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Numerical analysis on ex-vivo second harmonic generation images of collagen structure of unstained basal cell carcinoma sections 基底细胞癌未染色切片胶原结构离体二次谐波图像的数值分析
Pub Date : 2021-12-07 DOI: 10.1117/12.2615071
L. Fésűs, N. Wikonkál, R. Szipőcs
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引用次数: 0
Multiple wavelength excitation 5-ALA induced PpIX fluorescence spectroscopy in guided neurosurgery for improving glioma classification 多波长激发5-ALA诱导PpIX荧光光谱在神经外科指导下改善胶质瘤分类
Pub Date : 2021-12-07 DOI: 10.1117/12.2614590
A. Gautheron, M. Hébert, L. Mahieu-Williame, J. Guyotat, B. Montcel
{"title":"Multiple wavelength excitation 5-ALA induced PpIX fluorescence spectroscopy in guided neurosurgery for improving glioma classification","authors":"A. Gautheron, M. Hébert, L. Mahieu-Williame, J. Guyotat, B. Montcel","doi":"10.1117/12.2614590","DOIUrl":"https://doi.org/10.1117/12.2614590","url":null,"abstract":"","PeriodicalId":117188,"journal":{"name":"Translational Biophotonics: Diagnostics and Therapeutics","volume":"337 1","pages":"0"},"PeriodicalIF":0.0,"publicationDate":"2021-12-07","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":null,"resultStr":null,"platform":"Semanticscholar","paperid":"133083660","PeriodicalName":null,"FirstCategoryId":null,"ListUrlMain":null,"RegionNum":0,"RegionCategory":"","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":"","EPubDate":null,"PubModel":null,"JCR":null,"JCRName":null,"Score":null,"Total":0}
引用次数: 0
Quantitative measurement of low-concentration analytes using Raman spectroscopy during droplet evaporation for therapeutic drug monitoring 用于治疗药物监测的液滴蒸发过程中低浓度分析物的拉曼光谱定量测量
Pub Date : 2021-12-07 DOI: 10.1117/12.2614937
Sora Tomita, Terumasa Ito, Kazuyuki Iwaikawa, G. Hayase, D. Yoshino, K. Misawa
We propose a new method for therapeutic drug monitoring using Raman spectroscopy to quantify the concentration of analytes during droplet evaporation. The proposed method is demonstrated for quantitative measurement of methotrexate down to 0.5 mM.
我们提出了一种新的治疗药物监测方法,利用拉曼光谱来量化液滴蒸发过程中分析物的浓度。所提出的方法被证明可以定量测量0.5 mM的甲氨蝶呤。
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引用次数: 0
Development of multi-modal system for quantitative phase and fluorescence imaging of osteo cancer cells 骨癌细胞定量相和荧光成像多模态系统的研制
Pub Date : 2021-12-07 DOI: 10.1117/12.2615020
Shilpa Tayal, Veena Singh, T. Kaur, Neetu Singh, D. Mehta
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引用次数: 0
Noble metal nanoparticles modified by cyanines and stilbenes for enhanced signal optical tomography and hyperthermal therapy 菁菁和苯乙烯修饰的贵金属纳米颗粒用于增强信号光学断层扫描和高温治疗
Pub Date : 2021-12-07 DOI: 10.1117/12.2615046
A. N. Smirnov, O. V. Odintsova, V. V. Lashkul, V. V. Sharoiko, E. Solovyeva
