Skip to main content
Top
Published in: Radiation Oncology 1/2019

Open Access 01-12-2019 | Radiotherapy | Research

Intrafractional 6D head movement increases with time of mask fixation during stereotactic intracranial RT-sessions

Authors: Julian Mangesius, Thomas Seppi, Rocco Weigel, Christoph Reinhold Arnold, Danijela Vasiljevic, Georg Goebel, Peter Lukas, Ute Ganswindt, Meinhard Nevinny-Stickel

Published in: Radiation Oncology | Issue 1/2019

Login to get access

Abstract

Background

The present study investigates the intrafractional accuracy of a frameless thermoplastic mask used for head immobilization during stereotactic radiotherapy. Non-invasive masks cannot completely prohibit head movements. Previous studies attempted to estimate the magnitude of intrafractional inaccuracy by means of pre- and postfractional measurements only. However, this might not be sufficient to accurately map also intrafractional head movements.

Materials and methods

Intrafractional deviation of mask-fixed head positions was measured in five patients during a total of 94 fractions by means of close-meshed repeated ExacTrac measurements (every 1.4 min) conducted during the entire treatment session. A median of six (range: 4 to 11) measurements were recorded per fraction, delivering a dataset of 453 measurements.

Results

Random errors (SD) for the x, y and z axes were 0.27 mm, 0.29 mm and 0.29 mm, respectively. Median 3D deviation was 0.29 mm. Of all 3D intrafractional motions, 5.5 and 0.4% exceeded 1 mm and 2 mm, respectively. A moderate correlation between treatment duration and mean 3D displacement was determined (rs = 0.45). Mean 3D deviation increased from 0.21 mm (SD = 0.26 mm) in the first 2 min to a maximum of 0.53 mm (SD = 0.31 mm) after 10 min of treatment time.

Conclusion

Pre- and post-treatment measurement is not sufficient to adequately determine the range of intrafractional head motion. Thermoplastic masks provide both reliable interfractional and intrafractional immobilization for image-guided stereotactic hypofractionated radiotherapy. Greater positioning accuracy may be obtained by reducing treatment duration (< 6 min) and applying intrafractional correction.

