Intelligent non-invasive modeling of ultrasound-induced temperature in tissue phantoms

被引:4
|
作者
Ferreira, R. [1 ]
Ruano, M. G. [1 ,2 ]
Ruano, A. E. [1 ,3 ]
机构
[1] Univ Algarve, Fac Sci & Technol, Faro, Portugal
[2] Univ Coimbra, CISUC, P-3000 Coimbra, Portugal
[3] Univ Lisbon, Inst Super Tecn, IDMEC, Lisbon, Portugal
关键词
Non-invasive; Temperature estimation; Ultrasound; Neural networks; Tissue phantoms;
D O I
10.1016/j.bspc.2016.11.017
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Raising temperature of human cells (hyperthermia) is an ancient tool for tumor masses reduction and extinction, actually even before the existence of a molecular understanding of cancer cells. Hyperthermia is being increasingly used for patients' rehabilitation and oncological diseases' treatment but still constitutes a major driver for researching more efficient and reliable therapeutic usage aiming at outstanding patients wellbeing and socio-economic benefits. Efficient hyperthermia practice demands knowledge about the exact amount of heating required at a particular tissue location, as well as information concerning the spatial heating distribution. Both of these processes require accurate characterization. Until now, ultrasound heating treatments are being monitored by magnetic resonance imaging (MRI), recognized as being capable of achieving a 0.5 degrees C/cm(3) temperature resolution [1], thereby imposing a gold standard in this field. However, one can notice that MRI-based techniques, besides the inconvenient instrumental cost, obliges the presence of a team of expert clinicians and limits the hyperthermia ultrasound treatment area due to the space restrictions of an MRI examination procedure. This article introduces a novel noninvasive modelling approach of ultrasound-induced temperature propagation in tissues, to be used as a cost effective alternative to MRI monitoring of ultrasound therapeutic techniques, achieving a maximum temperature resolution of 0.26 degrees C/cm(3), clearly inferior to the MRI gold standard resolution of 0.5 degrees C/cm(3). In order to derive the model, and avoiding painful invasive in-vivo sampling, a phantom was employed, whose composition respects the human tissues' reaction to ultrasound beams. In contrast with previous works of the authors, in the present paper we study the possibility of using b-spline neural networks (BSNN) as reliable noninvasive estimator of temperature propagation in phantoms [2,3]. The proposed methodology achieves better results than previous approaches, does not require the use of an Imaging Ultrasound transducer and, as the proposed models are piecewise polynomial models, they can be easily inverted and used in closed-loop control of therapeutic ultrasound instruments. (C) 2016 Elsevier Ltd. All rights reserved.
引用
收藏
页码:141 / 150
页数:10
相关论文
共 50 条
  • [1] Non-invasive modelling of ultrasound-induced temperature in tissues: a b-splines neural network solution
    Ferreira, R.
    Ruano, M. G.
    Ruano, A. E.
    [J]. IFAC PAPERSONLINE, 2016, 49 (05): : 297 - 302
  • [2] ULTRASOUND-INDUCED BUBBLE CLUSTERS IN TISSUE-MIMICKING AGAR PHANTOMS
    Movahed, Pooya
    Kreider, Wayne
    Maxwell, Adam D.
    Dunmire, Barbrina
    Freund, Jonathan B.
    [J]. ULTRASOUND IN MEDICINE AND BIOLOGY, 2017, 43 (10): : 2318 - 2328
  • [3] Bimodal microwave and ultrasound phantoms for non-invasive clinical imaging
    Enrique Villa
    Natalia Arteaga-Marrero
    Javier González-Fernández
    Juan Ruiz-Alzola
    [J]. Scientific Reports, 10
  • [4] Bimodal microwave and ultrasound phantoms for non-invasive clinical imaging
    Villa, Enrique
    Arteaga-Marrero, Natalia
    Gonzalez-Fernandez, Javier
    Ruiz-Alzola, Juan
    [J]. SCIENTIFIC REPORTS, 2020, 10 (01)
  • [5] Focused ultrasound-induced blood-brain barrier opening for non-viral, non-invasive, and targeted gene delivery
    Lin, Chung-Yin
    Hsieh, Han-Yi
    Pitt, William G.
    Huang, Chiung-Yin
    Tseng, I-Chou
    Yeh, Chih-Kuang
    Wei, Kuo-Chen
    Liu, Hao-Li
    [J]. JOURNAL OF CONTROLLED RELEASE, 2015, 212 : 1 - 9
  • [6] INVIVO TEMPERATURE-DEPENDENCE OF ULTRASOUND SPEED IN TISSUE AND ITS APPLICATION TO NON-INVASIVE TEMPERATURE MONITORING
    NASONI, RL
    BOWEN, T
    CONNOR, WG
    SHOLES, RR
    [J]. ULTRASONIC IMAGING, 1979, 1 (01) : 34 - 43
  • [7] Dynamic tissue phantoms and their use in assessment of a non-invasive optical plethysmography imaging device
    Thatcher, Jeffrey E.
    Plant, Kevin D.
    King, Darlene R.
    Block, Kenneth L.
    Fan, Wensheng
    DiMaio, J. Michael
    [J]. SMART BIOMEDICAL AND PHYSIOLOGICAL SENSOR TECHNOLOGY XI, 2014, 9107
  • [8] Non-invasive elasticity imaging in small vessels: Validation on tissue-mimicking phantoms
    Maurice, RL
    Daronat, M
    Pivert, N
    Foster, FS
    Cloutier, G
    [J]. MEDICAL IMAGING 2004: ULTRASONIC IMAGING AND SIGNAL PROCESSING, 2004, 5373 : 184 - 192
  • [9] Passive Focused Monitoring and Non-invasive Irradiation of Head Tissue Phantoms at Microwave Frequencies
    Karathanasis, Konstantinos T.
    Gouzouasis, Ioannis A.
    Karanasiou, Irene S.
    Stratakos, George
    Uzunoglu, Nikolaos K.
    [J]. 8TH IEEE INTERNATIONAL CONFERENCE ON BIOINFORMATICS AND BIOENGINEERING, VOLS 1 AND 2, 2008, : 723 - +
  • [10] Damage mechanisms for ultrasound-induced cavitation in tissue
    Warnez, M.
    Vlaisavljevich, E.
    Xu, Z.
    Johnsen, E.
    [J]. PROCEEDINGS FROM THE 14TH INTERNATIONAL SYMPOSIUM ON THERAPEUTIC ULTRASOUND, 2017, 1821