SPECIAL PAPER
Postoperative
Hypofractionated Volumetric Modulated Arc Therapy
with a Simultaneous Integrated Boost for Soft Tissue Sarcomas
María Verónica Vera Merino, Daniela M.
Ángel Schütte, Silvia Zunino
Instituto Zunino, Fundación Marie
Curie, Córdoba, Argentina
ABSTRACT
Soft tissue sarcomas (STS) are rare
neoplasms whose standard treatment combines surgery and radiotherapy.
Conventional postoperative radiotherapy regimens involve prolonged treatment
courses, which has prompted the exploration of hypofractionated
alternatives. The development of advanced techniques, such as
intensity-modulated radiotherapy (IMRT) and volumetric modulated arc therapy
(VMAT), together with the use of a simultaneous integrated boost (SIB), allows
biologically equivalent doses to be delivered over a shorter period, optimizing
dose distribution and reducing irradiation of healthy tissues. We present a
retrospective series of 51 patients with STS treated with postoperative hypofractionated radiotherapy delivered in 15 fractions.
Acute and late toxicity and oncologic outcomes were evaluated. The results
showed satisfactory local control and survival, a low incidence of acute
toxicity, and a moderate rate of late fibrosis. These findings suggest that
hypofractionation using IMRT/VMAT is a viable therapeutic alternative in
selected settings.
Keywords: Intensity-modulated
radiotherapy; sarcoma; survival; toxicity.
Level of Evidence: IV
Radioterapia
posoperatoria de intensidad
volumétrica modulada hipofraccionada con refuerzo simultáneo integrado en sarcomas
de partes blandas
RESUMEN
Los sarcomas de partes blandas son neoplasias poco frecuentes cuyo tratamiento estándar combina cirugía y radioterapia. Los esquemas convencionales de radioterapia posoperatoria implican tratamientos prolongados, lo que ha motivado la exploración de alternativas hipofraccionadas. El
desarrollo de técnicas avanzadas, como la radioterapia de intensidad modulada y la radioterapia volumétrica, junto con el uso de refuerzo simultáneo integrado, permite administrar dosis biológicamente equivalentes en menor tiempo, optimizando
la distribución de dosis y reduciendo la irradiación a tejidos sanos. Se presenta una serie
retrospectiva de 51 pacientes
con sarcoma de partes blandas tratados
con radioterapia posoperatoria
hipofraccionada en 15 fracciones.
Se evaluaron la toxicidad aguda y tardía, y los resultados oncológicos. Los resultados muestran un control
local y una supervivencia adecuados, una baja incidencia de toxicidad aguda y una tasa
moderada de fibrosis tardía.
Estos hallazgos sugieren que el hipo-fraccionamiento con radioterapia
de intensidad modulada/radioterapia volumétrica constituye una alternativa terapéutica viable en
contextos seleccionados.
Palabras clave: Radioterapia de intensidad modulada;
sarcoma; supervivencia; toxicidad.
Nivel de Evidencia: IV
Soft
tissue sarcomas (STS) account for 1% of all neoplasms in adults.1,2 The
most common sites are the extremities (43%), visceral organs (19%),
retroperitoneum (15%), and trunk (10%).3
The
histological classification of STS is based on the World Health Organization
classification, which has incorporated new entities and updated diagnostic
criteria.4 Prognosis
depends on multiple factors.5 In
the absence of radiotherapy, the local recurrence rate is approximately 30%,
while the incidence of distant metastases ranges from 30% to 50%.6
Standard
treatment consists of a combination of surgery and radiotherapy, which has
reduced the local recurrence rate to less than 15%.7
Postoperative
radiotherapy is associated with less acute toxicity but a higher incidence of
late toxicity, such as fibrosis, edema, fractures, and joint stiffness.8,9 Yang et al.10 compared limb-sparing surgery alone
with surgery plus adjuvant radiotherapy in 141 patients with STS (91 high-grade
and 50 low-grade). With a mean follow-up of 9.6 years, 10-year local control
was significantly higher in the surgery plus radiotherapy group (100% vs. 78%,
p = 0.003); among patients with low-grade tumors, however, the difference did
not reach statistical significance (95% vs. 68%, p = 0.067). Beane et al.7 confirmed these findings in a study of
141 patients with STS (both low-and high-grade), with a mean follow-up of 17.9
years, reporting a local recurrence rate of 25% after surgery alone and 1.4%
with adjuvant radiotherapy (p = 0.0001).
