基于表面增强拉曼光谱(SERS)的生物和环境二维和三维成像。

IF 7.7 Q1 ENGINEERING, ENVIRONMENTAL
Qishen Huang*, Huiyuan Guo, Wei Wang, Seju Kang and Peter J. Vikesland*, 
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引用次数: 0

摘要

表面增强拉曼光谱(SERS)成像是一种高灵敏度,空间分辨的生物和环境分析工具。SERS成像将分子指纹与实时原位检测相结合,能够解决分析物鉴定、浓度和分布等关键问题。在生物系统中,SERS成像使核酸、蛋白质和生物标志物的敏感检测成为可能。值得注意的进展包括通过纳米组装和拆卸技术检测mirna,以及用于蛋白质和酶成像的生物正交化学和抗体偶联方法。这些方法,以及互补成像技术的整合,已经改善了植物和动物细胞体内研究的SERS成像。此外,病原体的SERS成像揭示了它们在细胞环境中的分布和行为。对于环境应用,SERS成像已用于跟踪农药,纳米颗粒和重金属离子,为污染物的运输和转化提供关键见解。此外,基于sers的pH和活性氧(ROS)成像提供了生物和环境微环境中活性物质的空间分辨率数据,有助于理解它们在各种过程中的动态作用。尽管具有优势,但SERS成像仍面临着一些挑战。通过解决其局限性,SERS成像有望在污染物监测,临床诊断和实时生物分析中得到广泛应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Surface-Enhanced Raman Spectroscopy (SERS) Based Biological and Environmental 2D and 3D Imaging

Surface-enhanced Raman spectroscopy (SERS) imaging is a highly sensitive, spatially resolved tool for biological and environmental analysis. SERS imaging combines molecular fingerprinting with real-time, in situ detection, with the capacity to address key questions around analyte identification, concentration, and distribution. In biological systems, SERS imaging has enabled sensitive detection of nucleic acids, proteins, and biomarkers. Notable progress includes the detection of miRNAs through nanoassembly and disassembly techniques, as well as bioorthogonal chemistry and antibody-conjugated methods for protein and enzyme imaging. These approaches, along with integration of complementary imaging techniques, have improved SERS imaging for in vivo studies in plant and animal cells. Additionally, SERS imaging of pathogens reveals their distribution and behavior in cellular environments. For environmental applications, SERS imaging has been used to track pesticides, nanoparticles, and heavy metal ions, providing critical insights into contaminant transport and transformation. Furthermore, SERS-based pH and reactive oxygen species (ROS) imaging delivers spatially resolved data on reactive species in biological and environmental microenvironments, aiding in understanding their dynamic roles in various processes. Despite its advantages, SERS imaging faces several challenges. By addressing its limitations, SERS imaging holds promise for broad application in contaminant monitoring, clinical diagnostics, and real-time biological analysis.

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来源期刊
ACS Environmental Au
ACS Environmental Au 环境科学-
CiteScore
7.10
自引率
0.00%
发文量
0
期刊介绍: ACS Environmental Au is an open access journal which publishes experimental research and theoretical results in all aspects of environmental science and technology both pure and applied. Short letters comprehensive articles reviews and perspectives are welcome in the following areas:Alternative EnergyAnthropogenic Impacts on Atmosphere Soil or WaterBiogeochemical CyclingBiomass or Wastes as ResourcesContaminants in Aquatic and Terrestrial EnvironmentsEnvironmental Data ScienceEcotoxicology and Public HealthEnergy and ClimateEnvironmental Modeling Processes and Measurement Methods and TechnologiesEnvironmental Nanotechnology and BiotechnologyGreen ChemistryGreen Manufacturing and EngineeringRisk assessment Regulatory Frameworks and Life-Cycle AssessmentsTreatment and Resource Recovery and Waste Management
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