| Literature DB >> 25875609 |
Timo Wilhelm-Buchstab1, Barbara Myrthe Buchstab1, Christina Leitzen1, Stephan Garbe1, Thomas Müdder1, Susanne Oberste-Beulmann1, Alois Martin Sprinkart1, Birgit Simon1, Michael Nelles1, Wolfgang Block1, Felix Schoroth1, Hans Heinz Schild1, Heinrich Schüller1.
Abstract
BACKGROUND: We observed visual sensations (VSs) in patients undergoing intensity modulated radiotherapy (IMRT) of the brain without the beam passing through ocular structures. We analyzed this phenomenon especially with regards to reproducibility, and origin. METHODS ANDEntities:
Mesh:
Year: 2015 PMID: 25875609 PMCID: PMC4398354 DOI: 10.1371/journal.pone.0123440
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Beam path an occurrence of visual sensations in relation to bony structure.
| Patient | Beams/fraction | fractions | VSs | VSs above the orbital roof | VSs below the orbital roof |
|---|---|---|---|---|---|
| 1 | 472 | 17 | 74 | 29 | 45 |
| 2 | 637 | 20 | 343 | 198 | 145 |
| 3 | 820 | 7 | 530 | 232 | 298 |
| 4 | 574 | 16 | 99 | 54 | 45 |
| 5 | 435 | 13 | 113 | 1 | 112 |
| 6 | 458 | 17 | 1481 | 592 | 889 |
| 7 | 877 | 22 | 950 | 514 | 436 |
| 8 | 688 | 26 | 1132 | 622 | 510 |
| 9 | 478 | 15 | 478 | 143 | 335 |
| 10 | 359 | 22 | 759 | 585 | 174 |
| Sum | 175 | 5959 | 2970 | 2989 |
During 175 treatment fractions 97285 beams were administered. 5959 visual sensations were registered. To exclude direct interaction with the retina all supraorbital VSs caused by beams with central beam axis distance < ½ beam size to the orbital roof were eliminated. From this 2970 (50%) VSs occurred above the orbital roof without direct interaction to the retina.
Fig 1Analysis of the 8x8 visual field matrix of all 10 Patients (100 fractions).
Summation of all perceptions independent from primary tumor site (a). Perception of visual sensations divided in patients with right (b) and left sided tumor location (c). Visual sensations were mainly projected in the upper right or left and the central visual field but not in the lower parts suitable for the majority of the beams. No relationship between primary tumor site and location of light perception can be made. Interestingly most beams were located supraorbital. However the main VSs were registered in the upper visual field and not, as expected in the lower quadrants.
Fig 2Diagram of the registered data of all patients 1–10 (a-j) shows patient specific patterns of relative frequency of the visual sensations (1 = light sensation was registered in all fractions) related to cranio-caudal couch travel [mm] (lower horizontal axis) and fraction time [s] (upper horizontal axis).
Position of orbital roof is marked with a red dashed line. Every patient showed a pattern, which indicates that the VSs are induced by specific beam paths.
Fig 3Anatomic correlation of the treatment beams using standardized MRI image series.
The different frequency can be seen in the colored bar. (a) Exposed brain areas during all 175 treatment sessions. Most beams were located in the center of the brain. (b) All beams passing the eyeballs in a distance > 4cm, so that direct beam path did not hit the eyeballs. (c) All beams which induced a visual sensation. Highest frequency is seen in the mid brain and temporal lobe, less in the occipital lobe, least in the parietal brain areas. (d) All beams passing the eyes in a distance > 4 cm inducing a visual sensation. Direct interaction of radiation with the retina is impossible for these visual perceptions. This anatomic correlation shows a high frequency along the intracerebral visual pathways.
Probabilities of anatomic structures along the optic pathway for being the origin of radiation induced visual sensations.
| VOI | Number of beams | Beams inducing visual sensations | ||||||
|---|---|---|---|---|---|---|---|---|
| Average | Sigma | Min | Max | Average [%] | Sigma | Min | Max | |
| EB | 110.6 | 39.5 | 24 | 208 | 10.1 | 5.1 | 1 | 26 |
| ON (intra) | 168.5 | 40 | 85 | 277 | 15.4 | 4.1 | 6 | 25 |
| ON (retro)CH, OT | 344.5 | 66.7 | 199 | 542 | 22.3 | 1.9 | 14 | 27 |
| Brodman areas | ||||||||
| A17 | 419.3 | 63.3 | 282 | 611 | 14.8 | 2.1 | 6 | 20 |
| A18 | 390.5 | 55.1 | 222 | 577 | 12.6 | 3.6 | 1 | 22 |
| A19 | 398.2 | 55.3 | 219 | 590 | 11.2 | 5.2 | 1 | 21 |
| A20 | 400.5 | 86.1 | 158 | 606 | 17.5 | 1.8 | 11 | 23 |
| A21 | 476.4 | 54.7 | 260 | 609 | 17.7 | 2.6 | 6 | 25 |
| A37 | 420.1 | 66.4 | 207 | 609 | 16.1 | 2 | 7 | 22 |
Volume of interest (VOI), including the eyeballs (EB), optic nerve intraorbital (ON intra), optic nerve retroorbital (ON retro), chiasma (CH), optic tract (OT) and Brodman Areas A17, A18, A19, A20, A21 and A37, showing different probability for being the origin of the visual sensations based on the frequency of light perception, when they are hit by a beam. Interestingly the probability increases in retroorbital structures, especially optic chiasm, optic tract and in the brodman areas 20, 21, 37. The eye balls showed lowest probability of all VOIs.
