Determining the thermal characteristics of breast cancer based on high-resolution infrared imaging, 3D breast scans, and magnetic resonance imaging

被引:51
作者
Lozano, Adolfo, III [1 ,2 ]
Hayes, Jody C. [3 ]
Compton, Lindsay M. [3 ]
Azarnoosh, Jamasp [1 ]
Hassanipour, Fatemeh [1 ]
机构
[1] Univ Texas Dallas, Dept Mech Engn, 800 W Campbell Rd ECW 31, Richardson, TX 75080 USA
[2] Raytheon Space & Airborne Syst, 13510 N Cent Expy MS 212, Dallas, TX 75243 USA
[3] Univ Texas Southwestern Med Ctr Dallas, Dept Radiol, 5323 Harry Hines Blvd MC 8896, Dallas, TX 75390 USA
基金
美国国家科学基金会;
关键词
BLOOD-FLOW; PARAMETER-ESTIMATION; NEURAL-NETWORK; FEMALE BREAST; IN-VIVO; TUMOR; TISSUE; SKIN; THERMOGRAPHY; TEMPERATURE;
D O I
10.1038/s41598-020-66926-6
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
For over the three decades, various researchers have aimed to construct a thermal (or bioheat) model of breast cancer, but these models have mostly lacked clinical data. The present study developed a computational thermal model of breast cancer based on high-resolution infrared (IR) images, real three-dimensional (3D) breast surface geometries, and internal tumor definition of a female subject histologically diagnosed with breast cancer. A state-of-the-art IR camera recorded IR images of the subject's breasts, a 3D scanner recorded surface geometries, and standard diagnostic imaging procedures provided tumor sizes and spatial locations within the breast. The study estimated the thermal characteristics of the subject's triple negative breast cancer by calibrating the model to the subject's clinical data. Constrained by empirical blood perfusion rates, metabolic heat generation rates reached as high as 2.0E04 W/m(3) for normal breast tissue and ranged between 1.0E05-1.2E06 W/m(3) for cancerous breast tissue. Results were specific to the subject's unique breast cancer molecular subtype, stage, and lesion size and may be applicable to similar aggressive cases. Prior modeling efforts are briefly surveyed, clinical data collected are presented, and finally thermal modeling results are presented and discussed.
引用
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页数:14
相关论文
共 73 条
[1]   Thermal distribution analysis of three-dimensional tumor-embedded breast models with different breast density compositions [J].
Abd Wahab, Asnida ;
Salim, Maheza Irna Mohamad ;
Ahamat, Mohamad Asmidzam ;
Abd Manaf, Noraida ;
Yunus, Jasmy ;
Lai, Khin Wee .
MEDICAL & BIOLOGICAL ENGINEERING & COMPUTING, 2016, 54 (09) :1363-1373
[2]   Thermal analysis of a three-dimensional breast model with embedded tumour using the transmission line matrix (TLM) method [J].
Amri, A. ;
Saidane, A. ;
Pulko, S. .
COMPUTERS IN BIOLOGY AND MEDICINE, 2011, 41 (02) :76-86
[3]   Potentialities of steady-state and transient thermography in breast tumour depth detection: A numerical study [J].
Amri, Amina ;
Pulko, Susan Helen ;
Wilkinson, Anthony James .
COMPUTER METHODS AND PROGRAMS IN BIOMEDICINE, 2016, 123 :68-80
[4]  
[Anonymous], P ASME INT MECH ENG
[5]  
Baish J.W., 2016, Tissue Engineering and Artificial Organs, P1
[6]   Modeling the visibility of breast malignancy by a microwave radiometer [J].
Bardati, Fernando ;
Ludicello, Santina .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 2008, 55 (01) :214-221
[7]   An empirical correlation to estimate thermal properties of the breast and of the breast nodule using thermographic images and optimization techniques [J].
Bezerra, L. A. ;
Ribeiro, R. R. ;
Lyra, P. R. M. ;
Lima, R. C. F. .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2020, 149
[8]   Estimation of breast tumor thermal properties using infrared images [J].
Bezerra, L. A. ;
Oliveira, M. M. ;
Rolim, T. L. ;
Conci, A. ;
Santos, F. G. S. ;
Lyra, P. R. M. ;
Lima, R. C. F. .
SIGNAL PROCESSING, 2013, 93 (10) :2851-2863
[9]   Micro and nanoscale phenomenon in bioheat transfer [J].
Bischof, John C. .
HEAT AND MASS TRANSFER, 2006, 42 (10) :955-966
[10]  
BOWMAN HF, 1981, J MICROWAVE POWER EE, V16, P121