(Dmean and Dmax) according to the International Commission
on Radiation Units and Measurements-83. The
conformity of the plans was evaluated with a conformity
index (CI) defined as the ratio of the target volume
receiving 95% of the prescribed dose divided by the
total volume receiving that dose level. The homogeneity
of the plans was measured with regard to the homogeneity
index (HI), which was expressed as (D2%?
D98%)/D50%. The Eclipse system was not able to calculate
the estimated treatment time per fraction. Therefore,
monitor unit (MU) values were used in VMAT plans to
compare treatment times ("beam on"). The duration of
treatment was determined by the ratio of the total MU
to the maximum dose rate (MU/dose rate). In IMRT
plans, "beam on" times were obtained from the system.
Plan Quality Assurance (QA) was performed for total
treatment periods. Data were obtained using dose?volume
histograms (DVHs). Anisotropic Analytical Algorithm
(version 10.0.028) was used as the planning algorithm,
and Dose Volume Optimizer (version 10.0.028)
was used for optimization algorithm.
1. IMRT Plans
2. VMAT Plans
Organ at Risk
Statistical Analysis
All patients were stabilized in a prone position using a
carbon-fiber belly board. The planning computed tomography
(CT) scanned at a slice thickness of 3 mm
was transferred to the Eclipse 10.0 treatment planning
system. Positron emission tomography-CT and/
or magnetic resonance imaging images recorded were
matched using fusion algorithms to determine target
volume. Treatment volumes were recalibrated according
to the Radiation Therapy Oncology Group (RTOG)
consensus of conformal contouring atlas for anorectal cancer published online in 2008.[
Planning target volumes (PTV1 and PTV2) were
planned using the Eclipse 10.0 treatment planning system
on the Trilogy linac and Millennium 120 MLC system
using the simultaneous single boost method. The
prescribed doses were 45 Gy to the PTV2 and 50.4 Gy
simultaneous to the PTV1 in 25 fractions. Three plans
were performed for each patient, including 7 field IMRT
(IMRT7), 9 field IMRT (IMRT9), and double-arc VMAT
(ARC). The maximum dose rate was optimized to 600
MU/min. 6 MV photons were used in all plans.
The IMRT plans were calculated using seven fixed
gantry angles (0°, 52°, 104°, 154°, 208°, 260°, and 312°)
and nine fixed gantry angles (0°, 41°, 82°, 123°, 164°,
205°, and 328°).
Each plan with double arc consisted of two complete
arcs set from 181° to 179° and from 179° to 181° (clockwise
and counterclockwise), respectively. The collimator
angles were defined as 30° and 330° for all plans.
OAR for each plan was evaluated by the following:
V<12 (volume receiving <12 Gy), V15, Dmin, and Dmax for
small bowel; V30, V40, and Dmean for bladder; D15, V30,
Dmax, and Dmean for each femoral head; and V10, V20, V30,
and V40 for normal tissue that excluded PTV2 from the
whole body (NTV).
All dosimetric results from different irradiation techniques
were compared with each other. Repeated measures analysis of variance was used for comparison of
plans. Bonferroni correction was used for post hoc
analysis. Intraclass correlation coefficient was used to
determine the correlation between measurements. A
p-value of <0.05 was considered statistically significant.
Target Coverage and Dose Distribution
The mean volume of the PTV was 1452.9±115.1 cc,
the minimum was 286.9 cc, and the maximum was
603.6 cc. For PTV1, IMRT9 achieved better HI than
IMRT7 and ARC (p=0.026). Although D98% was higher
for IMRT9 than for ARC (p=0.001), there were no significant differences between all plans on CI values
(p=0.188). For PTV2, there was no difference for all
the evaluated dosimetric parameters (Table
Small Bowel and Bladder
The mean volume of the small bowel was 822.2±340.7
(430.2?1394.3) cc. There were no significant differences
between all three plans on V<12, V30, and Dmax. However,
V15 and Dmean were lower for ARC than for IMRT7 and IMRT9, respectively (ARC?IMRT7, p=0.030 and ARCIMRT9,
p=0.035). The volume of the bladder ranged
from 62.6 to 517 cc with a mean of 180.5±129.7 cc. The
results for plans were comparable, but V30 was lower for
IMRT7 than for both IMRT9 and ARC (p=0.031 and
p=0.02, respectively) (Table
Femur Heads
V40 for femur heads in each of three plans were excluded
from the analysis because of detecting 40Gy on
DVHs only linearly. In general, IMRT7 revealed the
highest irradiated volumes, whereas IMRT9 and ARC
could achieve comparably better results (Table
Normal Tissue
V10, V20, V30, and V40 were evaluated for normal tissue
that excluded PTV2 from the whole body (Table
ARC plans had the lowest MU values, as expected
(p=0.01). There was no significant difference between
the "beam on" times. However, when the total treatment
time was considered, the superiority of ARC
plans was observed according to data obtained with
QA. The mean treatment periods were measured as
6.83+0.61 min in IMRT7, 8.21+0.74 min in IMRT9,
and 3.09+0.31 min in ARC.
Moreover, there are several studies that have focused
on treatment intensification by using different CRT
regimens with the aim of limiting treatment-induced
toxicity using IMRT.[
When the bladder tolerance doses are taken into
account, dose prescriptions applied as preoperative for
rectal cancer do not mean a significant risk for bladder
toxicity. However, a volumetric or dosimetric threshold
that can be associated with acute and late side effects
in rectal cancer has not been established. Wolff et al.
stated in 2011, in that compared proton, VMAT, IMRT,
and 3DRT in patients with locally advanced rectal cancer,
that only V40 volumes for bladder are statistically
significantly higher in IMRT than in VMAT plans.[
One of the important parts of pelvic radiotherapy
with regard to late toxicity is the femur heads because
of its function. Dose?response relationship is not
known but is more frequent at higher doses of 40 Gy.
In the present study, ARC showed superior dosimetric
results to IMRT. In addition, when IMRT plans are
assessed within themselves, the superiority of IMRT9
plans is emphasized in all parameters. This may be due
to the increased dose intensity compared with IMRT9
and because of non-coplanar beams (104° and 260°)
used in IMRT7.
Although IMRT and VMAT have defined dosimetric
advantages, clinical reflections have yet to be
demonstrated. Both techniques limit the high-dose areas
obtained by normal tissues when compared with
3DRT, whereas the low-dose areas increase. This may
lead to an increased risk of radiation-related cancer formation
due to DNA mutations and carcinogenesis that
increase in low- and moderate-dose values. As we assess
the dosimetric comparison of normal tissue doses,
V20, V30, and V40 volumes were significantly lower in
ARC plans (IMRT7>IMRT9>ARC). The number of
field was only significant at lower doses (10 Gy), and
V10 was better in IMRT7 than in IMRT9 plans (p=0.004
and p<0.01, respectively).
The prolonged treatment increases the uncertainty
due to the patient's movement, and it has been stated
that IMRT was successful in reducing the volume of
irradiated bowel with prone position in many studies.[