Literature DB >> 24626566

Tissue-mimicking gel phantoms for thermal therapy studies.

Ali Dabbagh1, Basri Johan Jeet Abdullah2, Chanthiriga Ramasindarum3, Noor Hayaty Abu Kasim4.   

Abstract

Tissue-mimicking phantoms that are currently available for routine biomedical applications may not be suitable for high-temperature experiments or calibration of thermal modalities. Therefore, design and fabrication of customized thermal phantoms with tailored properties are necessary for thermal therapy studies. A multitude of thermal phantoms have been developed in liquid, solid, and gel forms to simulate biological tissues in thermal therapy experiments. This article is an attempt to outline the various materials and techniques used to prepare thermal phantoms in the gel state. The relevant thermal, electrical, acoustic, and optical properties of these phantoms are presented in detail and the benefits and shortcomings of each type are discussed. This review could assist the researchers in the selection of appropriate phantom recipes for their in vitro study of thermal modalities and highlight the limitations of current phantom recipes that remain to be addressed in further studies.
© The Author(s) 2014.

Keywords:  hyperthermia; thermal ablation; thermal gels; thermal stability; tissue equivalency

Mesh:

Substances:

Year:  2014        PMID: 24626566     DOI: 10.1177/0161734614526372

Source DB:  PubMed          Journal:  Ultrason Imaging        ISSN: 0161-7346            Impact factor:   1.578


  13 in total

Review 1.  Antenna Designs for Microwave Tissue Ablation.

Authors:  Hojjatollah Fallahi; Punit Prakash
Journal:  Crit Rev Biomed Eng       Date:  2018

2.  Agarose-based Tissue Mimicking Optical Phantoms for Diffuse Reflectance Spectroscopy.

Authors:  Afrina Mustari; Izumi Nishidate; Md Abdul Wares; Takaaki Maeda; Satoko Kawauchi; Shunichi Sato; Manabu Sato; Yoshihisa Aizu
Journal:  J Vis Exp       Date:  2018-08-22       Impact factor: 1.355

3.  Evaluation of a tissue-mimicking thermochromic phantom for radiofrequency ablation.

Authors:  Andrew S Mikhail; Ayele H Negussie; Cole Graham; Manoj Mathew; Bradford J Wood; Ari Partanen
Journal:  Med Phys       Date:  2016-07       Impact factor: 4.071

4.  A simple method for determining the coagulation threshold temperature of transparent tissue-mimicking thermal therapy gel phantoms: Validated by magnetic resonance imaging thermometry.

Authors:  N Patrik Brodin; Ari Partanen; Patrik Asp; Craig A Branch; Chandan Guha; Wolfgang A Tomé
Journal:  Med Phys       Date:  2016-03       Impact factor: 4.071

5.  Gel Phantom Models for Radiofrequency and Microwave Ablation of the Liver.

Authors:  Willa J Chen; Qi Wang; Charles Y Kim
Journal:  Dig Dis Interv       Date:  2020-09-28

6.  Synchronous temperature variation monitoring during ultrasound imaging and/or treatment pulse application: a phantom study.

Authors:  Hermes A S Kamimura; Niloufar Saharkhiz; Stephen A Lee; Elisa E Konofagou
Journal:  IEEE Open J Ultrason Ferroelectr Freq Control       Date:  2021-06-03

7.  Thermochromic tissue-mimicking phantom for optimisation of thermal tumour ablation.

Authors:  Ayele H Negussie; Ari Partanen; Andrew S Mikhail; Sheng Xu; Nadine Abi-Jaoudeh; Subha Maruvada; Bradford J Wood
Journal:  Int J Hyperthermia       Date:  2016-04-20       Impact factor: 3.914

8.  Speed of sound in rubber-based materials for ultrasonic phantoms.

Authors:  A Cafarelli; P Miloro; A Verbeni; M Carbone; A Menciassi
Journal:  J Ultrasound       Date:  2016-04-21

9.  Assessing fluorescence detection and effective photothermal therapy of near-infrared polymer nanoparticles using alginate tissue phantoms.

Authors:  Eleanor E McCabe-Lankford; Theodore L Brown; Nicole H Levi-Polyachenko
Journal:  Lasers Surg Med       Date:  2018-06-28

10.  Computer simulation and physical phantom models for estimating the dielectric properties of rhinoceros tissue.

Authors:  Floris J van Zyl; Johan Marais; Martin Nieuwoudt; Thomas R Niesler
Journal:  PLoS One       Date:  2019-05-29       Impact factor: 3.240

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