The
standard postoperative dose is 64-66 Gy, administered in 1.8-2.0 Gy fractions
over 32 or 33 sessions.9 Bone
fractures occur more frequently in patients receiving high doses (60-66 Gy)
than in those receiving 50 Gy (10% vs. 2%).11
Regarding
overall survival (OS), the data are conflicting. Yang
et al.10 reported no OS
benefit with radiotherapy, whereas Kachare et al.,8 in an analysis of 2606 patients with
high-grade extremity STS treated with surgery and radiotherapy, found an OS
benefit in both univariate and multivariate analyses.
According
to a randomized trial, postoperative radiotherapy is associated with less acute
toxicity than pre-operative radiotherapy, but with a higher incidence of late
toxicity, such as fibrosis, edema, fractures, and joint stiffness.9 Bone fractures are more frequent in
patients receiving high doses (60-66 Gy) than in those receiving 50 Gy (10% vs.
2%).11 The standard
postoperative dose ranges from 64 to 66, administered in 1.8-2.0 Gy fractions
over 32 or 33 sessions.9
Radiotherapy
techniques have evolved from two-dimensional radiotherapy to computed
tomography (CT)-based three-dimensional conformal radiotherapy and, more
recently, to intensity-modulated radiotherapy (IMRT).12 IMRT allows modulation of the
radiation beam and sparing of adjacent tissues, particularly bone, because of
the conformal shape that can be achieved with the dose distribution. In
patients with extremity STS, IMRT has been shown to be feasible and to have a
favorable toxicity profile,12 allowing
the dose delivered to bone to be reduced and thereby decreasing the incidence
of fractures associated with high radiation doses.13 These
newer techniques make it possible to consider shorter treatment regimens.
The
objective of this article is to describe a clinical experience with hypofractionated postoperative radiotherapy
using a simultaneous integrated boost (SIB) and to analyze its utility in
clinical practice.
We
retrospectively reviewed the medical records of 51 patients diagnosed with STS
who were treated at a single institution between January 2017 and October 2024.
Data on age, sex, functional status according to the Eastern Cooperative
Oncology Group Performance Status (ECOG-PS), histological subtype, tumor
location, and disease stage according to the 8th edition of the American Joint
Committee on Cancer (AJCC) staging system14 were
obtained from the medical records, as were data on surgical treatment and
chemotherapy administered.
Patients
with STS of the extremities or trunk who had undergone surgery followed by
postoperative hypofractionated radiotherapy using
IMRT/volumetric modulated arc therapy (VMAT) with an SIB to the tumor site
identified on preoperative magnetic resonance imaging (MRI) or CT, as well as
adjuvant chemotherapy when indicated, were included.
Patients
with retroperitoneal, visceral, or head and neck STS were excluded from the
analysis, as were those with stage IV disease or those who had undergone
amputation as part of their surgical treatment.
Follow-up
was calculated from the first day of radiotherapy to the last in-person or
telephone clinical follow-up or the date of death. During treatment, patients
were evaluated weekly by the radiation oncologist. Follow-up imaging studies
were obtained three months after completion of radiotherapy.
Toxicity
was graded according to the Common Terminology Criteria for Adverse Events,
version 5.0.15 Acute
toxicity was defined as toxicity occurring during treatment and up to three
months thereafter, and late toxicity as toxicity
occurring more than three months after treatment.
Local
recurrence was defined as recurrence occurring within the previously described
irradiated volumes.
Vacuum
bags were used for patient immobilization. During virtual simulation, a
radiopaque marker was placed over the surgical scar, which was covered with a
0.5-cm-thick synthetic gel (Superflab) or wax bolus
of sufficient extent to cover the entire scar. The patient’s position was
marked on the vacuum bag to ensure accurate reproducibility at each treatment
session (Figure 1).
CT
imaging (Somatom GoUp,
Siemens) was performed using 3-mm-thick slices and a field of view sufficiently
wide to include the patient’s entire external contour. CT acquisition included
the target volume with margins of at least 5 cm at its superior and inferior
ends.
CT
images were imported via a DICOM network into the Eclipse treatment planning
system, version 15.6 (Varian Medical Systems). Treatment volumes were
delineated according to the recommendations published by Hass et al.16 using
the simulation CT images and the preoperative MRI images as a guide.
