E-Book, Englisch, 183 Seiten
Reihe: SpringerBriefs in Physics
Oliveira / Tuchin The Optical Clearing Method
1. Auflage 2019
ISBN: 978-3-030-33055-2
Verlag: Springer International Publishing
Format: PDF
Kopierschutz: 1 - PDF Watermark
A New Tool for Clinical Practice and Biomedical Engineering
E-Book, Englisch, 183 Seiten
Reihe: SpringerBriefs in Physics
ISBN: 978-3-030-33055-2
Verlag: Springer International Publishing
Format: PDF
Kopierschutz: 1 - PDF Watermark
This book describes the Optical Immersion Clearing method and its application to acquire information with importance for clinical practice and various fields of biomedical engineering. The method has proved to be a reliable means of increasing tissue transparency, allowing the investigator or surgeon to reach deeper tissue layers for improved imaging and laser surgery. This result is obtained by partial replacement of tissue water with an active optical clearing agent (OCA) that has a higher refractive index and is a better match for the refractive index of other tissue components. Natural tissue scattering is thereby reduced. An exponential increase in research using this method has occurred in recent years, and new applications have emerged, both in clinical practice and in some areas of biomedical engineering. Recent research has revealed that treating ex vivo tissues with solutions containing active OCAs in different concentrations produces experimental data to characterize drug delivery or to discriminate between normal and pathological tissues. The obtained drug diffusion properties are of interest for the pharmaceutical and organ preservation industry. Similar data can be estimated with particular interest for food preservation. The free water content evaluation is also of great interest since it facilitates the characterization of tissues to discriminate pathologies. An interesting new application that is presented in the book regards the creation of two optical windows in the ultraviolet spectral range through the application of the immersion method. These induced transparency windows open the possibility to diagnose and treat pathologies with ultraviolet light. This book presents photographs from the tissues we have studied and figures that represent the experimental setups used. Graphs and tables are also included to show the numerical results obtained in the sequential calculations performed.
Luís Oliveira graduated in Physics in 2000 from Porto University - School of Sciences. Later, in 2010 and 2014, he received the M.S. and PhD degrees from the same University - School of Engineering. Since 2001 he has been a researcher in the field of optics, later specializing in the field of biophotonics. He is a Professor (Adjunct) at the Physics Department of the Polytechnic Institute of Porto - School of Engineering since 2008. He is also a senior researcher in biophotonics at the Center of Innovation in Engineering and Industrial Technology, a research center that is part of the Polytechnic of Porto. In recent years, Prof. Oliveira has reviewed and authored several papers in the fields of tissue optics and tissue optical clearing. He has one patent pending regarding the discovery of two tissue windows in the ultraviolet. His main research interests include tissue optics, tissue optical clearing and related clinical applications to diagnose and treat pathologies. Valery V. Tuchin is a professor and chair of Optics and Biophotonics at Saratov State University (National Research University of Russia) and several other universities and academic Institutes in Russia and abroad. His research interests include tissue optics, laser medicine, tissue optical clearing, and nanobiophotonics. He is a fellow of SPIE and OSA, he was awarded the Honored Science Worker of Russia, Honored Professor of Saratov State University, SPIE Educator Award, FiDiPro (Finland), Chime Bell Prize of Hubei Province (China), Joseph W. Goodman Book Writing Award (OSA/SPIE), and OSA Michael S. Feld Biophotonics Award for pioneering research in biophotonics. He has published more than 700 papers (Web of Science), 27 monographs and text-books, and 58 book chapters. Dr. Tuchin is also a holder of more than 50 patents. His works were cited 24,636 times to August, 2019 (Google Scholar).
Autoren/Hrsg.
