Mechanical Characterization of Brain Tissue: Experimental Techniques, Human Testing Considerations, and Perspectives

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Main Authors: Hou, Jixin, Jiang, Kun, Ramanathan, Arunachalam, Kumar, Abhishek Saji, Zhang, Wei, Zhao, Lin, Wu, Taotao, Pidaparti, Ramana, Zhu, Dajiang, Li, Gang, Song, Kenan, Liu, Tianming, Razavi, Mir Jalil, Kuhl, Ellen, Wang, Xianqiao
Format: Preprint
Published: 2025
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author Hou, Jixin
Jiang, Kun
Ramanathan, Arunachalam
Kumar, Abhishek Saji
Zhang, Wei
Zhao, Lin
Wu, Taotao
Pidaparti, Ramana
Zhu, Dajiang
Li, Gang
Song, Kenan
Liu, Tianming
Razavi, Mir Jalil
Kuhl, Ellen
Wang, Xianqiao
author_facet Hou, Jixin
Jiang, Kun
Ramanathan, Arunachalam
Kumar, Abhishek Saji
Zhang, Wei
Zhao, Lin
Wu, Taotao
Pidaparti, Ramana
Zhu, Dajiang
Li, Gang
Song, Kenan
Liu, Tianming
Razavi, Mir Jalil
Kuhl, Ellen
Wang, Xianqiao
contents Understanding the mechanical behavior of brain tissue is crucial for advancing both fundamental neuroscience and clinical applications. Yet, accurately measuring these properties remains challenging due to the brain unique mechanical attributes and complex anatomical structures. This review provides a comprehensive overview of commonly used techniques for characterizing brain tissue mechanical properties, covering both invasive methods such as atomic force microscopy, indentation, axial mechanical testing, and oscillatory shear testing and noninvasive approaches like magnetic resonance elastography and ultrasound elastography. Each technique is evaluated in terms of working principles, applicability, representative studies, and experimental limitations. We further summarize existing publications that have used these techniques to measure human brain tissue mechanical properties. With a primary focus on invasive studies, we systematically compare their sample preparation, testing conditions, reported mechanical parameters, and modeling strategies. Key sensitivity factors influencing testing outcomes (e.g., sample size, anatomical location, strain rate, temperature, conditioning, and post-mortem interval) are also discussed. Additionally, selected noninvasive studies are reviewed to assess their potential for in vivo characterization. A comparative discussion between invasive and noninvasive methods, as well as in vivo versus ex vivo testing, is included. This review aims to offer practical guidance for researchers and clinicians in selecting appropriate mechanical testing approaches and contributes a curated dataset to support constitutive modeling of human brain tissue.
format Preprint
id arxiv_https___arxiv_org_abs_2504_12346
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Mechanical Characterization of Brain Tissue: Experimental Techniques, Human Testing Considerations, and Perspectives
Hou, Jixin
Jiang, Kun
Ramanathan, Arunachalam
Kumar, Abhishek Saji
Zhang, Wei
Zhao, Lin
Wu, Taotao
Pidaparti, Ramana
Zhu, Dajiang
Li, Gang
Song, Kenan
Liu, Tianming
Razavi, Mir Jalil
Kuhl, Ellen
Wang, Xianqiao
Medical Physics
Biological Physics
Understanding the mechanical behavior of brain tissue is crucial for advancing both fundamental neuroscience and clinical applications. Yet, accurately measuring these properties remains challenging due to the brain unique mechanical attributes and complex anatomical structures. This review provides a comprehensive overview of commonly used techniques for characterizing brain tissue mechanical properties, covering both invasive methods such as atomic force microscopy, indentation, axial mechanical testing, and oscillatory shear testing and noninvasive approaches like magnetic resonance elastography and ultrasound elastography. Each technique is evaluated in terms of working principles, applicability, representative studies, and experimental limitations. We further summarize existing publications that have used these techniques to measure human brain tissue mechanical properties. With a primary focus on invasive studies, we systematically compare their sample preparation, testing conditions, reported mechanical parameters, and modeling strategies. Key sensitivity factors influencing testing outcomes (e.g., sample size, anatomical location, strain rate, temperature, conditioning, and post-mortem interval) are also discussed. Additionally, selected noninvasive studies are reviewed to assess their potential for in vivo characterization. A comparative discussion between invasive and noninvasive methods, as well as in vivo versus ex vivo testing, is included. This review aims to offer practical guidance for researchers and clinicians in selecting appropriate mechanical testing approaches and contributes a curated dataset to support constitutive modeling of human brain tissue.
title Mechanical Characterization of Brain Tissue: Experimental Techniques, Human Testing Considerations, and Perspectives
topic Medical Physics
Biological Physics
url https://arxiv.org/abs/2504.12346