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Biomedical subjects

P Manser

Publications and source records attributed to P Manser.

6 recordsLinked to original sources

Introduction of a novel dose saving acquisition mode for the PortalVision aS500 EPID to facilitate on-line patient setup verification.

In external beam radiotherapy, electronic portal imaging becomes more and more an indispensable tool for the verification of the patient setup. For the safe clinical introduction of high dose conformal radiotherapy like intensity modulated radiation therapy, on-line patient setup verification is a prerequisite to ensure that the planned dosimetric coverage of the tumor volume is actually realized in the patient. Since the direction of setup fields often deviates from the direction of the treatment beams, extra dose is delivered to the patient during the acquisition of these portal images which may reach clinical relevance. The aim of this work was to develop a new acquisition mode for the PortalVision aS500 electronic portal imaging device from Varian Medical Systems that allows one to take portal images with reduced dose while keeping good image quality. The new acquisition mode, called RadMode, selectively enables and disables beam pulses during image acquisition allowing one to stop wasting valuable dose during the initial acquisition of "reset frames." Images of excellent quality can be taken with 1 MU only. This low dose per image facilitates daily setup verification with considerably reduced extra dose.

Electronics, Medical↗

Monte Carlo simulation of a dynamic MLC: implementation and applications.

PURPOSE: Study of behavior and influence of a multileaf collimator (MLC) on dose calculation, verification, and portal energy spectra in the case of intensity-modulated fields obtained with a step-and-shoot or a dynamic technique. METHODS: The 80-leaf MLC for the Varian Clinac 2300 C/D was implemented in a previously developed Monte Carlo (MC) based multiple source model (MSM) for a 6 MV photon beam. Using this model and the MC program GEANT, dose distributions, energy fluence maps and energy spectra at different portal planes were calculated for three different MLC applications. RESULTS: The comparison of MC-calculated dose distributions in the phantom and portal plane, with those measured with films showed an agreement within 3% and 1.5 mm for all cases studied. The deviations mainly occur in the extremes of the intensity modulation. The MC method allows to investigate, among other aspects, dose components, energy fluence maps, tongue-and-groove effects and energy spectra at portal planes. CONCLUSION: The MSM together with the implementation of the MLC is appropriate for a number of investigations in intensity-modulated radiation therapy (IMRT).

Computer Simulation↗

Monte Carlo simulation of a dynamic MLC based on a multiple source model.

Detailed knowledge of the characteristics of the radiation field shaped by a multileaf collimator (MLC) is essential in intensity modulated radiotherapy (IMRT). A previously developed multiple source model (MSM) for a 6 MV beam was extended to a 15 MV beam and supplemented with an accurate model of an 80-leaf dynamic MLC. Using the supplemented MSM and the MC code GEANT, lateral dose distributions were calculated in a water phantom and a portal water phantom. A field which is normally used for the validation of the step and shoot technique and a field from a realistic IMRT treatment plan delivered with dynamic MLC are investigated. To assess possible spectral changes caused by the modulation of beam intensity by an MLC, the energy spectra in five portal planes were calculated for moving slits of different widths. The extension of the MSM to 15 MV was validated by analysing energy fluences, depth doses and dose profiles. In addition, the MC-calculated primary energy spectrum was verified with an energy spectrum which was reconstructed from transmission measurements. MC-calculated dose profiles using the MSM for the step and shoot case and for the dynamic MLC case are in very good agreement with the measured data from film dosimetry. The investigation of a 13 cm wide field shows an increase in mean photon energy of up to 16% for the 0.25 cm slit compared to the open beam for 6 MV and of up to 6% for 15 MV, respectively. In conclusion, the MSM supplemented with the dynamic MLC has proven to be a powerful tool for investigational and benchmarking purposes or even for dose calculations in IMRT.

Computer Simulation↗

A multiple source model for 6 MV photon beam dose calculations using Monte Carlo.

A multiple source model (MSM) for the 6 MV beam of a Varian Clinac 2300 C/D was developed by simulating radiation transport through the accelerator head for a set of square fields using the GEANT Monte Carlo (MC) code. The corresponding phase space (PS) data enabled the characterization of 12 sources representing the main components of the beam defining system. By parametrizing the source characteristics and by evaluating the dependence of the parameters on field size, it was possible to extend the validity of the model to arbitrary rectangular fields which include the central 3 x 3 cm2 field without additional precalculated PS data. Finally, a sampling procedure was developed in order to reproduce the PS data. To validate the MSM, the fluence, energy fluence and mean energy distributions determined from the original and the reproduced PS data were compared and showed very good agreement. In addition, the MC calculated primary energy spectrum was verified by an energy spectrum derived from transmission measurements. Comparisons of MC calculated depth dose curves and profiles, using original and PS data reproduced by the MSM, agree within 1% and 1 mm. Deviations from measured dose distributions are within 1.5% and 1 mm. However, the real beam leads to some larger deviations outside the geometrical beam area for large fields. Calculated output factors in 10 cm water depth agree within 1.5% with experimentally determined data. In conclusion, the MSM produces accurate PS data for MC photon dose calculations for the rectangular fields specified.

Algorithms↗

Granuloma pouch assay. II. Induction of 6-thioguanine resistance by MNNG and benzo[a]pyrene in vivo.

Growth of granulation tissue was initiated with croton oil on the inside of a subcutaneous air pouch, on the back of adult male rats. Two days later, N-methyl-N'-nitro-N-nitrosoguanidine (MNNG) and benzo[a]pyrene (BP) were applied directly into the pouch in doses ranging from 0.05 to 1.8 mg and from 0.03 to 0.5 mg, resp. The granulation tissue was excised after 48 h. Isolated single cells were checked for their 6-thioguanine resistance in vitro. The influence of cell density during expression time in vitro, of 6-thioguanine concentration and cell density in selective media on the recovery of mutant cells was investigated. The spontaneous mutation frequency was 0.53 x 10(-5). There was a dose-dependent increase in mutation frequencies with both compounds. The frequency was 5 times as high with MNNG as with BP.

Animals↗

Granuloma pouch assay. I. Induction of ouabain resistance by MNNG in vivo.

Growth of granulation tissue was induced in rats inside a subcutaneous air pouch by injection of croton oil. Granulation tissue, isolated and cultured in vitro, gave satisfactory and reproducible cloning efficiency of fibroblast-like cells. This experimental model system was used to study the induction of autosomal point mutations in vivo leading to ouabain resistance. For this purpose the mutagen MNNG was administered in the granuloma pouch, and the formation of ouabain-resistant clones was determined in vitro. Various application schedules, expression times in vivo and selective conditions in vitro were evaluated. The highest frequencies of ouabain-resistant clones were found when MNNG was injected into the pouch 24--48 h after induction of granulation tissue, followed by an expression time in vivo of 24--48 h. No ouabain-resistant clones were formed by cells isolated from untreated rats or from animals receiving the highest tolerated doses of MNNG per os or by intraperitoneal injection. The potential usefulness of the granuloma pouch assay for the evaluation of mutagenic and carcinogenic substances in vivo is discussed.

Animals↗