Trial registration

Clinicaltrials.gov, NCT03896555, Registered 01 April 2019 - retrospectively registered.
Appendix
Available only for authorised users
Literature
1.
go back to reference Verellen D, De Ridder M, Storme G. A (short) history of image-guided radiotherapy. Radiother Oncol. 2008;86(1):4–13.CrossRef Verellen D, De Ridder M, Storme G. A (short) history of image-guided radiotherapy. Radiother Oncol. 2008;86(1):4–13.CrossRef
2.
go back to reference Ramakrishna N, Rosca F, Friesen S, et al. A clinical comparison of patient setup and intra-fraction motion using frame-based radiosurgery versus a frameless image-guided radiosurgery system for intracranial lesions. Radiother Oncol. 2010;95(1):109–15.CrossRef Ramakrishna N, Rosca F, Friesen S, et al. A clinical comparison of patient setup and intra-fraction motion using frame-based radiosurgery versus a frameless image-guided radiosurgery system for intracranial lesions. Radiother Oncol. 2010;95(1):109–15.CrossRef
3.
go back to reference Wurm RE, Erbel S, Schwenkert I, et al. Novalis frameless image-guided noninvasive radiosurgery: initial experience. Neurosurgery. 2008;62(5 Suppl):A11–7 discussion A17–18.CrossRef Wurm RE, Erbel S, Schwenkert I, et al. Novalis frameless image-guided noninvasive radiosurgery: initial experience. Neurosurgery. 2008;62(5 Suppl):A11–7 discussion A17–18.CrossRef
4.
go back to reference Lamba M, Breneman JC, Warnick RE. Evaluation of image-guided positioning for frameless intracranial radiosurgery. Int J Radiat Oncol Biol Phys. 2009;74(3):913–9.CrossRef Lamba M, Breneman JC, Warnick RE. Evaluation of image-guided positioning for frameless intracranial radiosurgery. Int J Radiat Oncol Biol Phys. 2009;74(3):913–9.CrossRef
5.
go back to reference Gevaert T, Verellen D, Tournel K, et al. Setup accuracy of the Novalis ExacTrac 6DOF system for frameless radiosurgery. Int J Radiat Oncol Biol Phys. 2012;82(5):1627–35.CrossRef Gevaert T, Verellen D, Tournel K, et al. Setup accuracy of the Novalis ExacTrac 6DOF system for frameless radiosurgery. Int J Radiat Oncol Biol Phys. 2012;82(5):1627–35.CrossRef
6.
go back to reference Solberg TD, Medin PM, Mullins J, Li S. Quality assurance of immobilization and target localization systems for frameless stereotactic cranial and extracranial hypofractionated radiotherapy. Int J Radiat Oncol Biol Phys. 2008;71(1 Suppl):S131–5.CrossRef Solberg TD, Medin PM, Mullins J, Li S. Quality assurance of immobilization and target localization systems for frameless stereotactic cranial and extracranial hypofractionated radiotherapy. Int J Radiat Oncol Biol Phys. 2008;71(1 Suppl):S131–5.CrossRef
7.
go back to reference Linthout N, Verellen D, Tournel K, Storme G. Six dimensional analysis with daily stereoscopic x-ray imaging of intrafraction patient motion in head and neck treatments using five points fixation masks. Med Phys. 2006;33(2):504–13.CrossRef Linthout N, Verellen D, Tournel K, Storme G. Six dimensional analysis with daily stereoscopic x-ray imaging of intrafraction patient motion in head and neck treatments using five points fixation masks. Med Phys. 2006;33(2):504–13.CrossRef
8.
go back to reference Spadea MF, Tagaste B, Riboldi M, et al. Intra-fraction setup variability: IR optical localization vs. X-ray imaging in a hypofractionated patient population. Radiat Oncol. 2011;6:38.CrossRef Spadea MF, Tagaste B, Riboldi M, et al. Intra-fraction setup variability: IR optical localization vs. X-ray imaging in a hypofractionated patient population. Radiat Oncol. 2011;6:38.CrossRef
9.
go back to reference Blonigen BJ, Steinmetz RD, Levin L, et al. Irradiated volume as a predictor of brain radionecrosis after linear accelerator stereotactic radiosurgery. Int J Radiat Oncol Biol Phys. 2010;77(4):996–1001.CrossRef Blonigen BJ, Steinmetz RD, Levin L, et al. Irradiated volume as a predictor of brain radionecrosis after linear accelerator stereotactic radiosurgery. Int J Radiat Oncol Biol Phys. 2010;77(4):996–1001.CrossRef
10.
go back to reference Minniti G, Clarke E, Lanzetta G, et al. Stereotactic radiosurgery for brain metastases: analysis of outcome and risk of brain radionecrosis. Radiat Oncol. 2011;6:48.CrossRef Minniti G, Clarke E, Lanzetta G, et al. Stereotactic radiosurgery for brain metastases: analysis of outcome and risk of brain radionecrosis. Radiat Oncol. 2011;6:48.CrossRef
11.
go back to reference Hellerbach A, Luyken K, Hoevels M, et al. Radiotoxicity in robotic radiosurgery: proposing a new quality index for optimizing the treatment planning of brain metastases. Radiat Oncol. 2017;12(1):136.CrossRef Hellerbach A, Luyken K, Hoevels M, et al. Radiotoxicity in robotic radiosurgery: proposing a new quality index for optimizing the treatment planning of brain metastases. Radiat Oncol. 2017;12(1):136.CrossRef
12.
go back to reference Gevaert T, Steenbeke F, Pellegri L, et al. Evaluation of a dedicated brain metastases treatment planning optimization for radiosurgery: a new treatment paradigm? Radiat Oncol. 2016;11:13.CrossRef Gevaert T, Steenbeke F, Pellegri L, et al. Evaluation of a dedicated brain metastases treatment planning optimization for radiosurgery: a new treatment paradigm? Radiat Oncol. 2016;11:13.CrossRef