Postoperative
radiotherapy was delivered in 15 consecutive fractions at the following doses:
tumor bed (SIB), total dose (TD) 48.75 Gy, with a daily dose of 3.25 Gy. The
equivalent dose in 2-Gy fractions (EQD2), using
an / ratio of 1, was estimated at 64 Gy in
patients with negative surgical margins; in patients with positive margins, the
TD was increased to achieve an EQD2 of 68 Gy. Clinical target volume 1 (CTV1)
received a TD of 43.9 Gy at 2.93 Gy per fraction (EQD2 54 Gy), and CTV2
received a TD of 41.8 Gy at 2.79 Gy per fraction (EQD2 50 Gy).
Treatment
was delivered using VMAT with 6-MV photon beams, employing two complementary
arcs and daily image-guided radiotherapy (Figure 2).
The
defined volumes were the tumor bed (SIB), CTV1 (microscopic extension), CTV2
(surgical scar), and the planning target volume (PTV; 5-mm expansion).
Patient-specific
quality assurance was performed, including an independent three-dimensional
dose calculation using RadCalc v7.3 and portal
dosimetry for each arc.
Treatments
were delivered using TrueBeam STx or Novalis Tx
linear accelerators (Varian Brainlab), both equipped
with high-resolution multileaf collimator systems.
All
participants provided written informed consent, and the study was conducted in
accordance with the ethical principles of the 1975 Declaration of Helsinki.
For
descriptive analysis, quantitative variables, such as age, are expressed as
mean ± standard deviation and range (minimum–maximum). Categorical variables,
such as sex, are reported as absolute frequencies (number of cases) and
relative frequencies (percentages).
Survival
was estimated using the Kaplan-Meier method,17,18
with the last day of radiotherapy considered the starting point.
The outcomes analyzed were local recurrence-free survival, overall survival
(OS), and metastasis-free survival.
Statistical
analysis was performed using Statistica software, version 14.1.0.8.
A
total of 51 patients (mean age, 55 ± 17 years; range, 18–82) were analyzed,
with a mean follow-up of 43 ± 17 months (range, 1.4–100). Twenty-four patients
(47.1%) were women and 27 (52.9%) were men. Forty-two (82.4%) had negative
surgical margins and nine (17.6%) had positive margins. Seven patients (13.7%)
received adjuvant chemotherapy, while 44 (86.3%) did not. The mean interval
between surgery and the start of intensity-modulated radiotherapy was 82 ± 44
days (range, 17–226). Tumor locations, listed in order of frequency, are
detailed in Table 1.
The
distribution by stage (AJCC 8th edition), as well as tumor grade and size, is
shown in Table 2. Mean tumor size was 8.2 ±
5.1 cm (range, 1.3–30.0).
Tumor
histology is presented in Table 3.
Liposarcoma was the most frequent subtype (15 patients, 29.4%), followed by
spindle cell tumors (9 patients, 17.6%). Within the liposarcoma group (n = 15),
the following histological subtypes were identified: dedifferentiated (5
patients, 33.3%), myxoid (4 patients, 26.7%), pleomorphic (2 patients, 13.3%),
and well-differentiated (1 patient, 6.7%).
Grade
1 radiation dermatitis occurred in 37 patients (72.5%), grade 2 in 12 (23.5%),
and grade 3 in two (4.0%).
Grade
1 edema occurred in 15 patients (29.4%) and grade 2 in one (1.9%), while 35
(68.7%) did not develop this complication. Surgical scar complications
(infection) occurred in two patients (4%).
Late
toxicity was assessed in 49 of the 51 patients. Grade 1 scar fibrosis was
observed in 30 patients (61.2%), grade 2 in 10 (20.4%), and grade 3 in one
(2.0%), while eight (16.3%) had no fibrosis. Grade 1 edema was detected in 20
patients (40.8%) and grade 2 in two (4.1%). Twenty-two patients (44.9%) had
skin changes consistent with post-radiation hyperpigmentation. One patient
sustained a bone fracture one year after completing radiotherapy.
