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Qifa Zhou · Zhongping Chen Editors
Multimodality Imaging
For Intravascular Application
Multimodality Imaging
Qifa Zhou•Zhongping Chen
Editors
Multimodality Imaging
For Intravascular Application
123
Editors
Qifa Zhou Department of Ophthalmology and Biomedical Engineering University of Southern California Los Angeles, CA, USA
Zhongping Chen Department of Biomedical Engineering University of California, Irvine Irvine, CA, USA
ISBN 978-981-10-6306-0 ISBN 978-981-10-6307-7 (eBook)
https://doi.org/10.1007/978-981-10-6307-7
© Springer Nature Singapore Pte Ltd. 2020 This work is subject to copyright. All rights are reserved by the Publisher, whether the whole or part of the material is concerned, specifically the rights of translation, reprinting, reuse of illustrations, recitation, broadcasting, reproduction on microfilms or in any other physical way, and transmission or information storage and retrieval, electronic adaptation, computer software, or by similar or dissimilar methodology now known or hereafter developed. The use of general descriptive names, registered names, trademarks, service marks, etc. in this publication does not imply, even in the absence of a specific statement, that such names are exempt from the relevant protective laws and regulations and therefore free for general use. The publisher, the authors and the editors are safe to assume that the advice and information in this book are believed to be true and accurate at the date of publication. Neither the publisher nor the authors or the editors give a warranty, expressed or implied, with respect to the material contained herein or for any errors or omissions that may have been made. The publisher remains neutral with regard to jurisdictional claims in published maps and institutional affiliations.
This Springer imprint is published by the registered company Springer Nature Singapore Pte Ltd. The registered company address is: 152 Beach Road, #21-01/04 Gateway East, Singapore 189721, Singapore
Preface
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Atherosclerosis is a progressive disease that is characterized by the accumulation of lipids, cholesterol, fibrous constituents, monocytes, and various other inflammatory cells in the arterial wall. Atherosclerosis is one of the major causes of morbidity and mortality in developed countries. Mortality from heart attack (86%) is mainly due to “vulnerable plaques” which rupture suddenly and trigger a blood clot or thrombus that blocks blood flow. Early detection of plaque lesions is the first and necessary step in preventing the lethal consequences of atherosclerosis. Diagnosis of the latent vulnerability of a plaque lesion relies on both tissue structural and chemical com­positions. Multimodality intravascular imaging that can provide both structural and molecular information will provide clinicians with a critically important tool for diagnosing vulnerable plaques, monitoring the progression of disease, and evalu­ating the efficacy of intervention.
We have selected the top experts in the field as chapter authors, many of whom have worked continuously on multimodality intravascular imaging since their Ph.D. work. Therefore, this book will cover recent research progress on integrated mul­timodal intravascular imaging systems which combine intravascular ultrasound (IVUS), optical coherence tomography (OCT), intravascular photoacoustic imaging (IVPA), fluorescence life imaging (both system and contrast), and therapeutic IVUS.
In this book, we will first introduce the multimodality intravascular imaging (Chap. 1) and the integration of multi-frequency intravascular ultrasound (Chap. 2), and then, we will introduce the integration of IVUS and OCT (Chap. 3). In Chap. 4, intravascular photoacoustic imaging of lipid-laden plaques will be introduced. Following in Chap. 5, we will introduce contrast-enhanced dual-frequency super­harmonic intravascu lar ultrasound (IVUS) imaging. We will introduce dual-modality fluorescence lifetime and intravascular ultrasound for label-free intravascular coro­nary imaging and intravascular dual-modality imaging (NIRF/IVUS, NIRS/IVUS, IVOCT/NIRF, and IVOCT/NIR S) in Chaps. 6 and 7, respectively. In Chaps. 8 and 9, tri-modality intravascular imaging systems and acoustic radiation force optical coherence elastography will be reported, respectively. Finally, therapeutic IVUS and contrast imaging as well as high-resolution intravascular ultrasound imaging systems will be presented in Chaps. 10 and 11, respectively.
v
vi Preface
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We greatly appreciate all the authors and laboratory members who gave their time and contributed significant research work for this compilation. Without their help, this book would not have reached fruition. We also wish to acknowledge the work of Dr. Ruimin Chen who contributed the editorial help for this book. We hope that this book will help biomedical engineers as well as clinicians.
