METHODS
The study was performed on a cylindrical phantom of Perspex with holes for implant inserts. Two stainless
steel metal rods of 7.5-8.0 g/cc mass density were inserted in the phantom. The ionization chamber
CC13 was kept at a 5 cm depth in the phantom. The phantom was scanned on a computed tomography
simulator in pelvis protocol with a 1mm slice thickness. The scans were imported to the contouring
station without applying artifacts correction. Chamber volume was contoured as gross tumor volume
(GTV); margin to GTV, clinical target volume, and planning target volume were created. Four isocentric
plans (Conventional, three-dimensional conformal radiotherapy[3D-CRT], intensity-modulated
radiotherapy [IMRT], and volumetric-modulated radiotherapy [VMAT]) were generated for two LinacsTruebeam
(TB)-sTx and 2300-CD. The conventional plan was a single anterior field, 3D-CRT was four
field box techniques, IMRT was seven field plan, and VMAT was with two complete arc. Pre-treatment
verification was done using CBCT. Four plans were created on helical tomotherapy with different prescriptions
and delivered using MVCT guidance.
RESULTS
In conventional plans, variations were -1.40%, -1.57%, and for 3DCRT, variations were -5.08% and
-4.93%, for IMRT, the differences between measured and TPS doses were 1.84 % and -1.55% for VMAT
plans, and the variations were 0.68% and -0.88% for TB and 2300-CD, respectively. The tomotherapy
plans with gradient showed deviations more significant than 3%. Similarly, the variations for single prescription
plans were within 3%.
CONCLUSION
The phantom design used in the test provided a comprehensive understanding of simulation and delivery
problems.
Keywords: End-to-end; metallic implant; MVCT; phantom study
Intensity-modulated radiotherapy (IMRT) and
volumetric-modulated radiotherapy (VMAT) are advanced
treatment techniques that involve multiple levels
of computer and manual interferences to execute the
treatment delivery.[
Patients having metallic implants pose multiple
problems during radiotherapy treatment. The streak
artifacts in simulation images cause difficulty in
identifying the organ borders, leading to inaccurate
target and organ-at-risk delineation during contouring.[
The end-to-end (E2E) test includes all the steps in
patient treatment. It starts with positioning, imaging,
contouring, and treatment planning and ends with
setup verification and delivery. The test includes all
the systematic and random errors in the treatment
procedure and is one of the best ways to check the
overall uncertainty.[
In this study, we used an in-house phantom having
provisions for the implant. The phantom was designed
to study the E2E treatment delivery issues in bilateral
hip implant patients. The study used three different
treatment delivery machines (Truebeam [TB], Clinac
ix, and helical tomotherapy [HT]) from two vendors to
avoid and understand the problems associated with the
other vendors and within the same vendor.
Dosimetry System
The point dose verification method was used to perform
the dosimetric verification. The CC13 ionization
chamber (0.13 cc) (IBA Dosimetry, Germany) was kept
at a 5 cm depth from the anterior surface of the phantom.
The lateral distance from both implants was 5cm.
Simulation and Contouring
The phantom was positioned on the CT scanner couch
and aligned with the help of lasers for proper setup. The
setup position was marked with radio-opaque markers.
The CT scan was performed on Somatom Sensation
open (Siemens Healthneers, Germany) and was
reconstructed in 1 mm slice thickness. The planning
scans were exported to the contouring stations Eclipse
(Version: 15.5, Varian Medical Systems, Palo Alto, CA).
The different target volumes were delineated to simulate
the anatomy and treatment geometry. The chamber
volume was contoured and was termed as gross tumor
volume (GTV); a clinical target volume (CTV) was
created with 5mm uniform margin around the GTV,
and a further 7mm uniform margin to it was the planning
target volume (PTV). The metallic rods were contoured and named RT implant and Lt Implant. Streak
artifacts were contoured in a structure called an "artifact."
These contours were used in the planning optimization
and evaluated for dosimetry.
Treatment Planning
Planning on Varian Machines
Conventional Treatment Plans
3D-CRT Treatment Planning
IMRT Planning
VMAT Planning
HT Plans
Plans without Overwritten Density
Plans with Overwritten Density
Treatment Delivery Systems
The phantom was aligned with red lasers for Radixact
X9 tomotherapy, and an MVCT scan was taken to
confirm the phantom location. The GTV and implants
were matched, and the treatment was executed after
applying the shifts.