Local
recurrence-free survival was 97.9 ± 2.1% at 12 months,
94.6 ± 3.8% at 24 months, and 89.6 ± 6.0% at 48
months
(Figure 3A). The OS rate was 97.7 ± 2.2% at 12 months, 95.4 ± 3.2% at 24
months, and 87.3 ± 6.2% at
48
months (Figure 3B). Metastasis-free survival
was 87.5 ± 4.8% at both 12 and 24 months and 77.3 ± 6.9% at 48 months (Figure 3C).
The
results suggest that hypofractionated postoperative
radiotherapy using IMRT/VMAT provides adequate local control and survival
rates, with an acceptable toxicity profile. In the study by Wang et al.,19 80 patients with STS of the
extremities and trunk were treated with IMRT in 25 fractions, with equivalent
doses of 66 to 70 Gy to the tumor bed, depending on margin status. Similarly,
Bourdais et al.20 evaluated
59 patients treated with postoperative IMRT in 25 fractions, with doses ranging
from 60 to 66 Gy adjusted according to the type of resection.
Unlike
these conventional regimens, patients in our series received radiotherapy in 15
fractions, maintaining a similar equivalent dose but with a shorter treatment
course.
Regarding
acute toxicity, grade 2 and grade 3 radiation dermatitis occurred in 23.5% and
4.0% of patients, respectively; grade 2 or higher edema occurred in 1.9%, and
wound-healing complications in 4%. Regarding late toxicity (n = 49), grade 2 or
higher fibrosis occurred in 22.4% and grade 2 or higher edema in 4.1%. Wang et
al.19 reported a single
case of grade 3 radiation dermatitis with a wound complication and an incidence
of limb edema of 17.6%, with no fractures attributable to radiation. Similarly,
Bourdais et al.20 reported
edema (29%) and chronic pain (32%) as the most frequent acute toxicities, with
no bone fractures. Di Brina et al.21 evaluated
109 patients treated with three-dimensional conformal radiotherapy (n = 38) or
VMAT (n = 71) over 33 days and reported grade 2 fibrosis in 11.3%, with no
fractures. Seddon et al.,22 in
a study of 53 patients treated with postoperative IMRT over 30–33 days,
reported grade 2 or higher fibrosis in 10.8% and a single fracture.
Taken
together, these three studies describe postoperative radiotherapy regimens
administered primarily in 25–33 fractions using IMRT or VMAT, with relatively
high rates of acute edema and a lower incidence of grade 2 or higher late
fibrosis, with no radiation-induced fractures.19-21
Regarding
oncologic outcomes in our study, local recurrence-free survival, OS, and
metastasis-free survival rates at 48 months were 89.6%, 87.3%, and 77.3%,
respectively. Consistent with these findings, the corresponding 48-month rates
reported by Wang et al.19 were
92.9%, 87.4%, and 81.2%, while Mills et al.23 reported rates of 100%, 86%, and 68%,
respectively, in patients treated with postoperative IMRT in 28 fractions.
Despite
the limitations inherent to a retrospective study, the findings suggest that hypofractionated postoperative radiotherapy with IMRT/VMAT
and SIB is a safe, effective, and efficient alternative for the adjuvant
treatment of STS, with a low toxicity profile, the ability to avoid or reduce
radiation dose to bone, and favorable oncologic outcomes.
Statement on the Use of AI
The
use of artificial intelligence applications was limited to 3% of the work;
ChatGPT® was used for grammatical correction of some texts.
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D. M.
Ángel Schütte ORCID ID: https://orcid.org/0000-0002-6680-6766
S.
Zunino ORCID ID: https://orcid.org/0000-0001-5578-5931
Received on May 3rd, 2026.
Accepted after evaluation on May 10th, 2026
•
Dr.
MARÍA VERÓNICA VERA MERINO • vvera@institutozunino.org • https://orcid.org/0000-0002-5173-4018
How to cite this article:
Vera
Merino MV, Ángel Schütte DM, Zunino S. Postoperative Hypofractionated
Volumetric Modulated Arc Therapy with a Simultaneous Integrated Boost for Soft
Tissue Sarcomas. Rev Asoc
Argent Ortop Traumatol 2026;91(4):397-405.
https://doi.org/10.15417/issn.1852-7434.2026.91.4.2356
Article
Info
Identification:
https://doi.org/10.15417/issn.1852-7434.2026.91.4.2356
Published: Agosto, 2026
Conflict
of interests: The authors declare
no conflicts of interest.
Copyright: © 2026, Revista de la Asociación Argentina de Ortopedia y
Traumatología.
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