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Comparative Multifractal Analysis of Dynamic Infrared Thermograms and X-Ray Mammograms Enlightens Changes in the Environment of Malignant Tumors

There is growing evidence that the microenvironment surrounding a tumor plays a special role in cancer development and cancer therapeutic resistance. Tumors arise from the dysregulation and alteration of both the malignant cells and their environment. By providing tumor-repressing signals, the micro...

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Autores principales: Gerasimova-Chechkina, Evgeniya, Toner, Brian, Marin, Zach, Audit, Benjamin, Roux, Stephane G., Argoul, Francoise, Khalil, Andre, Gileva, Olga, Naimark, Oleg, Arneodo, Alain
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4977307/
https://www.ncbi.nlm.nih.gov/pubmed/27555823
http://dx.doi.org/10.3389/fphys.2016.00336
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author Gerasimova-Chechkina, Evgeniya
Toner, Brian
Marin, Zach
Audit, Benjamin
Roux, Stephane G.
Argoul, Francoise
Khalil, Andre
Gileva, Olga
Naimark, Oleg
Arneodo, Alain
author_facet Gerasimova-Chechkina, Evgeniya
Toner, Brian
Marin, Zach
Audit, Benjamin
Roux, Stephane G.
Argoul, Francoise
Khalil, Andre
Gileva, Olga
Naimark, Oleg
Arneodo, Alain
author_sort Gerasimova-Chechkina, Evgeniya
collection PubMed
description There is growing evidence that the microenvironment surrounding a tumor plays a special role in cancer development and cancer therapeutic resistance. Tumors arise from the dysregulation and alteration of both the malignant cells and their environment. By providing tumor-repressing signals, the microenvironment can impose and sustain normal tissue architecture. Once tissue homeostasis is lost, the altered microenvironment can create a niche favoring the tumorigenic transformation process. A major challenge in early breast cancer diagnosis is thus to show that these physiological and architectural alterations can be detected with currently used screening techniques. In a recent study, we used a 1D wavelet-based multi-scale method to analyze breast skin temperature temporal fluctuations collected with an IR thermography camera in patients with breast cancer. This study reveals that the multifractal complexity of temperature fluctuations superimposed on cardiogenic and vasomotor perfusion oscillations observed in healthy breasts is lost in malignant tumor foci in cancerous breasts. Here we use a 2D wavelet-based multifractal method to analyze the spatial fluctuations of breast density in the X-ray mammograms of the same panel of patients. As compared to the long-range correlations and anti-correlations in roughness fluctuations, respectively observed in dense and fatty breast areas, some significant change in the nature of breast density fluctuations with some clear loss of correlations is detected in the neighborhood of malignant tumors. This attests to some architectural disorganization that may deeply affect heat transfer and related thermomechanics in breast tissues, corroborating the change to homogeneous monofractal temperature fluctuations recorded in cancerous breasts with the IR camera. These results open new perspectives in computer-aided methods to assist in early breast cancer diagnosis.
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spelling pubmed-49773072016-08-23 Comparative Multifractal Analysis of Dynamic Infrared Thermograms and X-Ray Mammograms Enlightens Changes in the Environment of Malignant Tumors Gerasimova-Chechkina, Evgeniya Toner, Brian Marin, Zach Audit, Benjamin Roux, Stephane G. Argoul, Francoise Khalil, Andre Gileva, Olga Naimark, Oleg Arneodo, Alain Front Physiol Physiology There is growing evidence that the microenvironment surrounding a tumor plays a special role in cancer development and cancer therapeutic resistance. Tumors arise from the dysregulation and alteration of both the malignant cells and their environment. By providing tumor-repressing signals, the microenvironment can impose and sustain normal tissue architecture. Once tissue homeostasis is lost, the altered microenvironment can create a niche favoring the tumorigenic transformation process. A major challenge in early breast cancer diagnosis is thus to show that these physiological and architectural alterations can be detected with currently used screening techniques. In a recent study, we used a 1D wavelet-based multi-scale method to analyze breast skin temperature temporal fluctuations collected with an IR thermography camera in patients with breast cancer. This study reveals that the multifractal complexity of temperature fluctuations superimposed on cardiogenic and vasomotor perfusion oscillations observed in healthy breasts is lost in malignant tumor foci in cancerous breasts. Here we use a 2D wavelet-based multifractal method to analyze the spatial fluctuations of breast density in the X-ray mammograms of the same panel of patients. As compared to the long-range correlations and anti-correlations in roughness fluctuations, respectively observed in dense and fatty breast areas, some significant change in the nature of breast density fluctuations with some clear loss of correlations is detected in the neighborhood of malignant tumors. This attests to some architectural disorganization that may deeply affect heat transfer and related thermomechanics in breast tissues, corroborating the change to homogeneous monofractal temperature fluctuations recorded in cancerous breasts with the IR camera. These results open new perspectives in computer-aided methods to assist in early breast cancer diagnosis. Frontiers Media S.A. 2016-08-09 /pmc/articles/PMC4977307/ /pubmed/27555823 http://dx.doi.org/10.3389/fphys.2016.00336 Text en Copyright © 2016 Gerasimova-Chechkina, Toner, Marin, Audit, Roux, Argoul, Khalil, Gileva, Naimark and Arneodo. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) or licensor are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Physiology
Gerasimova-Chechkina, Evgeniya
Toner, Brian
Marin, Zach
Audit, Benjamin
Roux, Stephane G.
Argoul, Francoise
Khalil, Andre
Gileva, Olga
Naimark, Oleg
Arneodo, Alain
Comparative Multifractal Analysis of Dynamic Infrared Thermograms and X-Ray Mammograms Enlightens Changes in the Environment of Malignant Tumors
title Comparative Multifractal Analysis of Dynamic Infrared Thermograms and X-Ray Mammograms Enlightens Changes in the Environment of Malignant Tumors
title_full Comparative Multifractal Analysis of Dynamic Infrared Thermograms and X-Ray Mammograms Enlightens Changes in the Environment of Malignant Tumors
title_fullStr Comparative Multifractal Analysis of Dynamic Infrared Thermograms and X-Ray Mammograms Enlightens Changes in the Environment of Malignant Tumors
title_full_unstemmed Comparative Multifractal Analysis of Dynamic Infrared Thermograms and X-Ray Mammograms Enlightens Changes in the Environment of Malignant Tumors
title_short Comparative Multifractal Analysis of Dynamic Infrared Thermograms and X-Ray Mammograms Enlightens Changes in the Environment of Malignant Tumors
title_sort comparative multifractal analysis of dynamic infrared thermograms and x-ray mammograms enlightens changes in the environment of malignant tumors
topic Physiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4977307/
https://www.ncbi.nlm.nih.gov/pubmed/27555823
http://dx.doi.org/10.3389/fphys.2016.00336
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