Dose Measurement and Analysis
Two different planning systems were used to create the
treatment plans: Eclipse treatment planning stations
for Varian machines (Version:15.1, Varian Medical
Systems, Palo Alto, CA) and Accuray Precision software
for HT(Accuray Precision 2.0.1.1,[
TBsTx (Varian Medical Systems, Palo Alto, CA) was an
advanced linear accelerator capable of delivering conventional,
three-dimensional conformal radiotherapy
(3D-CRT), IMRT, and VMAT treatment techniques.
The machine was equipped with high-definition multileaf
collimators (HD-MLCs), having a maximum travelling
speed of 2.5 cm/s. It had a collimator Jaw tracking
system and operated on a digital platform. HD-MLCs
consists of 60 pairs of MLCs leaves; 32 pairs in the center
had an isocenter projection of 2.5 mm, and 14 pairs on either side which had an isocenter projection of 5 mm.
The second machine was the Clinac-ix series, 2300-CD,
also known as the rapid arc(RA) from Varian (Varian
Medical Systems, Palo Alto, CA), which could also deliver
advanced treatments similar to TB. This machine
had millennium multi-leaf collimators(MLCs),which
consists of 60 pairs of MLCs leaves; 40 pairs in the center
had an isocenter projection of 5mm, and ten pairs
on either side had an isocenter projection of 10mm. The
leaves travel at the same speed as HD-MLCs and was
operated on an analog platform without jaw tracking.
Each plan was created separately for both machines.
The plans were calculated using a 2.5 mm grid size and
analytic anisotropic algorithm version(15.6.06).
The conventional treatment plans were created using
the 6MV photons, 10×10 cm2 field width with gantry,
collimator, and couch angles set to be zero. The monitor
unit (MU)-based calculation method was used, and
300 MUs were used to calculate the plan. The beam did
not face any implant in its path but passed through the
streak artifact created by the implant to deliver the dose to the target Figure
3D-CRT plans were four-field box technique plans with
6MV, in which gantry angles were 0°,180°,90°, and 270°
without couch and collimation angle. The MLCs were
used to conform the PTV, and a 7mm margin was given
to compensate for the penumbra and setup errors.
In this plan, the implant material partially obstructed
the lateral beams (90° and 270°). The MU-based calculation
method was used, and 154 MUs were used in
each field to calculate the plan. TB plan was called TB2,
and 2300CD plans were named as RA2.
The IMRT plans were seven-beam co-planar IMRT
plans with gantry angles of 0°,51°,102°,153°,204°, 255°,
and 306° without collimation. The beams were placed in such a way that the beam"s entry should not face the
implanted material. The plans were optimized using a
photon optimizer (PO) (version:15.6.06) for 5Gy per
fraction dose to CTV. TB plans were named TB3, and
2300CD plans were termed RA3. Figure
CBCT: Cone-beam CT; CT: Computed tomography; 2D-MV: Two dimentional Mega voltage; MVCT: Mega-voltage CT.
TB: Truebeam; 3D-CRT: Three-dimensional conformal radiotherapy; IMRT: Intensity-modulated radiotherapy; VMAT: Volumetricmodulated
radiotherapy.
VMAT provides the optimizer with higher degrees of
freedom to achieve the target and organ objectives.
MLC, gantry, and dose rate modulation in the treatment
beam lead to a highly conformal VMAT plan.
[17] VMAT plan with two complete arcs: clockwise
(181°-179°) and anti-clockwise(179°-181°) without
any collimation and couch were optimized using PO
for 5Gy per fraction dose to CTV. The optimizer used
an inbuilt option(exit-only) to avoid the beam"s entry
through the implant. TB plans were named TB4, and
2300CD plans were called RA4.
The plans were created for the Radixact X9 treatment delivery
system(Radixact X9, Accuray Inc. Sunnyvale, CA).
The machine was equipped with 6 MV flattening filterfree
photon beams for treatment delivery, and it could
deliver helical IMRT and tomo-direct (3D-CRT) plans.
It had dynamic and fixed jaw treatment delivery options.
Three jaw settings were 40×1 cm2, 40×2.5 cm2, and 40×5
cm2; dynamic jaw options were available with the latter
two settings. It had the binary MLC leaves consisting of 64
leaves, each having projection of 6.25 mm at the isocenter.
The helical treatment delivery was the mode in which
the couch moved constantly, and the ring gantry moved
continuously and delivered a modulated fan beam. A
mega-voltage CT(MVCT) of 3.2 MV was onboard, and
available for image guidance on tomotherapy. The structures
delineated on the eclipse contouring station were
transferred to the Accuray Precision planning. All HT
plans were created such that the entry of the beams does
not face the implant material directly into its path using
the planning optimizer. The HT plans were calculated using
the convolution superposition algorithm.
