METHODS
The treatment data of eight hysterectomized patients with gynecological malignancy who received postoperative
pelvic external radiotherapy (RT)+3-D HDR VC-BRT were analyzed. Recontouring was performed
on CT images, and BRT plans were reformed. Proximal 1/3 vagina was treated in all patients
using a cylinder. A total dose of 18 Gy (3x6Gy) was given (0.5 cm depth from the vaginal mucosa). OAR
and clinical target volume (CTV) were recontoured in a 3-D manner. Afterwards, treatment planning
was performed by a medical physicist using the BRT treatment planning system. Bladder V50%, D50%
and D2cc, rectum D2cc, sigmoid D2cc, bowel D50% and D2cc were recorded from the dose-volume
histograms obtained in the treatment planning system. Paired comparisons were made for the parameters
above for the bladder filling of 50cc versus 150cc. Two different amounts of bladder filling were
compared using the Wilcoxon Signed-Rank Test in the SPSS 15.0 statistics program.
RESULTS
Bladder D50% decreased (p=0.012) while bladder D2cc increased (p=0.025) in the case of 150cc bladder
filling instead of 50cc. Rectum D2cc showed a statistical trend for increase (p=0.05); however, bowel
D50% decreased (p=0.012) in 150cc bladder filling compared to 50cc.
CONCLUSION
The statistically significant decrease in bladder and especially bowel D50% parameters supports filling
the bladder with 150cc instead of 50cc in 3-D VC-BRT.
Keywords: Bladder filling; normal tissue dose; 3-dimensional vaginal cuff brachytherapy
There is sufficient knowledge about the potential effects
of BF on OAR doses in BRT in definitive RT of
cervix cancer. However, few studies exist examining the
effects of BF on OAR doses in vaginal cuff (VC) BRT
where bowels fall into the pelvis due to the removal of
the uterus,[
According to the recommendations of the European
Society for Radiotherapy and Oncology-European
Brachytherapy Group (GEC-ESTRO),[7] the bladder
is filled with an amount of 50 cc. In our study, 50 cc
was compared to 150 cc BF (a value higher than 100 cc
recommended by Hoskin et al.[
In our study, dose-volume parameters (DVPs) of
OAR (volume receiving 50% of the dose (V50%), dose
received by 50% of the volume (D50%), minimum dose
for the 2 cm3 volume receiving the highest dose (D2cc)
for bladder; D2cc for rectum and sigmoid; D50% and
D2cc for bowel) were compared in the case of BF of 50
cc and 150 cc.
Pelvic RT was planned with the Eclipse v11 TP system and was delivered with TrueBeam STx high-energy linear accelerator. The diagnosis was endometrium cancer in five, and cervix cancer in three patients. In intracavitary BRT, a CT-compatible plastic cylinder applicator (stump applicator, GM11004160) was used.
For the optimal coverage of clinical target volume (CTV), a stump applicator (SA) with the tolerable largest diameter was preferred. SA diameter was 2.6-3.5 cm. The preferred SA in the first application was used in the subsequent applications. After placement, the applicator was immobilized by attaching it to a rigid external fixator on the BRT bed. Proximal 1/3 vagina was treated in all patients. HDR BRT dose was administered and the Ir-192 source had been prescribed to 0.5 cm depth from the vaginal mucosa (SA surface). A total dose (TD) of 18 Gy was performed with a fraction dose of 6 Gy administered once or twice a week.
All patients were ordered to drink laxatives a night before the application and not to eat anything so that rectum, sigmoid, and bowels could stay in the same position with minimum fullness. First, a foley catheter (FC) was placed and fixed by filling the catheter balloon with 7 cc contrast material. According to the current BRT imaging protocol in our clinic, CT-scan was performed at two different amounts of BF (50 and 150 cc), and 150 cc filling was preferred in the presence of a significant visual difference in removal of the bowels away from the applicator. First, 50 cc saline was administered after emptying bladder through an FC; then, the catheter was clamped. After the placement of the applicator, the patient underwent the first scan in the CT-simulator device (Somatom Definition AS). A second CT-scan was performed immediately in the same position after clamping the catheter following additional BF with 100 cc saline. The patients did not experience any discomfort in the case of 150 cc bladder filling. During CT-scan and BRT, the patient"s position was the same (supine position, legs placed on supports and knees slightly twisted). Applicator was located in the midline of the patient, parallel to the ground. Applicator position was checked using AP and lateral Xrays before CT-scan.
During CT-scan, no oral or intravenous contrast material was administered, and 3 mm slice thickness was used. On CT images, it was confirmed that the applicator was in contact with the VC apex. CT images were transferred to the computerized TP system (Brachy Vision Brachytherapy TP System). After CTV and OAR contours were completed, the BRT planning was performed. The most appropriate BRT plan was selected and was applied using the GammaMedplus iX HDR remote-afterloading BRT device.
Bladder, rectum, sigmoid, and bowel were determined as OAR in our study. OAR and CTV were contoured retrospectively by a radiation oncology resident. These contours were first controlled by a staff radiation oncology and radiology lecturer, respectively.
