Quantitative redox imaging biomarkers for studying tissue metabolic state and its heterogeneity.

IF 2.3 3区 医学 Q2 OPTICS
He N Xu, Lin Z Li
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引用次数: 22

Abstract

NAD+/NADH redox state has been implicated in many diseases such as cancer and diabetes as well as in the regulation of embryonic development and aging. To fluorimetrically assess the mitochondrial redox state, Dr. Chance and co-workers measured the fluorescence of NADH and oxidized flavoproteins (Fp) including flavin-adenine-dinucleotide (FAD) and demonstrated their ratio (i.e. the redox ratio) is a sensitive indicator of the mitochondrial redox states. The Chance redox scanner was built to simultaneously measure NADH and Fp in tissue at submillimeter scale in 3D using the freeze-trap protocol. This paper summarizes our recent research experience, development and new applications of the redox scanning technique in collaboration with Dr.Chance beginning in 2005. Dr. Chance initiated or actively involved in many of the projects during the last several years of his life. We advanced the redox scanning technique by measuring the nominal concentrations (in reference to the frozen solution standards) of the endogenous fluorescent analytes, i.e., [NADH] and [Fp] to quantify the redox ratios in various biological tissues. The advancement has enabled us to identify an array of the redox indices as quantitative imaging biomarkers (including [NADH], [Fp], [Fp]/([NADH] + [Fp]), [NADH]/[Fp], and their standard deviations) for studying some important biological questions on cancer and normal tissue metabolism. We found that the redox indices were associated or changed with (1) tumorigenesis (cancer versus non-cancer of human breast tissue biopsies); (2) tumor metastatic potential; (3) tumor glucose uptake; (4) tumor p53 status; (5) PI3K pathway activation in premalignant tissue; (6) therapeutic effects on tumors; (7) embryonic stem cell differentiation; (8) the heart under fasting. Together, our work demonstrated that the tissue redox indices obtained from the redox scanning technique may provide useful information about tissue metabolism and physiology status in normal and diseased tissues. The Chance redox scanner and other redox imaging techniques may have wide-ranging potential applications in many fields, such as cancer, diabetes, developmental process, mitochondrial diseases, neurodegenerative diseases, and aging.

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用于研究组织代谢状态及其异质性的定量氧化还原成像生物标志物。
NAD+/NADH氧化还原状态与许多疾病有关,如癌症和糖尿病以及胚胎发育和衰老的调节。为了用荧光法评估线粒体氧化还原状态,Chance博士及其同事测量了NADH和氧化黄素蛋白(Fp)的荧光,包括黄素腺嘌呤二核苷酸(FAD),并证明它们的比率(即氧化还原比率)是线粒体氧化还原态度的敏感指标。Chance氧化还原扫描仪用于使用冷冻捕获协议以亚毫米级3D同时测量组织中的NADH和Fp。本文总结了我们从2005年开始与Chance博士合作的氧化还原扫描技术的最新研究经验、发展和新应用。钱斯博士在他生命的最后几年发起或积极参与了许多项目。我们通过测量内源性荧光分析物(即[NADH]和[Fp])的标称浓度(参考冷冻溶液标准)来量化各种生物组织中的氧化还原比率,从而推进了氧化还原扫描技术。这一进展使我们能够识别一系列氧化还原指数作为定量成像生物标志物(包括[NADH]、[Fp]、[Fp/([NADH]+[Fp])、[NADH]/[Fp]及其标准差),用于研究癌症和正常组织代谢的一些重要生物学问题。我们发现氧化还原指数与(1)肿瘤发生(癌症与非癌症的人类乳腺组织活检)相关或改变;(2) 肿瘤转移潜能;(3) 肿瘤葡萄糖摄取;(4) 肿瘤p53状态;(5) 癌前组织中PI3K通路的激活;(6) 对肿瘤的治疗作用;(7) 胚胎干细胞分化;(8) 禁食的心脏。总之,我们的工作表明,通过氧化还原扫描技术获得的组织氧化还原指数可以提供有关正常和病变组织的组织代谢和生理状态的有用信息。Chance氧化还原扫描仪和其他氧化还原成像技术可能在许多领域具有广泛的潜在应用,如癌症、糖尿病、发育过程、线粒体疾病、神经退行性疾病和衰老。
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 Innovative Optical Health Sciences
Journal of Innovative Optical Health Sciences OPTICS-RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING
CiteScore
4.50
自引率
20.00%
发文量
69
审稿时长
>12 weeks
期刊介绍: JIOHS serves as an international forum for the publication of the latest developments in all areas of photonics in biology and medicine. JIOHS will consider for publication original papers in all disciplines of photonics in biology and medicine, including but not limited to: -Photonic therapeutics and diagnostics- Optical clinical technologies and systems- Tissue optics- Laser-tissue interaction and tissue engineering- Biomedical spectroscopy- Advanced microscopy and imaging- Nanobiophotonics and optical molecular imaging- Multimodal and hybrid biomedical imaging- Micro/nanofabrication- Medical microsystems- Optical coherence tomography- Photodynamic therapy. JIOHS provides a vehicle to help professionals, graduates, engineers, academics and researchers working in the field of intelligent photonics in biology and medicine to disseminate information on the state-of-the-art technique.
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