METHODS
Twenty patients, diagnosed with stage-2 endometrial cancer according to the International Federation of
Gynecology and Obstetrics, were enrolled from our Radiation Oncology department. For each patient,
three IMRT plans were devised: Without NTO (NTO-OFF), with manually configured NTO (NTO-MAN),
and with automatically configured NTO (NTO-AUTO). The plans were compared using parameters derived
from dose-volume histogram analysis, including planning target volume and organs at risk (OARs).
RESULTS
The mean conformality index was superior with NTO-MAN (0.76±0.05) compared to NTO-AUTO
(0.72±0.03, p=0.001) and NTO-OFF (0.62±0.02, p=0.000). IMRT with NTO-MAN provided enhanced
OAR protection, particularly for the bladder (V45=32.84±2.03 vs. 37.03±1.55, p=0.000) and rectum
(V30=56.18±2.05 vs. 60.50±3.86, p=0.000), compared to NTO-AUTO. The dose constraints for the
bladder and rectum were not exceeded in any patient treated with NTO-MAN but exceeded in 19 (95%)
and 9 (45%) patients, respectively, with NTO-AUTO.
CONCLUSION
The manual NTO tool resulted in greater conformality and OAR protection. Therefore, we recommend
the use of manual NTO in adjuvant IMRT planning for endometrial cancer patients.
Keywords: Endometrial cancer; intensity modulated radiotherapy; normal tissue objective tool
Adjuvant RT involves the application of vaginal
brachytherapy (BRA) and/or external beam RT (EBRT).
Among the contemporary EBRT techniques, intensitymodulated
RT (IMRT) allows optimal dose distributions
and a sharper dose fall-off at the planning target
volume (PTV) edge.[
Various RT planning systems, including EclipseTM
(Varian Medical Systems, Palo Alto, CA, USA), have
been developed globally. EclipseTM, particularly versions
10 and above, incorporates the normal tissue objective
(NTO) tool for optimization. The NTO tool uses
exponential decay of the dose based on distance during
inverse planning optimization. It penalizes high dose
levels to mitigate hot spots, promoting a rapid dose falloff
in OARs.[
Based on results from the Radiation Therapy Oncology
Group (RTOG) 0418 and RTOG 1203 trials, IMRT
has gained acceptance as the standard EBRT technique
for the treatment of endometrial cancer.[
Patients
We included 20 patients diagnosed with stage-2 endometrial
cancer according to the International Federation of Gynecology and Obstetrics (FIGO 2017; 8th edition) who
sought adjuvant RT at our radiation oncology department.
The sample size for this study was determined
by a power analysis based on data from a previous
study with a cohort of 15 patients,[
Simulation
Target Volume and Organs at Risk Determination
OARs consisted of the bone marrow, bladder, rectum,
bowel, and femoral heads.[
External Beam Radiotherapy Planning
Dynamic IMRT planning was performed using
seven noncoplanar fields and 6 MV photon beams.
The isocenter was positioned at the midpoint of the
PTVs. Gantry angles were set at 75°, 110°, 145°, 180°,
215°, 250°, and 285° for all plans. The collimator angle
was 0° for gantry angles of 75°, 145°, and 250°, and 90°
for gantry angles of 110°, 180°, 215°, and 285° across
all plans. Photon dose calculation was performed using
the anisotropic analytical algorithm, with heterogeneity
corrections activated throughout dose calculations.
The maximum dose rate was established at 300
monitor units (MU)/min, and the dose calculation
grid was set to 2.5 mm. Manual NTO settings were
configured with a priority of 100, a distance from the
target border (PTV margin=xstart) of 0.15 cm, an initial dose (f0=start dose) of 98%, a final dose (f?=end
dose) of 60%, and a fall-off (k) of 0.25 (Fig.
Dose prescriptions were based on the recommendations
of the International Commission on
Radiation Units and Measurements 83 report, with
a prescribed dose of 50.4 Gy administered in 28
fractions.[18] Normalization ensured that 95% and
100% of the PTV and CTV received the prescribed
dose, respectively. Strict measures were taken to ensure
that the maximum dose did not surpass 110% of
the prescribed dose.
Dose Constraints of Organs at Risk
Evaluation of Radiotherapy Planning
Statistical Analysis
The patients were immobilized in the supine position
with both arms raised above their heads, maintaining a
comfortably full bladder, an empty rectum, and breathing
freely. Subsequently, each patient underwent computed
tomography (CT) twice with a slice thickness
of 3 mm, using a CT simulator (Aquilion LB; Toshiba
Medical Systems, Otawara, Japan). The first non-contrast
scan was done for RT planning purposes, while
the second was used to visualize blood vessels.[
The delineation of clinical target volume (CTV), PTV,
and OARs was based on the RTOG Consensus Guidelines[
15] and the Target Volume Delineation and Field
Setup guidance.[
Contrast and non-contrast CT scans were merged for
delineation, but RT planning was based on non-contrast
CT scans.[
Specific dose constraints for OARs were established as
follows: Bone marrow, volume receiving 40 Gy (V40)
limited to <37%; bladder, volume receiving 45 Gy
(V45) limited to <35%; rectum, volume receiving 30
Gy (V30) limited to <60%; bowel, volume receiving 40
Gy (V40) limited to <30%; and femoral heads, volume
receiving 30 Gy (V30) limited to <15%.[
The cumulative dose-volume histogram parameters
included the volume of the PTV receiving >107% of
the prescribed dose (V>107%), dose received by 2% of
the PTV (D2%), dose received by 98% of the PTV (D98%),
dose received by 50% of the PTV (D50%), mean dose of the PTV (Dmean), homogeneity index (HI), CI, MU,
V40 for bone marrow, V45 for the bladder, V30 for the
rectum, V40 for the bowel, and V30 for femoral heads.