A specific contouring protocol was established: 1) Bladder was contoured as the whole organ. 2) Rectum was defined as the bowel segment extending from the beginning of sigmoid to the lower part of femoral heads. 3) Sigmoid was defined as the portion extending from the end of the rectum to the junction where the bowel converts from transverse to vertical position. 4) Since oral contrast is not routinely used in our daily practice for vaginal cuff brachytherapy because of patient discomfort and workload, it was impossible to differentiate small bowel from the large bowel. Thus, the bowel was defined as small and large intestine segments that extend to the lower level of the sacroiliac joint. Inferiorly bowel was contoured from the most inferior small or large bowel loop. Muscle and bones, as well as any overlapping non-gastrointestinal normal structures, were excluded. Considering the high mobility of bowel, the bowel was contoured in the form of a "bowel bag" with the surrounding omentum instead of "bowel loops".
After completion of the contouring process, planning
was made by a medical physicist using the BRT TP
system. For CTV, values for D100%, D90%, D15%, D5%
parameters were defined. For rectum, sigmoid, and
bladder, D2cc dose limits were defined. BRT planning
was performed considering the ERT+BRT TD limitations
of OAR D2cc (<90 Gy for bladder, <70-75 Gy for
rectum and sigmoid) regarding equivalent dose with 2
Gy/fraction (EQD2) according to α/β:3 as recommended
by GEC-ESTRO.[
Calculated Bladder Volumes
Mean bladder volumes were 136 (71-261) cc and 244.8
(158-350) cc for 50 and 150 cc BF, respectively. Overall, it was observed that an increase in BF pushes the
bowels upward and away from the applicator.
Target Volume
CTV DVPs from BRT TP with two different amounts
of BF are shown in Table
Organs at Risk
When the OAR DVPs from ERT and BRT TP were examined,
bladder D2cc ERT+BRT total EQD2 (mean±st.
error) was 67.8±1.1 (63.7-73.0) Gy and 71.1±0.8 (66.3-
74.5) Gy with 50 and 150 cc BF, respectively. Sigmoid
D2cc ERT+BRT total EQD2 was 57.6±2.7 (45.2-66.2) Gy and 58.3±3.3 (44.5-70.4) Gy with 50 and 150 cc BF,
respectively. Rectum D2cc ERT+BRT total EQD2 was
63.7±2.7 (50.2-72.6) Gy and 64.4±2.5 (50.8-71.5) Gy
with 50 and 150 cc BF, respectively.
Bladder
Comparison of the bladder DVPs with two different
amounts of BF is shown in Table
Rectum and Sigmoid
Table
Bowel
Comparison of bowel DVPs with two different amounts
of BF is shown in Table 5. Bowel D2cc was similar in
the case of 50 cc and 150 cc filling. Bowel D50% was
significantly decreased (p=0.012) when the bladder was
filled 150 cc. Figure
We observed that bladder volume calculated by the
TP system was not below 50 cc in patients with BF of
50 cc, and was not below 150 cc in patients with BF of
150 cc. In Hung"s study,[
Contouring
Treatment Planning
Normal Tissues
Bladder
Except for one study,[
Rectum-Sigmoid
Bowel
Limitations of this Study
In our study, sigmoid was defined as the part of the
bowel beginning from the proximal end of the rectum
and extending to the junction of vertical and transversal
parts of the bowel. On the other hand, sigmoid was
contoured being included in the bowel in Kobzda et
al.'s study.[
Target Volume
In our study, D100%, D98%, D90%, V100%, and
D50%/D90% parameters of CTV were met in each patient
for both 50 cc and 150 cc BF. It is crucial to assure that BRT treatment plans with two different amounts of
BF compete under the same conditions regarding providing
certain CTV DVPs. On the other hand, no criteria
were reported for CTV DVPs in other studies.[
In our study, BRT planning was performed considering
ERT+BRT TD restrictions of OAR D2cc (for
bladder <90 Gy, for rectum and sigmoid <70?75 Gy)
regarding EQD2 according to α/Β: 3 as recommended
by GEC-ESTRO.[
In our study, V50% showed a trend to decrease in 150
cc BF compared to 50 cc. While D50% decreased, D2cc
increased, both being significant. In Kobzda et al.'s
study, bladder DVPs were compared in empty versus
filled bladder (obtained with 400 cc water intake 40
minutes before CT- scan).[
In our study, rectum D2cc increased with 150 cc BF
compared to 50 cc. although this increase was of borderline
significance (p=0.05). None of the existing
studies in VC-BRT show any change in rectum D2cc
with BF.[
In our study, bowel D2cc was similar for 50 and 150 cc
amounts of BF. However, bowel D50% decreases significantly
in the case of 150 cc BF. By increasing BF,
bowel D2cc decreased only in one study,[
The limitation of this study is the small number of
patients. As in most of the previous studies, the variability
in the realized amount of the BF although using
FC is another problematic issue. This variability can be
reduced using ultrasound both just before CT-simulation
and BRT sessions to control the emptiness of the
bladder before filling procedure. Despite the limitations
of this study, it seems that findings support 150cc
BF in 3-D VC-BRT.
Peer-review: Externally peer-reviewed.
Conflict of Interest: None declared.
Financial Support: None declared.
Authorship contributions: Concept - İ.E., A.N.D.; Design - İ.E., Ş.K., R.K., F.O., A.N.D.; Supervision - A.N.D.; Materials - İ.E., A.N.D.; Data collection &/or processing - İ.E., Ş.K., R.K., F.O., A.N.D.; Analysis and/or interpretation - İ.E., Ş.K., R.K., A.N.D.; Literature search - İ.E., A.N.D.; Writing - İ.E., Ş.K., R.K., F.O., A.N.D.; Critical review - İ.E., Ş.K., R.K., F.O., A.N.D.