Plan HT1 was helical delivery mode, IMRT, with dynamic
jaws (field width 40×5 cm2), pitch 0.172, and
modulation factor 2. The plan GTV was optimized for
5 Gy, and PTV was for 2 Gy per fraction. Plan HT3
was IMRT with dynamic jaws (width 40×2.5 cm2),
pitch 0.172, and modulation factor 1.5. This plan was
optimized to deliver 5Gy for a single target CTV, calculated,
and approved for the treatment delivery.
A CT scan region without artifacts was used to obtain
the density for overwriting the artifact region. Plan
HT2 was created using similar settings as HT1, except
the "artifact" was overwritten with a mass density of
1.087 g/cc. The plan was optimized and calculated with
this overwritten density and approved for treatment.
The plan HT4 was again optimized with the equal objectives
and settings as HT3. In this plan, the structure
"artifact" densities were overwritten. The plan was approved
for treatment delivery.
For TB, we aligned the phantom using the external
markers placed over it and with the help of room lasers.
We applied the shifts according to the plan isocenter.
Mega-voltage(MV) images were acquired from
an electronic portal imaging device, and an onboard
imager did kilo-voltage (KV) imaging; MV-KV pair 2D images were gathered to verify the phantom alignment.
The cone-beam CT (CBCT) (Onboard Imager 1.6,
Varian Medical Systems, Inc. Palo Alto, CA) was performed
using the pelvis scanning protocol. The chamber
volume and implanted materials were matched
in 3D-matching and applied the shifts obtained. The
treatment plan was delivered on the phantom, and doses
were measured in the ionization chamber contoured
as GTV. All the plans had the same setup isocenter, so
only the 3D matching was done after plan TB1. We
repeated this process on Clinac-ix 2300 CD (RA) for
setup verification and treatment delivery.
The CC13 ionization chamber(Model CC13,IBA Dosimetry
GmbH, Schwarzenbruck, Germany) (volume: 0.13
cc), in combination with the Wellhofer Dose1 electrometer,
was used for the point dose measurements. All the
correction factors, the temperature and pressure (Ktp)
and dose to water (Ndw), were used to calculate the dose.
The mean doses from the treatment planning system
(TPS) and the doses measured in the ion chamber were
used to calculate the % variation. The formula used was:
Dosimetric Measurements
Table
The tomotherapy plans with gradient HT1 and HT2 showed more significant deviations HT1 (-3.33%) and HT2 (-3.53 %). Similarly, the variations for single prescription plans were within 3% HT3 (-2.32%) and HT4 (-2.26%).
Analysis of different techniques showed that in the
conventional plans where the beam did not face any
implant found, the dosimetric variations of <2%, that
is, within the tolerance of ±3%.[
The set of tomotherapy plans HT1 and HT2 had
variations of more than the ±3%; the probable cause
would be the gradient created just beyond the target,
that is, chamber volume.[
Gallo et al. conducted a similar study for spine cases
and found that the machines could deliver equivalent results.[
This study observed all the variations and implementation-
related issues with prosthesis patients. Results
can be used in decision-making, setting up the departmental
protocols for implant patients and further
can be used for intercomparison. The absence of actual bladder and rectum densities was the limitation of this
study. Future research must consider non-coplanar
beams and metal reduction algorithms.[
RA: Rapid Arc (2300 -CD); TB: Truebeam; 3D-CRT: Three-dimensional
conformal radiotherapy; IMRT: Intensity-modulated
radiotherapy; VMAT: Volumetric-modulated radiotherapy.
Gy: Gray.
Acknowledgments: The authors thank the management of Rajiv Gandhi Cancer Institute and Research Centre in New Delhi, India, for their continued support and encouragement to complete this research. We also thank Dr. Lalit Kumar for his guidance and support in the research process.
Peer-review: Externally peer-reviewed.
Conflict of Interest: All authors declared no conflict of interest.
Financial Support: None declared.
Authorship contributions: Concept - P.K.S., D.T., R.V.; Design - S.S., P.K.S., R.V., M.B.; Supervision - P.K.S., R.V., D.T., S.S., M.B., M.G., G.K.; Materials - P.K.S., M.G., M.B., G.K., S.B., K.R.; Data collection and/or processing - P.K.S., G.K., M.B., S.B., K.R., M.G., S.S.; Data analysis and/or interpretation - P.K.S., M.B., G.K., S.S., R.V., D.T., S.B., K.R., M.G.; Literature search - P.K.S., M.G., M.B., K.R., S.B., D.T., R.V.; Writing - P.K.S., R.V., S.S., D.T., S.B.; Critical review - M.G., M.B., K.R., S.S., D.T., R.V.