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Near Infrared Microspectroscopy, Fluorescence Microspectroscopy, Infrared Chemical Imaging and High-Resolution Nuclear Magnetic Resonance Analysis of Soybean Seeds, Embryos and Single Cells

机译:大豆种子,胚胎和单细胞的近红外光谱,荧光光谱,红外化学成像和高分辨率核磁共振分析

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摘要

Chemical analysis of soybean seeds, somatic embryos and single cells were carried out by Fourier Transform Infrared (FT-IR), Fourier Transform Near Infrared (FT-NIR) Microspectroscopy, Fluorescence and High-Resolution NMR (HR-NMR). The first FT-NIR chemical images of biological systems approaching 1 micron (1μ) resolution are presented here. Chemical images obtained by FT-NIR and FT-IR Microspectroscopy are presented for oil in soybean seeds and somatic embryos under physiological conditions. FT-NIR spectra of oil and proteins were obtained for volumes as small as 2μ3. Related, HR-NMR analyses of oil contents in somatic embryos are also presented here with nanoliter precision. Such 400 MHz 1H NMR analyses allowed the selection of mutagenized embryos with higher oil content (e.g. ~20%) compared to non-mutagenized control embryos. Moreover, developmental changes in single soybean seeds and/or somatic embryos may be monitored by FT-NIR with a precision approaching the picogram level. Indeed, detailed chemical analyses of oils and phytochemicals are now becoming possible by FT-NIR Chemical Imaging/ Microspectroscopy of single cells. The cost, speed and analytical requirements of plant breeding and genetic selection programs are fully satisfied by FT-NIR spectroscopy and Microspectroscopy for soybeans and soybean embryos. FT-NIR Microspectroscopy and Chemical Imaging are also shown to be potentially important in functional Genomics and Proteomics research through the rapid and accurate detection of high-content microarrays (HCMA). Multi-photon (MP), pulsed femtosecond laser NIR Fluorescence Excitation techniques were shown to be capable of Single Molecule Detection (SMD). Therefore, such powerful techniques allow for the most sensitive and reliable quantitative analyses to be carried out both in vitro and in vivo. Thus, MP NIR excitation for Fluorescence Correlation Spectroscopy (FCS) allows not only single molecule detection, but also molecular dynamics and high resolution, submicron imaging of femtoliter volumes inside living cells and tissues. These novel, ultra-sensitive and rapid NIR/FCS analyses have numerous applications in important research areas, such as: agricultural biotechnology, food safety, pharmacology, medical research and clinical diagnosis of viral diseases and cancers.
机译:大豆种子,体细胞胚和单细胞的化学分析是通过傅立叶变换红外(FT-IR),傅立叶变换近红外(FT-NIR)显微光谱,荧光和高分辨率NMR(HR-NMR)进行的。这里展示了生物系统的第一张FT-NIR化学图像,其分辨率接近1微米(1μ)。 FT-NIR和FT-IR显微光谱学获得的化学图像显示了生理条件下大豆种子和体细胞胚中的油。获得的油和蛋白质的FT-NIR光谱小至2μ3。相关的HR-NMR分析也以纳升精度显示了体细胞胚中的油含量。与未诱变的对照胚相比,这种400 MHz 1H NMR分析允许选择具有更高油含量(例如〜20%)的诱变胚。而且,可以通过FT-NIR以接近皮克水平的精度来监测单个大豆种子和/或体细胞胚中的发育变化。实际上,通过单细胞的FT-NIR化学成像/显微光谱法现在可以对油和植物化学物质进行详细的化学分析。 FT-NIR光谱法和显微光谱法可对大豆和大豆胚芽完全满足植物育种和基因选择计划的成本,速度和分析要求。通过快速准确地检测高含量微阵列(HCMA),FT-NIR显微光谱学和化学成像在功能基因组学和蛋白质组学研究中也显示出潜在的重要性。多光子(MP)脉冲飞秒激光NIR荧光激发技术显示出能够进行单分子检测(SMD)。因此,这种强大的技术允许在体外和体内进行最灵敏,最可靠的定量分析。因此,用于荧光相关光谱法(FCS)的MP NIR激发不仅允许单分子检测,还允许分子动力学以及活细胞和组织内部飞升体积的高分辨率,亚微米成像。这些新颖,超灵敏,快速的NIR / FCS分析在重要的研究领域中具有众多应用,例如:农业生物技术,食品安全,药理学,医学研究以及病毒性疾病和癌症的临床诊断。

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