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Gamma Knife Dosimetric Differences, TMR 10 Versus Convolution Algorithm

Evaluation of Dosimetric Differences Between the TMR 10 and Convolution Algorithm for Gamma Knife Radiosurgery Planning

Status
UNKNOWN
Phases
Unknown
Study type
Observational
Source
ClinicalTrials.gov
Registry ID
NCT02374983
Enrollment
100
Registered
2015-03-02
Start date
2013-10-31
Completion date
2016-10-31
Last updated
2015-03-02

For informational purposes only — not medical advice. Sourced from public registries and may not reflect the latest updates. Terms

Conditions

Gamma Knife Radiosurgery

Keywords

Gamma Knife Radiosurgery, Radiation Dosimetry

Brief summary

Gamma Knife Radiosurgery (GKR) is a well established treatment modality for brain tumors and functional disorders of the brain. It relies on mathematical algorithms to predict dose distribution and to calculate the dose at arbitrary points in the head. For the last 25 years, doses applied using Gamma Knife Radiosurgery have been calculated using a simple algorithm, called the Tissue Maximum Ratio algorithm (TMR). Dose planning using this algorithm, relies on a number of approximations to enable fast isodose computation during treatment planning. One of the most significant of these is the approximation of the head to water-equivalent density. The increased electron density of brain and bone (relative to water) and the near-zero density of air cavities in the skull may make significant perturbations to isodose and beam-on time calculations. With the advent of faster workstations, the effect of tissue in-homogeneities can finally be calculated in reasonable time during the treatment planning process; a newer, more modern algorithm known as convolution algorithm is now commercially available. It uses the values of density indicated in the CT scan to predict the dose distribution and is expected to more accurately calculate radiation dose, although it needs further investigation before clinical implementation. Inter- and intra-indication differences between the old and new algorithms need to be understood before this method can be confidently employed in a clinical setting. It is the aim of this study to understand the dosimetric differences between these dose calculation algorithms and to evaluate the implications of using the convolution algorithm for GKR. A large number of treatments will be re-planned using the convolution algorithm and compared to the TMR plans used to treat the patients. Beam-on-time, which is proportional to dose and a number of commonly used metrics for the targets such as coverage, selectivity, gradient index, and mean and maximum dose, will be estimated with both algorithms. Subgroup analysis will be done to assess whether any factor such as diagnosis, size of the head or location of the target could impact on the relative difference between the methods. The treatment plans will be compared and the potential implications on treatment planning will be elucidated.

Interventions

OTHERGamma knife radiosurgery re-planning with convolution algorithm

The convolution algorithm, which uses the correlation between CT imaging density in Hounsfield units (HU) and electron density (ρe) of the tissues as input to predict dose distribution, can provide a better simulation of real delivered dose for GKR. By more accurately predicting the dose delivered, a better prediction of clinical effects can be made, increasing the potential clinical efficacy of treatment. Convolution algorithm is now available in Leksell GammaPlan® 10 but there is not enough clinical data to support its use over TMR 10, which is the current clinical standard. Using convolution algorithm to recalculate the dose for the otherwise unaltered TMR 10 plan will provide valuable insight and understanding of the dosimetric differences between these planning algorithms.

Sponsors

University College London Hospitals
CollaboratorOTHER
University College, London
Lead SponsorOTHER

Study design

Time perspective
PROSPECTIVE

Eligibility

Sex/Gender
ALL
Age
18 Years to No maximum
Healthy volunteers
No

Inclusion criteria

* Adult patients receiving Gamma Knife treatment for any diagnosis in the Gamma Knife centre at QSRC. * The subject consents to participate in the study and consent to have a stereotactic non contrast CT scan of the brain after GKR has finished.

Exclusion criteria

* Inability to consent * Younger than 18 years of age: Children are not eligible to give consent by themselves and at the moment only adults are being treated at the QSRC. * Patient is not suitable for CT scan: There are no absolute clinical contraindications for CT scan. However, for the purpose of the study, pregnancy is considered an absolute contraindication. Claustrophobia or anxiety disorders are considered a relative contraindication; however, this is more likely to affect the subject ability to tolerate Gamma Knife treatment and MRI scanning, which would make the patient not eligible or the study. * Co-morbidity or previous treatment in the patient is not to be considered as

Design outcomes

Primary

MeasureTime frameDescription
Beam-on time (difference in the Beam-on-time of the treatment plans obtained using TMR 10 and convolution algorithm for each lesion treated)Beam-on time obtained with the TMR 10 algorithm at the time of treatment (baseline) vs Beam-on time observed when the treatment is re-planned with the convolution algorithm, that being a few hours after the actual treatment is delivered (maximum 1 day)The difference in the Beam-on-time of the treatment plans obtained using TMR 10 and convolution algorithm for each lesion treated will be the primary outcome of the study

Countries

United Kingdom

Contacts

Primary ContactAlvaro Villabona
a.villabona.11@ucl.ac.uk+4402034484076

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Feb 4, 2026