| Literature DB >> 29282089 |
Anne Richter1, Stefan Weick2, Thomas Krieger2, Florian Exner2, Sonja Kellner2, Bülent Polat2, Michael Flentje2.
Abstract
BACKGROUND: The aim of this work is to validate the Dynamic Planning Module in terms of usability and acceptance in the treatment planning workflow.Entities:
Keywords: Adaptation; Lung cancer; Re-irradiation; Re-planning
Mesh:
Year: 2017 PMID: 29282089 PMCID: PMC5745858 DOI: 10.1186/s13014-017-0943-4
Source DB: PubMed Journal: Radiat Oncol ISSN: 1748-717X Impact factor: 3.481
Overview of scheduled cases for dynamic planning sorted by location and purpose (adaptation or re-irradiation)
| Location | Cases | Plan adaptation | Re-irradiation | |||
|---|---|---|---|---|---|---|
| Absolute | Relative in % | Absolute | Relative in % | Absolute | Relative in % | |
| Cranial | 29 | 8 | 6 | 4 | 23 | 11 |
| Head and neck | 36 | 10 | 12 | 8 | 24 | 11 |
| Thorax | 189 | 51 | 97 | 62 | 92 | 43 |
| Abdomen | 27 | 7 | 16 | 10 | 11 | 5 |
| Pelvis | 79 | 21 | 21 | 13 | 58 | 27 |
| Other | 10 | 3 | 4 | 3 | 6 | 3 |
| 370 | 100 | 156 | 100 | 214 | 100 | |
Example cases and treatment concepts (I: main course, II: boost course), imaging interval and delivered fractions before plan adaptation
| Case | Disease Type | Treatment concept | Fractionation Scheme (SIB) | Planned fractions | Imaging interval | Delivered fractions | |
|---|---|---|---|---|---|---|---|
| in days | |||||||
| #1 | Tongue cancer | Primary RCT | I | 56.1/66.0/70.95Gy | 33 | 49 | 6 |
| #2 | CUP | Adjuvant RT | I | 59.4/66.0Gy | 33 | 48 | 26 |
| #3 | Lung cancer | Primary RCT | I | 50.4/61.6Gy | 28 | 12 | 1 |
| #4 | Lung cancer | Primary RCT | I | 50.4/61.6Gy | 28 | 32 | 14 |
| #5 | Prostate cancer | Adjuvant RT and pelvic LN | I | 45.9/56.7Gy | 27 | 18 | 1 |
| II | 10.2/12.6Gy | 6 | |||||
| #6 | Prostate cancer | Palliative RT | I | 40.0/50.0Gy | 20 | 25 | 8 |
| II | 10Gy | 5 |
RCT Radio-Chemo Therapy, RT Radiotherapy, LN Lymph nodes, CUP Cancer of unknown primacy
Fig. 1Workflow for the re-irradiation (a) and re-planning situation (b). Work steps for decision making are highlighted in red
Fig. 2Volume change of PTV as a function of treatment time for 20 patients. The treatment time shows the day within the course at which a request for plan adaptation was scheduled
Fig. 3Boxplot showing the change of mean lung dose after plan adaptation. For the subgroup of thoracic cases, mean dose was assessed for the ipsilateral and contralateral side of the lung. The box displays the upper and lower quartile and the median value (filled circle). The whiskers illustrate the minimum and maximum values
Fig. 4Example cases of anatomical changes during the treatment course for different entities. PTVs are shown in the initial CT (dashed lines, left side) and adapted PTVs in the repeated CT (solid lines, right side): a Head and neck case of tongue cancer (left) with tumor progress (right). The PTVs receiving 56,1 Gy and 66 Gy are highlighted in red and orange, respectively. b Head and neck case and CUP syndrome (left) with volume change due to edema reduction (right). PTVs receiving 59,4 Gy and 66 Gy contours are highlighted in red and orange, respectively. c Thorax case with lung cancer (left) and a growing pleural effusion (right). PTV receiving 50,4 Gy and 61,6 Gy are highlighted in red and blue, respectively. d Thorax case with lung cancer (left) and a mediastinal shift (right). PTVs receiving 50,4 Gy and 61,6 Gy are highlighted in red and blue, respectively. e Pelvis case with prostate cancer (left) and change in rectal volume (right). PTVs receiving 45,9 Gy and 56,7 Gy are highlighted in red and orange, respectively. f Pelvis case with prostate cancer and irradiation of bone and lymphatic metastasis (left) and decrease in lymph node size (right). PTVs receiving 40 Gy and 50 Gy are highlighted in red and orange, respectively
Overview of failures during automatic image registration
| Re-irradiation | ||
|---|---|---|
| Limitation | Absolute | Relative in % |
| Arm position | 18 | 8 |
| Head or pelvis rotation | 4 | 2 |
| Patient position | 2 | 1 |
| Diaphragm control | 1 | 0,5 |
| 26 | 12 | |