instarr.in
Log In

Thermal ablation with configurable shapes: a comprehensive

$ 16.99

4.7 (419) In stock

Background Malignant tumors routinely present with irregular shapes and complex configurations. The lack of customization to individual tumor shapes and standardization of procedures limits the success and application of thermal ablation. Methods We introduced an automated treatment model consisting of (i) trajectory and ablation profile planning, (ii) ablation probe insertion, (iii) dynamic energy delivery (including robotically driven control of the energy source power and location over time, according to a treatment plan bespoke to the tumor shape), and (iv) quantitative ablation margin verification. We used a microwave ablation system and a liver phantom (acrylamide polymer with a thermochromic ink) to mimic coagulation and measure the ablation volume. We estimated the ablation width as a function of power and velocity following a probabilistic model. Four representative shapes of liver tumors < 5 cm were selected from two publicly available databases. The ablated specimens were cut along the ablation probe axis and photographed. The shape of the ablated volume was extracted using a color-based segmentation method. Results The uncertainty (standard deviation) of the ablation width increased with increasing power by ± 0.03 mm (95% credible interval [0.02, 0.043]) per watt increase in power and by ± 0.85 mm (95% credible interval [0, 2.5]) per mm/s increase in velocity. Continuous ablation along a straight-line trajectory resulted in elongated rotationally symmetric ablation shapes. Simultaneous regulation of the power and/or translation velocity allowed to modulate the ablation width at specific locations. Conclusions This study offers the proof-of-principle of the dynamic energy delivery system using ablation shapes from clinical cases of malignant liver tumors. Relevance statement The proposed automated treatment model could favor the customization and standardization of thermal ablation for complex tumor shapes. Key points • Current thermal ablation systems are limited to ellipsoidal or spherical shapes. • Dynamic energy delivery produces elongated rotationally symmetric ablation shapes with varying widths. • For complex tumor shapes, multiple customized ablation shapes could be combined. Graphical Abstract

Thermal ablation with configurable shapes: a comprehensive, automated model for bespoke tumor treatment, European Radiology Experimental

Experimental and Clinical Radiofrequency Ablation: Proposal for Standardized Description of Coagulation Size and Geometry

A randomized controlled trial of pulsed field ablation versus standard-of-care ablation for paroxysmal atrial fibrillation: The ADVENT trial rationale and design - ScienceDirect

Lesion dependence with blood flow velocity in the monopolar catheter

Thermal ablation with configurable shapes: a comprehensive, automated model for bespoke tumor treatment, European Radiology Experimental

RF-ablation pattern shaping employing switching channels of dual bipolar needle electrodes: ex vivo results

Variation in cartilage T2 and T2* mapping of the wrist: a comparison between 3- and 7-T MRI

Applied Sciences, Free Full-Text

Exploring Patterns of Dynamic Size Changes of Lesions after Hepatic Microwave Ablation in an In Vivo Porcine Model

Thermal ablation with configurable shapes: a comprehensive, automated model for bespoke tumor treatment

Due to obstacles, e.g. the ribs, planning and advancement of multiple

Illustration of horizontal deflection angle α (a) and vertical

The quantitative ablation margin (QAM) results for non-subcapsular case

Related products

Thermal Shape (Reduce Cellulite And Reshape Body) [Nagoya]

Redken Iron Shape 11 Thermal Holding Spray

XP-3D Shaper™ and XP-3D Finisher™ - Endodontic Practice US

Double hot arm and U-shape flexural thermal actuators and their

Low Hold Thermal Spray, Styling Heat Protectant