用于皮肤烧伤评估的动态光学相干弹性成像:小鼠模型初步研究

IF 2 3区 物理与天体物理 Q3 BIOCHEMICAL RESEARCH METHODS
Heng Liu, Di Yang, Renfei Jia, Weike Wang, Jianwei Shang, Quanzhong Liu, Yanmei Liang
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引用次数: 0

摘要

包括组织凝固性坏死在内的皮肤烧伤意味着硬度的变化。本文利用动态相位敏感光学相干弹性成像(OCE)对烧伤皮肤的硬度进行非破坏性评估。自制的动态 OCE 最初是通过组织模拟模型实验验证瑞利波速度的。在经过一系列温度和持续时间的灼烧后,小鼠皮肤的相应结构和硬度变化通过组织学图像、光学相干断层扫描 B 扫描和 OCE 弹性波速图得到了证实。结果清楚地显示了痂皮边缘向横向延伸的弹性特性和刚度的变化。统计分析显示,温度超过 100°C 烧伤的鼠皮肤通常比温度低于 100°C 烧伤的皮肤表现出更大的硬度。动态 OCE 技术显示了将弹性特性作为诊断皮肤烧伤的生物力学扩展模块的潜在应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Dynamic optical coherence elastography for skin burn assessment: A preliminary study on mice model

Dynamic optical coherence elastography for skin burn assessment: A preliminary study on mice model

Skin burns that include tissue coagulation necrosis imply variations in stiffness. Dynamic phase-sensitive optical coherence elastography (OCE) is used to evaluate the stiffness of burned skin nondestructively in this paper. The homemade dynamic OCE was initially verified through tissue-mimicking phantom experiments regarding Rayleigh wave speed. After being burned with a series of temperatures and durations, the corresponding structure and stiffness variations of mice skin were demonstrated by histological images, optical coherence tomography B-scans, and OCE elastic wave speed maps. The results clearly displayed the variation in elastic properties and stiffness of the scab edge extending in the lateral direction. Statistical analysis revealed that murine skin burned at temperatures exceeding 100°C typically exhibited greater stiffness than skin burned at temperatures below 100°C. The dynamic OCE technique shows potential application for incorporating elasticity properties as a biomechanical extension module to diagnose skin burn injuries.

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来源期刊
Journal of Biophotonics
Journal of Biophotonics 生物-生化研究方法
CiteScore
5.70
自引率
7.10%
发文量
248
审稿时长
1 months
期刊介绍: The first international journal dedicated to publishing reviews and original articles from this exciting field, the Journal of Biophotonics covers the broad range of research on interactions between light and biological material. The journal offers a platform where the physicist communicates with the biologist and where the clinical practitioner learns about the latest tools for the diagnosis of diseases. As such, the journal is highly interdisciplinary, publishing cutting edge research in the fields of life sciences, medicine, physics, chemistry, and engineering. The coverage extends from fundamental research to specific developments, while also including the latest applications.
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