Dose distribution in organs at risk.
| Optic chiasm | Optic nerve left | Optic nerve right | |||||||
|---|---|---|---|---|---|---|---|---|---|
| Pat. | min | max | mean | min | max | mean | min | max | mean |
| 1 | 15.20 | 39.52 | 18.69 | 6.05 | 63.44 | 14.25 | 5.68 | 25.65 | 20.40 |
| 2 | 9.60 | 30.92 | 16.01 | 10.97 | 34.42 | 18.82 | 8.41 | 12.84 | 10.13 |
| 3 | 6.00 | 35.44 | 13.09 | 5.99 | 14.94 | 9.56 | 4.14 | 30.37 | 16.32 |
| 4 | 27.60 | 42.90 | 35.83 | 14.00 | 46.24 | 35.76 | 13.74 | 38.00 | 28.49 |
| 5 | 28.20 | 58.56 | 51.66 | 12.42 | 54.43 | 46.18 | 11.63 | 32.38 | 24.78 |
| 6 | 18.25 | 50.36 | 25.27 | 8.59 | 27.49 | 20.71 | 7.17 | 46.39 | 23.03 |
| 7 | 7.35 | 46.93 | 21.43 | 5.13 | 11.48 | 8.56 | 4.30 | 25.31 | 11.75 |
| 8 | 29.77 | 33.98 | 32.35 | 9.47 | 28.88 | 14.78 | 8.17 | 30.23 | 12.60 |
| 9 | 5.73 | 26.62 | 9.26 | 7.42 | 23.79 | 12.71 | 4.29 | 8.20 | 5.39 |
| 10 | 2.04 | 32.39 | 5.09 | 0.94 | 4.55 | 1.35 | 0.88 | 3.31 | 1.19 |
Doses [Gy] in organs at risk of all patients for 30 treatment fractions are demonstrated. Maximum shielding of the eyeballs resulted in mean doses in the optic nerves from 1.19 Gy to 46.18 Gy (max 63.44, min 0,88 Gy). The mean doses of the optic chiasm ranged from 5.09 Gy to 51.66 Gy (max 2.04 Gy, min 58.56).
Spatio-temporal distances of the first registered visual sensation.
| Patient | Couch speed [cm/s] | Position 1 light sensation | Distance 1. light sensation to orbital roof | ||
|---|---|---|---|---|---|
| time [s] | distance [mm] | time [s] | distance [mm] | ||
| 1 | 0.047 | 107 | 50.3 | 34.7 | 16.3 |
| 2 | 0.049 | 88.5 | 43.4 | 114.5 | 56.1 |
| 3 | 0.027 | 301 | 81.3 | 61.4 | 16.6 |
| 4 | 0.046 | 171 | 78.7 | 38.8 | 17.8 |
| 5 | 0.045 | 19.5 | 8.8 | 33.4 | 15 |
| 6 | 0.034 | 55.5 | 18.9 | 122.7 | 41.7 |
| 7 | 0.045 | 128.5 | 57.8 | 78.8 | 35.5 |
| 8 | 0.045 | 65 | 29.3 | 61.2 | 27.5 |
| 9 | 0.022 | 29 | 6.4 | 201.2 | 443 |
| 10 | 0.045 | 12 | 5.4 | 57.9 | 26.1 |
| Max | 201.2 | 56.1 | |||
| Min | 33.4 | 15 | |||
| Av | 80.5 | 29.7 | |||
| Med | 61.3 | 26.8 | |||
| σ | 52.5 | 14.2 | |||
Patient specific spatio-temporal distances between the first registered light sensation and the bony structure orbital roof are shown. The interval between the beginning of the radiation and the first VSs ranges from 12 s (5.4 mm) to 301 s (81,3 mm). The distance between the first VSs and the orbital roof ranged from 33,4 s (15 mm) to 201,2 s (56,1 mm). All measured distances of the first beam inducing a VSs are more than ½ beam width away from the orbital roof.