The report describes the synthesis of core-shell noble metal anisotropic nanoparticles modified with cyanine-class fluorophores and stilbene-based Raman reporters. In perspective, it may be used for optical diagnostics and therapeutic hyperthermia. Modern chemistry of optical tags offers solutions for invasive biomedical optical diagnostics and therapy methods such as Raman and SERS labeling, immune fermentative reaction utilizing fluorescent reporter and tomography with vectors-conjugated fluorophores, photodynamic and hyperthermal therapy. The last method consists in using of energy dissipated by particle to overheat neighboring tumor cells leading to their death and has two different implementations: the first is based on the superparamagnetic nanoparticles together with NMR excitation while the second one utilizes lasers to excite the plasmonic nanoparticles. There is a proble related to ability of using visible light in diagnostics and treatment to see things with naked eyes: light passing through biological tissues undergoes absorption and scattering. Thus, it is hard to see definite shape of the luminous region, especially if it is at a depth. For this reason, fluorescence tomography and photodynamic therapy are applied only to superficial tissues. The present study is devoted to development of nanocomposite tags for optical tomography with improved capability for determining the size, shape and location of malignant tumors. The idea of the research is to use the plasmon resonance effect. The plasmon resonance effect is the ability of noble metal nanoparticles to absorb visible and near infrared light. In this way, the generated local electromagnetic field of nanoparticles leads to hyperpolarization of neighboring molecules, the scattering intensity of which increases by orders of magnitude compared to the usual one. Fig. 1. Schematic representation of conception Gold and silver nanoparticles of anisotropic shape (nanorods, nanoprisms and nanobones) were synthetized, the plasmon resonance peak of which is shifted to the red border of the visible spectrum range. This region is also known as the region of transparency of biological tissues. The region of 600-700 nm refers to visible light, so red light emission can be observed with naked eyes, thus the developed tags may be applied directly during surgical intervention These nanoparticles were modified with cyanine-based fluorophores (e.g. Cy 5.5 and Cy 7) and Raman reporters (e.g. 4,4'-dimercaptostilbene, 4,4'-diaminostilbene) and subsequently coated with a silica dioxide shell using the Strober method. The principal scheme of optically responsive nanotag conjugated to a delivery vector is shown on Fig. 1. Translational Biophotonics: Diagnostics and Therapeutics, edited by Zhiwei Huang, Lothar D. Lilge, Proc. of SPIE-OSA Vol. 11919, 119192E · © 2021 OSA-SPIE CCC code: 1605-7422/21/$21 · doi: 10.1117/12.2615046 Proc. of SPIE-OSA Vol. 11919 119192E-1 Fig. 2. Comparison of the fluorescence spe
本文介绍了用花菁类荧光团和苯乙烯基拉曼基团修饰的核壳各向异性贵金属纳米粒子的合成。从角度来看,它可以用于光学诊断和治疗性热疗。光学标签的现代化学为侵入性生物医学光学诊断和治疗方法提供了解决方案,如拉曼和SERS标记,利用荧光报告的免疫发酵反应和载体共轭荧光团的断层扫描,光动力和热疗法。最后一种方法是利用粒子耗散的能量使邻近的肿瘤细胞过热而死亡,有两种不同的实现方法:第一种是基于超顺磁性纳米粒子和核磁共振激发,第二种是利用激光激发等离子体纳米粒子。在诊断和治疗中使用可见光的能力存在一个问题,即通过生物组织的光会被吸收和散射。因此,很难看到发光区域的明确形状,特别是当它在一个深度。出于这个原因,荧光断层扫描和光动力疗法仅应用于浅表组织。本研究致力于开发用于光学断层扫描的纳米复合标签,以提高确定恶性肿瘤的大小,形状和位置的能力。研究的思路是利用等离子体共振效应。等离子体共振效应是贵金属纳米粒子吸收可见光和近红外光的能力。通过这种方式,纳米颗粒产生的局部电磁场导致邻近分子的超极化,其散射强度比通常的散射强度增加了几个数量级。图1所示。合成了形状各向异性的金、银纳米粒子(纳米棒、纳米棱镜和纳米棒),其等离子体共振峰移至可见光谱范围的红边。这个区域也被称为生物组织的透明区。600-700 nm区域为可见光区域,因此肉眼可以观察到红光发射,因此开发的标签可以直接应用于手术干预。这些纳米颗粒用花青素基荧光团(如Cy 5.5和Cy 7)和拉曼报告子(如4,4'-二巯基二苯乙烯,4,4'-二氨基二苯乙烯)修饰,随后使用Strober法涂覆二氧化硅外壳。