| Literature DB >> 31888680 |
Christoph Losert1, Roel Shpani1, Robert Kießling1, Philipp Freislederer1, Minglun Li1, Franziska Walter1, Maximilian Niyazi1, Michael Reiner1, Claus Belka1, Stefanie Corradini2.
Abstract
BACKGROUND: Volumetric Modulated Arc Therapy (VMAT) techniques have recently been implemented in clinical practice for total-body irradiation (TBI). To date, most techniques still use special couches, translational tables, or other self-made immobilization devices for dose delivery. Aim of the present study was to report the first results of a newly developed rotatable tabletop designed for VMAT-TBI.Entities:
Keywords: Intensity modulated radiotherapy (IMRT); Leukemia; Positioning device; Tabletop; Tomotherapy; Total body irradiation; Total marrow irradiation; Treatment time; Volumetric modulated arc therapy (VMAT)
Mesh:
Year: 2019 PMID: 31888680 PMCID: PMC6937701 DOI: 10.1186/s13014-019-1445-3
Source DB: PubMed Journal: Radiat Oncol ISSN: 1748-717X Impact factor: 3.481
Fig. 1Coronal (a left) and axial (a right) CT-scan of the ball bearing rotational unit (1), holding the TBI-tabletop (2) on the linac couchtop (3). Carbon fixation buttons (4) lock the unit in head-first and feet-first positions to prevent unintended rotation. b shows the tabletop on the linac couchtop with integrated immobilization components
Fig. 2a-c Scheme and Example of patient setup on the rotatable tabletop. Image (c) shows the rotation from head-first to the feet-first-position. (1) Carbon fixation button. (2) Holding bars to facilitate rotation of the tabletop through staff (the patient weight is mainly on the rotational unit). (3) Markers for isocenters 1, 3 and 5. (4) Indexed arm bar. (5) Fixed marker for the baseline table coordinates of the “0” position (0-coordinate couch marker) of the iBEAM evo couchtable (Elekta AB, Stockholm, Sweden) at the linac, to enable the prediction of the final absolute table coordinates for a collision-free treatment delivery
Fig. 3a Optimized VMAT-TBI plan. b Dose distribution without beam 3, illustrating the smooth and broad dose transition between the beams. c Robustness for small longitudinal isocenter displacements tested with a 1 cm cranial shift of isocenter 3. d Robustness check with all beams shifted 2 cm laterally
Fig. 4Planning principle of VMAT TBI. Optimization of FFS plan with an additional beam (a) that is deleted after optimization (b); this approach leads to a broad and smooth dose wash-out at the FFS-HFS junction area. The FFS dose is used as a bias for the optimization of the HFS plan (c), resulting in a homogenous summation dose in the whole body (d)
Fig. 5Examplary dose distribution of a VMAT TBI patient with axial slices in (right) and between (left) isocenter positions. Isodoses +/− 10% of the prescribed dose of 12Gy are shown