Los Angeles, USA Qifa Zhou Irvine, USA Zhongping Chen
Contents
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1 Introduction to Multimodality Intravascular Imaging ........... 1
Zhongping Chen and Qifa Zhou
2 Advances in Multi-frequency Intravascular Ultrasound (IVUS)
Teng Ma and Qifa Zhou
3 The Integration of IVUS and OCT
......................... 57
Jiawen Li, Teng Ma, Qifa Zhou and Zhongping Chen
4 Intravascular Photoacoustic Imaging of Lipid-Laden Plaques:
From Fundamental Concept Toward Clinical Translation
....... 81
Jie Hui and Ji-Xin Cheng
5 Contrast-Enhanced Dual-Frequency Super-Harmonic
Intravascular Ultrasound (IVUS) Imaging
................... 105
Jianguo Ma and Xiaoning Jiang
6 Dual-Modality Fluorescence Lifetime and Intravascular
Ultrasound for Label-Free Intravascular Coronary Imaging
..... 153
Jennifer E. Phipps, Julien Bec and Laura Marcu
7 Intravascular Dual-Modality Imaging (NIRF/IVUS, NIRS/IVUS,
IVOCT/NIRF, and IVOCT/NIRS)
......................... 173
Yan Li and Zhongping Chen
8 Tri-Modality Intravascular Imaging System
.................. 191
Yan Li and Zhongping Chen
9 Acoustic Radiation Force Optical Coherence Elastography
...... 207
Yueqiao Qu, Youmin He, Teng Ma, Qifa Zhou and Zhongping Chen
... 11
vii
viii Contents
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10 Therapeutic IVUS and Contrast Imaging .................... 227
John A. Hossack
11 High-Resolution Ultrasound Imaging System
Weibao Qiu and Hairong Zheng
................. 257
Contributors
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Julien Bec Department of Biomedical Engineering, University of California, Davis, Davis, CA, USA
Zhongping Chen Department of Biomedical Engineering, Beckman Laser Institute, University of California, Irvine, Irvine, CA, USA
Ji-Xin Cheng Department of Electrical and Computer Engineering, Department of Biomedical Engineering, Photonics Center, Boston University, Boston, MA, USA
Youmin He Department of Biomedical Engineering, Beckman Laser Institute, University of California, Irvine, Irvine, CA, USA
John A. Hossack Department of Biomedical Engineering, University of Virginia, Charlottesville, VA, USA
Jie Hui Department of Electrical and Computer Engineering, Photonics Center, Boston University, Boston, MA, USA
Xiaoning Jiang Department of Mechanical and Aerospace Engineering, North Carolina State University, Raleigh, NC, USA
Jiawen Li Adelaide Medical School, Australian Research Council Centre of Excellence for Nanoscale Biophotonics, Institute for Photonics and Advanced Sensing, The University of Adelaide, Adelaide, SA, Australia
Yan Li Department of Biomedical Engineering, Beckman Laser Institute, University of California, Irvine, Irvine, CA, USA
Jianguo Ma School of Instrumentation and Optoelectronic Engineering, Beijing Advanced Innovation Center for Big Data-Based Precision Medicine, Beihang University, Beijing, China
Teng Ma Paul C. Lauterbur Research Center for Biomedical Imaging, Institute of Biomedical and Health Engineering, Shenzhen Institutes of Advanced Technology, Chinese Academy of Sciences, Shenzhen, China
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x Contributors
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Laura Marcu Department of Biomedical Engineering, University of California, Davis, Davis, CA, USA
Jennifer E. Phipps Department of Biomedical Engineering, University of California, Davis, Davis, CA, USA
Weibao Qiu Paul C. Lauterbur Research Center for Biomedical Imaging, Institute of Biomedical and Health Engineering, Shenzhen Institutes of Advanced Technology, Chinese Academy of Sciences, Shenzhen, China
Yueqiao Qu Department of Biomedical Engineering, Beckman Laser Institute, University of California, Irvine, Irvine, CA, USA
Hairong Zheng Paul C. Lauterbur Research Center for Biomedical Imaging, Institute of Biomedical and Health Engineering, Shenzhen Institutes of Advanced Technology, Chinese Academy of Sciences, Shenzhen, China
Qifa Zhou Department of Biomedical Eng ineering, Roski Eye Institute, University of Southern California, Los Angeles, CA, USA