光学响应纳米标签共轭到传递矢量的主要方案如图1所示。翻译生物光子学:诊断与治疗,由黄志伟主编,Lothar D. Lilge, prof . of spe - osa Vol. 11919, 119192E·©2021 OSA-SPIE CCC代码:1605-7422/21/$21·doi: 10.1117/12.2615046 prof . of spe - osa Vol. 11919, 119192E-1图2。含菁5.5的不同聚合物壳修饰金纳米骨架荧光光谱的比较。Liz-Marzan博士建议用聚电解质一层一层地涂覆纳米颗粒,以获得聚乙烯吡咯烷酮外壳,这是根据Strober方法合成二氧化硅的常见底物。这种核-壳协议应用于Cy5.5修饰的纳米型金纳米颗粒(扭曲的纳米棒),导致发射猝灭(图2)。(粉色曲线,与紫色曲线难以区分,紫色曲线为未染色的对照样品)。考虑到化学猝灭效应取决于与表面的距离,我们将发色团置于第二层(聚烯丙胺铵)和第三层(聚乙烯吡咯烷酮)聚电解质之间,最终观察到强发射(图2)。(绿色曲线)。随后用氨基丙基三甲氧基硅烷和末端羧基的叶酸对二氧化硅外壳进行修饰后,信号仍然存在。我们的目标是肿瘤细胞中过度表达的叶酸受体。目前,在生物样品上测试获得的核壳纳米粒子的工作正在进行中。
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引用次数: 2
Optimization of tissue classification for colorectal cancer detection using support vector machines and diffuse reflectance spectroscopy 基于支持向量机和漫反射光谱的结直肠癌组织分类优化
Pub Date : 2021-12-07 DOI: 10.1117/12.2615033
M. Nogueira, Michael Amissah, Siddra Maryam, Noel Lynch, S. Killeen, Micháel O'Riordain, S. Andersson-Engels
Optimizing support vector machine models for colorectal cancer detection using diffuse reflectance spectroscopy at extended wavelength ranges and tissue layers up to 2mm deep achieved 96.1% sensitivity and 95.7% specificity on tissue classification.
对支持向量机模型进行优化,利用扩展波长范围和2mm深的组织层漫反射光谱检测结直肠癌,在组织分类上的灵敏度为96.1%,特异度为95.7%。
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引用次数: 9
Two-wavelength excitation spectroscopy for non-invasive detection of the iron deficiency indicator zinc protoporphyrin IX 无创检测缺铁指示剂原卟啉锌的双波长激发光谱
Pub Date : 2021-12-07 DOI: 10.1117/12.2614588
H. Stepp, Christian Homann, G. Hennig, M. Vogeser
Increased formation of fluorescent zinc protoporphyrin IX (ZnPP) inside erythrocytes indicates functional iron deficiency. Two-wavelength excitation spectroscopy detects ZnPP even through intact skin. Its suitability was successfully tested in women, surgical patients, infants and blood donors.
红细胞内荧光锌原卟啉IX (ZnPP)的形成增加表明功能性铁缺乏。双波长激发光谱检测ZnPP甚至通过完整的皮肤。在妇女、外科病人、婴儿和献血者中成功地测试了其适用性。
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引用次数: 0
Combined fingerprint and high wavenumber spatially offset Raman spectroscopy for depth-resolved hydration and biochemical assessment 结合指纹和高波数空间偏移拉曼光谱深度分辨水化和生化评价
Pub Date : 2021-12-07 DOI: 10.1117/12.2614933
Laura E. Masson, Rekha Gautam, A. Locke, G. Thomas, A. Mahadevan-Jansen
Combined fingerprint and high wavenumber spatially offset Raman spectroscopy was implemented for depth-dependent biochemical characterization. Quantitative spectral analysis of water and other components was conducted in layered optical phantoms.
结合指纹和高波数空间偏移拉曼光谱进行深度依赖的生化表征。在层状光学模型中对水和其他成分进行了定量光谱分析。
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引用次数: 0
Estimation of spectral characteristics of dentin materials during their demineralization 牙本质材料脱矿过程中光谱特性的估计
Pub Date : 2021-12-07 DOI: 10.1117/12.2615044
P. Timchenko, E. Timchenko, L. Volova, O. Frolov, M. Zybin
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引用次数: 0
Front Matter: Volume 11919 前题:第11919卷
Pub Date : 2021-12-07 DOI: 10.1117/12.2625679
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引用次数: 0
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Translational Biophotonics: Diagnostics and Therapeutics
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