Patient and treatment characteristics
| Patient | diagnosis | gender | age (years) | total dose | single dose | fractions | patient height | patient weight | number of isocenters | longitudinal isocenter shift HFS | longitudinal isocenter shift FFS | MU applied | treatment time (h:m) fraction 1 | no of CBCT | treatment time (h:m) fraction 2 | Time difference Fx1 to Fx2 |
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| 1 | AML | m | 43 | 4Gy | 2Gy | 2 | 178 cm | 85 kg | 6 | 25 cm | 35 cm | 7168MU | 0:59 | 3 | 1:00 | + 0:01 |
| 2 | AML | m | 60 | 4Gy | 2Gy | 2 | 180 cm | 82 kg | 6 | 26 cm | 34 cm | 7744MU | 0:53 | 3 | 0:31 | 0:22 |
| 3 | AML | m | 59 | 4Gy | 2Gy | 2 | 179 cm | 74 kg | 6 | 26 cm | 34 cm | 6066MU | 1:07 | 4 | 0:31 | 0:36 |
| 4 | AML | m | 52 | 4Gy | 2Gy | 2 | 178 cm | 88 kg | 6 | 26 cm | 34 cm | 6999MU | 0:46 | 3 | 0:35 | 0:11 |
| 5 | AML | w | 46 | 4Gy | 2Gy | 2 | 169 cm | 52 kg | 6 | 25 cm | 32 cm | 6363MU | 0:51 | 3 | 0:27 | 0:24 |
| 6 | AML | w | 40 | 4Gy | 2Gy | 2 | 164 cm | 67 kg | 6 | 25 cm | 30 cm | 6150MU | 0:51 | 3 | 0:45 | 0:06 |
| 7 | AML | w | 47 | 4Gy | 2Gy | 2 | 170 cm | 80 kg | 6 | 26 cm | 29 cm | 6531MU | 1:04 | 3 | 0:28 | 0:36 |
| 8 | AML | w | 51 | 4Gy | 2Gy | 2 | 167 cm | 71 kg | 6 | 25 cm | 30 cm | 5868MU | 0:52 | 3 | 0:44 | 0:08 |
| 9 | AML | m | 37 | 4Gy | 2Gy | 2 | 164 cm | 47 kg | 6 | 25 cm | 30 cm | 5782MU | 0:53 | 3 | 0:50 | 0:03 |
| 10 | AML | w | 50 | 4Gy | 2Gy | 2 | 168 cm | 78 kg | 6 | 25 cm | 30 cm | 6666MU | 0:51 | 3 | 0:50 | 0:01 |
| 11 | AML | m | 49 | 8Gy | 2Gy | 4 | 176 cm | 98 kg | 6 | 26 cm | 32 cm | 7033MU | 1:17 | 3 | 1:05 | 0:12 |
| 12 | AML | m | 22 | 12Gy | 2Gy | 6 | 179 cm | 70 kg | 6 | 26 cm | 32 cm | 6036MU | 0:52 | 3 | 0:38 | 0:14 |
| 13 | AML | m | 23 | 8Gy | 2Gy | 4 | 171 cm | 70 kg | 6 | 26 cm | 34 cm | 5778MU | 0:49 | 4 | 0:28 | 0:21 |
| 14 | AML | w | 21 | 4Gy | 2Gy | 2 | 156 cm | 39 kg | 6 | 23 cm | 23 cm | 5366MU | 0:51 | 3 | 0:31 | 0:20 |
| 15 | AML | w | 51 | 4Gy | 2Gy | 2 | 182 cm | 94 kg | 6 | 26 cm | 34 cm | 6916MU | 1:15 | 3 | 0:30 | 0:45 |
| 16 | AML | w | 50 | 8Gy | 2Gy | 4 | 169 cm | 63 kg | 6 | 25 cm | 30 cm | 6870MU | 1:28 | 3 | 0:40 | 0:48 |
| 17 | AML | m | 43 | 10Gy | 2Gy | 5 | 186 cm | 89 kg | 7 | 26 cm | 26 cm (3) | 7044MU | 0:59 | 3 | 0:33 | 0:26 |
| 18 | AML | w | 42 | 4Gy | 2Gy | 2 | 167 cm | 62 kg | 6 | 25 cm | 30 cm | 6382MU | 0:51 | 4 | 0:31 | 0:20 |
| 19 | AML | w | 59 | 8Gy | 2Gy | 4 | 165 cm | 62 kg | 6 | 25 cm | 30 cm | 5952MU | 0:46 | 3 | 0:28 | 0:18 |
| 20 | AML | m | 22 | 12Gy | 2Gy | 6 | 180 cm | 75 kg | 6 | 26 cm | 34 cm | 6803MU | 0:55 | 3 | 0:40 | 0:15 |
| mean | (m:w/ 10:10) | 43 | (4Gy:8Gy:10Gy:12Gy/ 13:4:1:2) | 172 cm | 71 kg | (6:7 isoceters/ 19:1) | 25 cm | 31 cm | 6476MU | 0:57 | 0:38 | 0:20 | ||||