HI was calculated using the formula: HI=(PTVD2% -
PTVD98%)/PTVD50%. HI values ranged from 0 to 1, with
a decrease indicating increased homogeneity. CI was
determined using the formula: CI=(TVref/TV)×(TVref/
Vref), where TVref is the target volume (cm3) covered by
the reference isodose, TV is the target volume (cm3),
and Vref is the volume (cm3) covered by the reference
isodose. CI values ranged from 0 to 1, with an increase
indicating improved conformality. HI and CI were defined
in accordance with the International Commission
on Radiation Units and Measurements reports 83
and 62, respectively.[
The values for the dosimetric parameters in each RT
planning method were documented and compared.
Dosimetric variances between two and three RT plans
were analyzed using the paired two-tailed Wilcoxon"s
signed-rank and Friedman tests, respectively. OAR
overdose rates were examined using a more-thantwo-
group ratio test. Statistical analyses were performed using SPSS software (version 22.0; IBM Corp.,
Armonk, NY, USA). A significance level of p<0.05
was considered statistically significant.
Dosimetric Parameters for Organs At Risk
Tables
Various unfavorable factors, categorized as patient-
and treatment-related factors, contribute to RTrelated
adverse events. Patient-related factors include
female sex, advanced age, obesity, comorbid diseases,
radiosensitivity, malnutrition, low body mass index,
alcohol consumption, and tobacco use. Treatmentrelated
factors include pelvic surgery, high ionizing
radiation dose, re-irradiation, use of multiple treatment
modalities, and non-modern irradiation techniques.[
Inverse planning dose optimization is a standard
procedure in IMRT that allows the radiation intensity
to be modulated. The optimization algorithm, photon
optimizer (version 17.0), in the EclipseTM RT planning
system contains several optimization tools for this purpose
that are licensed and available for a fee. One of
these tools is NTO. NTO-AUTO is a formula defined by
the manufacturer and set automatically by the system,
while NTO-MAN contains five parameters that can
be manually controlled by a medical physicist. These
parameters include priority, distance from target border
[PTV margin (cm)=xstart], initial dose [f0 (%)=start
dose], final dose [f? (%)=end dose], and fall off [k].
Priority represents the weight attributed against other
optimization parameters. If priority is equal to zero,
NTO is turned off. "xstart" indicates the distance from
the PTV border. "f0" and "f?" represent the maximum
and minimum accepted doses outside the PTV, respectively,
while "k" represents the strength of the dose fall
off. NTO is a collection of parameters that define how
the dose should fall off outside the PTV. Determining
the optimal NTO setting can be challenging because
of the multitude of possible combinations.[
Our dosimetric study adhered to the prescribed
doses for the PTV and dose constraints for OARs
recommended in the RTOG 0418 trial. All dynamic IMRT planning parameters were kept consistent, except
for the NTO settings, facilitating a comprehensive
comparison among the RT plans. We observed higher
mean D2% and V>107% values with NTO-MAN in the
PTV compared to the other two techniques, resulting
in the most non-homogeneous plans with NTO-MAN.
Nevertheless, the maximum detected dose in all plans
remained below 110%, consistent with the methods of
the RTOG 0418 study. NTO-MAN resulted in higher
conformality and lower MU values, indicating a more
rapid irradiation process that enhanced patient compliance
to immobilization. This in turn allows a reduction
in the PTV margin and facilitated the application
of image-guided RT. Additionally, we found that NT
and OARs, with the exception of femoral heads, received
better protection with NTO than without NTO.
Following, the bladder and rectum exhibited superior
protection with NTO-MAN compared to NTO-AUTO.
In contrast to the RTOG 0418 trial, where different
gantry angles were used for IMRT plans and there
were no specified dose constraints for the bone marrow
(bladder, rectum, bowel, and femoral head dose
constraints were exceeded in 66.7%, 76.2%, 16.7%,
and 33.3% of the patients, respectively), we used similar
gantry angles and NTO-MAN parameters for comparability
between groups. With NTO-MAN, while
the dose constraints for bone marrow in 80% of the
patients and for bowel in 25% of the patients were exceeded,
the dose constraints for the bladder, rectum,
and femoral heads were not exceeded in any of the patients.
We believe that further optimization, particularly
for bone marrow and bowel protection, can be
achieved by using different gantry angles and optimal
NTO-MAN parameters.
Ethics Committee Approval: The study was approved by the Ondokuz Mayıs University Clinical Research Ethics Committee (no: 2023/493, date: 27/12/2023).
Authorship contributions: Concept - A.S., T.A., Y.D., R.E.Y., D.M., B.G., N.Ö.O.; Design - A.S., T.A., Y.D., R.E.Y., D.M., B.G., N.Ö.O.; Supervision - A.S., T.A., Y.D., R.E.Y., D.M., B.G., N.Ö.O.; Materials - A.S., B.G.; Data collection and/or processing - A.S.; Data analysis and/or interpretation - A.S.; Literature search - A.S., T.A., Y.D., R.E.Y., D.M., B.G., N.Ö.O.; Writing - A.S.; Critical review - A.S., T.A., Y.D., R.E.Y., D.M., B.G., N.Ö.O.
Conflict of Interest: All authors declared no conflict of interest. Use of AI for Writing Assistance: None declared.
Financial Support: None declared.
Peer-review: Externally peer-reviewed.