Femtosecond optical Kerr effect in normal and grades of cancerous breast tissues as a new optical biopsy method

IF 2 3区 物理与天体物理 Q3 BIOCHEMICAL RESEARCH METHODS
Henry J. Meyer, Sandra Mamani, Zhi Li, Lingyan Shi, Robert R. Alfano
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Abstract

This study reports on the first use of the optical Kerr effect (OKE) in breast cancer tissue. This proposed optical biopsy method utilizes a Femtosecond Optical Kerr Gate to detect changes in dielectric relaxation and conductivity created by a cancerous infection. Here, the temporal behavior of the OKE is tracked in normal and cancerous samples of human and mouse breast. These tissues display a double peaked temporal structure and its decay rate changes depending on the tissue's infection status. The decay of the secondary peak, attributed to ultrafast plasma response, indicates that the tissue's conductivity has doubled once infected. A slower molecular contribution to the Kerr effect can also be observed in healthy tissues. These findings suggest two possible biomarkers for the use of OKE in optical biopsy. Both markers arise from alterations in the infected tissue's cellular structure, which changes the rate at which electronic and molecular processes occur.

Abstract Image

飞秒光学Kerr效应在正常和分级癌性乳腺组织中的应用
本文报道了光学克尔效应(Optical Kerr Effect, OKE)在乳腺癌组织中的首次应用。这种提出的光学活检方法利用飞秒光学克尔门来检测由癌性感染引起的介电松弛和电导率的变化。在这里,OKE的时间行为被跟踪在正常和癌变的人类和小鼠的乳房样本。这些组织呈现双峰颞结构,其衰减率随组织感染状态的变化而变化。次级峰的衰减,归因于超快的等离子体反应,表明组织的电导率一旦被感染就会翻倍。在健康组织中也可以观察到对克尔效应的较慢的分子贡献。这些发现提示了在光学活检中使用OKE的两种可能的生物标志物。这两种标记都是由受感染组织细胞结构的改变引起的,这改变了电子和分子过程发生的速度。这篇文章受版权保护。版权所有。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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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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