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1.
Phys Med Biol ; 69(8)2024 Apr 04.
Artículo en Inglés | MEDLINE | ID: mdl-38417178

RESUMEN

Objective.Alternating electric fields (AEF) therapy is a treatment modality for patients with glioblastoma. Tumor characteristics such as size, location, and extent of peritumoral edema may affect the AEF strength and distribution. We evaluated the sensitivity of the AEFs in a realistic 3D rat glioma model with respect to these properties.Approach.The electric properties of the peritumoral edema were varied based on calculated and literature-reported values. Models with different tumor composition, size, and location were created. The resulting AEFs were evaluated in 3D rat glioma models.Main results.In all cases, a pair of 5 mm diameter electrodes induced an average field strength >1 V cm-1. The simulation results showed that a negative relationship between edema conductivity and field strength was found. As the tumor core size was increased, the average field strength increased while the fraction of the shell achieving >1.5 V cm-1decreased. Increasing peritumoral edema thickness decreased the shell's mean field strength. Compared to rostrally/caudally, shifting the tumor location laterally/medially and ventrally (with respect to the electrodes) caused higher deviation in field strength.Significance.This study identifies tumor properties that are key drivers influencing AEF strength and distribution. The findings might be potential preclinical implications.


Asunto(s)
Neoplasias Encefálicas , Terapia por Estimulación Eléctrica , Glioblastoma , Glioma , Linfocinas , Humanos , Ratas , Animales , Neoplasias Encefálicas/terapia , Neoplasias Encefálicas/patología , Terapia por Estimulación Eléctrica/métodos , Glioma/terapia , Glioblastoma/patología
2.
Phys Med Biol ; 68(20)2023 10 06.
Artículo en Inglés | MEDLINE | ID: mdl-37703902

RESUMEN

Objective.Application of alternating electrical fields (AEFs) in the kHz range is an established treatment modality for primary and recurrent glioblastoma. Preclinical studies would enable innovations in treatment monitoring and efficacy, which could then be translated to benefit patients. We present a practical translational process converting image-based data into 3D rat head models for AEF simulations and study its sensitivity to parameter choices.Approach.Five rat head models composed of up to 7 different tissue types were created, and relative permittivity and conductivity of individual tissues obtained from the literature were assigned. Finite element analysis was used to model the AEF strength and distribution in the models with different combinations of head tissues, a virtual tumor, and an electrode pair.Main results.The simulations allowed for a sensitivity analysis of the AEF distribution with respect to different tissue combinations and tissue parameter values.Significance.For a single pair of 5 mm diameter electrodes, an average AEF strength inside the tumor exceeded 1.5 V cm-1, expected to be sufficient for a relevant therapeutic outcome. This study illustrates a robust and flexible approach for simulating AEF in different tissue types, suitable for preclinical studies in rodents and translatable to clinical use.


Asunto(s)
Terapia por Estimulación Eléctrica , Glioblastoma , Humanos , Ratas , Animales , Glioblastoma/patología , Electricidad , Conductividad Eléctrica , Terapia por Estimulación Eléctrica/métodos
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