13.
go back to reference Ruggieri R, Naccarato S, Mazzola R, et al. Linac-based VMAT radiosurgery for multiple brain lesions: comparison between a conventional multi-isocenter approach and a new dedicated mono-isocenter technique. Radiat Oncol. 2018;13(1):38.CrossRef Ruggieri R, Naccarato S, Mazzola R, et al. Linac-based VMAT radiosurgery for multiple brain lesions: comparison between a conventional multi-isocenter approach and a new dedicated mono-isocenter technique. Radiat Oncol. 2018;13(1):38.CrossRef
14.
go back to reference Ohira S, Ueda Y, Akino Y, et al. HyperArc VMAT planning for single and multiple brain metastases stereotactic radiosurgery: a new treatment planning approach. Radiat Oncol. 2018;13(1):13.CrossRef Ohira S, Ueda Y, Akino Y, et al. HyperArc VMAT planning for single and multiple brain metastases stereotactic radiosurgery: a new treatment planning approach. Radiat Oncol. 2018;13(1):13.CrossRef
15.
go back to reference van Santvoort J, Wiggenraad R, Bos P. Positioning accuracy in stereotactic radiotherapy using a mask system with added vacuum mouth piece and stereoscopic X-ray positioning. Int J Radiat Oncol Biol Phys. 2008;72(1):261–7.CrossRef van Santvoort J, Wiggenraad R, Bos P. Positioning accuracy in stereotactic radiotherapy using a mask system with added vacuum mouth piece and stereoscopic X-ray positioning. Int J Radiat Oncol Biol Phys. 2008;72(1):261–7.CrossRef
16.
go back to reference Jin JY, Yin FF, Tenn SE, Medin PM, Solberg TD. Use of the BrainLAB ExacTrac X-ray 6D system in image-guided radiotherapy. Med Dosim. 2008;33(2):124–34.CrossRef Jin JY, Yin FF, Tenn SE, Medin PM, Solberg TD. Use of the BrainLAB ExacTrac X-ray 6D system in image-guided radiotherapy. Med Dosim. 2008;33(2):124–34.CrossRef
17.
go back to reference Chin LS, Regine WF. Principles and practice of stereotactic radiosurgery. New York: Springer; 2008.CrossRef Chin LS, Regine WF. Principles and practice of stereotactic radiosurgery. New York: Springer; 2008.CrossRef
18.
go back to reference Rosenfelder NA, Corsini L, McNair H, et al. Comparison of setup accuracy and intrafraction motion using stereotactic frame versus 3-point thermoplastic mask-based immobilization for fractionated cranial image guided radiation therapy. Pract Radiat Oncol. 2013;3(3):171–9.CrossRef Rosenfelder NA, Corsini L, McNair H, et al. Comparison of setup accuracy and intrafraction motion using stereotactic frame versus 3-point thermoplastic mask-based immobilization for fractionated cranial image guided radiation therapy. Pract Radiat Oncol. 2013;3(3):171–9.CrossRef
19.
go back to reference Kataria T, Gupta D, Karrthick KP, et al. Frame-based radiosurgery: is it relevant in the era of IGRT? Neurol India. 2013;61(3):277–81.CrossRef Kataria T, Gupta D, Karrthick KP, et al. Frame-based radiosurgery: is it relevant in the era of IGRT? Neurol India. 2013;61(3):277–81.CrossRef
20.
go back to reference Badakhshi H, Barelkowski T, Wust P, et al. Intrafraction variations in linac-based image-guided radiosurgery of intracranial lesions. Cancer Radiother. 2013;17(7):664–7.CrossRef Badakhshi H, Barelkowski T, Wust P, et al. Intrafraction variations in linac-based image-guided radiosurgery of intracranial lesions. Cancer Radiother. 2013;17(7):664–7.CrossRef
21.
go back to reference Lewis BC, Snyder WJ, Kim S, Kim T. Monitoring frequency of intra-fraction patient motion using the ExacTrac system for LINAC-based SRS treatments. J Appl Clin Med Phys. 2018;19(3):58–63.CrossRef Lewis BC, Snyder WJ, Kim S, Kim T. Monitoring frequency of intra-fraction patient motion using the ExacTrac system for LINAC-based SRS treatments. J Appl Clin Med Phys. 2018;19(3):58–63.CrossRef
22.
go back to reference Amelio D, Winter M, Habermehl D, et al. Analysis of inter- and intrafraction accuracy of a commercial thermoplastic mask system used for image-guided particle radiation therapy. J Radiat Res. 2013;54(Suppl 1):i69–76.CrossRef Amelio D, Winter M, Habermehl D, et al. Analysis of inter- and intrafraction accuracy of a commercial thermoplastic mask system used for image-guided particle radiation therapy. J Radiat Res. 2013;54(Suppl 1):i69–76.CrossRef
23.
go back to reference Wang CW, Lin YC, Tseng HM, et al. Prolonged treatment time deteriorates positioning accuracy for stereotactic radiosurgery. PLoS One. 2015;10(4):e0123359.CrossRef Wang CW, Lin YC, Tseng HM, et al. Prolonged treatment time deteriorates positioning accuracy for stereotactic radiosurgery. PLoS One. 2015;10(4):e0123359.CrossRef
Metadata
Title
Intrafractional 6D head movement increases with time of mask fixation during stereotactic intracranial RT-sessions
Authors
Julian Mangesius
Thomas Seppi
Rocco Weigel
Christoph Reinhold Arnold
Danijela Vasiljevic
Georg Goebel
Peter Lukas
Ute Ganswindt
Meinhard Nevinny-Stickel
Publication date
01-12-2019
Publisher
BioMed Central
Keyword
Radiotherapy
Published in
Radiation Oncology / Issue 1/2019
Electronic ISSN: 1748-717X
DOI
https://doi.org/10.1186/s13014-019-1425-7

Other articles of this Issue 1/2019

Radiation Oncology 1/2019 Go to the issue