Weitere Infos & Material
1;Preface;6
2;Acknowledgments;8
3;Abbreviations;9
4;Contents;11
5;Chapter 1: Tissue Optics;12
5.1;1.1 Optical Properties of Tissues and Light Propagation;12
5.2;1.2 Why the Scattering Coefficient Is So High?;18
5.3;1.3 Implications of High Scattering in Optical Methods for Clinical Practice;21
5.4;References;22
6;Chapter 2: Controlling the Optical Properties of Biological Materials;27
6.1;2.1 Turning the Tissues Clear: An Introduction;27
6.2;2.2 Tissue Whitening;27
6.3;2.3 Temperature Effects and Tissue Coagulation;28
6.4;2.4 Mechanical Tissue Compression and Stretching;31
6.5;2.5 The Immersion Method;32
6.6;References;41
7;Chapter 3: Typical Optical Clearing Agents;45
7.1;3.1 Desirable Properties of Optical Clearing Agents;45
7.2;3.2 Absorption and Dispersion Data for OCAs;48
7.3;3.3 OCA Enhanced Delivery;52
7.4;3.4 Method to Prepare Aqueous Solutions with Different OCA Osmolarities;53
7.4.1;3.4.1 Glucose-Water Solutions;54
7.4.2;3.4.2 Glycerol-Water Solutions;55
7.4.3;3.4.3 EG-Water Solutions;55
7.4.4;3.4.4 PG-Water Solutions;55
7.4.5;3.4.5 Sucrose-Water Solutions;56
7.5;References;56
8;Chapter 4: Major Optical Clearing Mechanisms;59
8.1;4.1 Nature of Strong Light Scattering in Biological Tissues;59
8.2;4.2 Water and OCA Fluxes and the Clearing Mechanisms;60
8.3;4.3 Characterization of the Water and OCA Fluxes and Mechanism Discrimination;63
8.4;References;67
9;Chapter 5: Measurements During Optical Clearing;70
9.1;5.1 Ex Vivo Measurements;70
9.1.1;5.1.1 Collimated Transmittance;70
9.1.2;5.1.2 Total Transmittance;72
9.1.3;5.1.3 Total Reflectance;73
9.1.4;5.1.4 Refractive Index;74
9.1.5;5.1.5 Thickness;77
9.2;5.2 In Vivo Measurements;78
9.2.1;5.2.1 Diffuse Reflectance;79
9.2.2;5.2.2 Imaging Methods;83
9.3;References;84
10;Chapter 6: Data that Can Be Acquired from Optical Clearing Studies;87
10.1;6.1 Introduction;87
10.2;6.2 Evaluation of the OC Mechanisms Through the Refractive Index Kinetics;87
10.3;6.3 Estimation of the Kinetics for Tissue´s Optical Properties During OC Treatments;93
10.4;6.4 Estimation of the Diffusion Properties of Water and Agents in Tissues;98
10.5;6.5 Physiological Data and Possibility of Diagnostic Procedures;105
10.6;6.6 Creation of the UV-Tissue Windows;107
10.7;References;111
11;Chapter 7: Optical Clearing and Tissue Imaging;114
11.1;7.1 Introduction;114
11.2;7.2 Tissue Imaging in Thick Tissue;115
11.3;7.3 Optical Coherence Tomography (OCT);116
11.4;7.4 Microscopy Methods;120
11.5;7.5 Speckle Techniques;124
11.6;7.6 The Second Harmonic Generation (SHG) Method;128
11.7;7.7 The Light-Sheet Method;134
11.8;References;139
12;Chapter 8: Other Applications of Optical Clearing Agents;146
12.1;8.1 Introduction;146
12.2;8.2 Dermatology, Cosmetics, and Pharmacology;146
12.3;8.3 Tissue Poisoning;150
12.4;8.4 Food Industry;156
12.5;8.5 Cryogenics;159
12.6;References;163
13;Chapter 9: Future Perspectives of the Optical Clearing Method;169
13.1;9.1 Optical Clearing: A Successful Technique in Tissue Optics;169
13.2;9.2 Future Developments in Clearing Agents and Protocols;170
13.3;9.3 Future Developments in Tissue Spectroscopy;171
13.4;9.4 Future Developments in Tissue Imaging;172
13.5;9.5 Future Developments in Food Industry and Other Areas;173
13.6;References;176
14;Index;179




