z-logo
open-access-imgOpen Access
Analysis of physical characteristics of Tumor Treating Fields for human glioblastoma
Author(s) -
Lok Edwin,
San Pyay,
Hua Van,
Phung Melissa,
Wong Eric T.
Publication year - 2017
Publication title -
cancer medicine
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.403
H-Index - 53
ISSN - 2045-7634
DOI - 10.1002/cam4.1095
Subject(s) - electric field , specific absorption rate , histogram , distribution (mathematics) , glioblastoma , materials science , nuclear medicine , biomedical engineering , nuclear magnetic resonance , physics , mathematics , medicine , computer science , cancer research , mathematical analysis , quantum mechanics , telecommunications , artificial intelligence , antenna (radio) , image (mathematics)
Tumor Treating Fields ( TTF ields) therapy is an approved treatment that has known clinical efficacy against recurrent and newly diagnosed glioblastoma. However, the distribution of the electric fields and the corresponding pattern of energy deposition in the brain are poorly understood. To evaluate the physical parameters that may influence TTF ields, postacquisition MP ‐ RAGE , T1 and T2 MRI sequences from a responder with a right parietal glioblastoma were anatomically segmented and then solved using finite‐element method to determine the distribution of the electric fields and rate of energy deposition at the gross tumor volume ( GTV ) and other intracranial structures. Electric field–volume histograms ( EVH ) and specific absorption rate–volume histograms ( SARVH ) were constructed to numerically evaluate the relative and/or absolute magnitude volumetric differences between models. The electric field parameters E AUC , V E 150 , E 95% , E 50% , and E 20% , as well as the SAR parameters SAR AUC , V SAR 7.5 , SAR 95% , SAR 50% , and SAR 20% , facilitated comparisons between models derived from various conditions. Specifically, TTF ields at the GTV were influenced by the dielectric characteristics of the adjacent tissues as well as the GTV itself, particularly the presence or absence of a necrotic core. The thickness of the cerebrospinal fluid on the convexity of the brain and the geometry of the tumor were also relevant factors. Finally, the position of the arrays also influenced the electric field distribution and rate of energy deposition in the GTV . Using EVH and SARVH, a personalized approach for TTF ields treatment can be developed when various patient‐related and tumor‐related factors are incorporated into the planning procedure.

The content you want is available to Zendy users.

Already have an account? Click here to sign in.
Having issues? You can contact us here