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1.
荧光显微术在当代植物细胞生物学研究中的应用   总被引:2,自引:0,他引:2  
自从八十年前第一次在显微镜下观察到生物组织经紫外线照射后发射荧光的现象以来,荧光显微术不断获得进步,现已发展成细胞生物学中一个重要的研究手段。高度的灵敏性和专一性、制样与观察程序的简便、尤其是适宜于活细胞研究等特点,是它所具有的独特长处。荧光显微术特别是免疫荧光技术在现代医学生物学研究中的应用是一个  相似文献   

2.
目的:探讨ZnPcS2P2在K562细胞,HL-60细胞亚细胞结构中的精确定位,揭示光动力学疗法(photody-namic therapy,PDT)的作用机制。方法:将K562细胞,HL-60细胞与ZnPcS2P2共同孵育5 h。应用激光扫描共聚焦显微成像系统,选择特异性细胞器荧光探针(线粒体探针若丹明Rodanmine123、溶酶体探针LysoTrackerDND-26、内质网探针Dioc6(3)采用波形比较法对光敏剂进行亚细胞定位。结果:ZnPcS2P2在K562细胞,HL-60细胞中发出的荧光与负载的Rodanmine123、Lyso-TracKer DND-26、Dioc6(3)均有部分重叠,波形均有相似之处。ZnPc-S2P2在线粒体、溶酶体、内质网均有分布。结论:线粒体是ZnPcS2P2介导的PDT(ZnPcS2P2-PDT)光损伤的主要靶点,溶酶体、内质网也是ZnPcS2P2-PDT光损伤的靶点。  相似文献   

3.
用MonteCarlo方法研究了激发光的调制频率、CCD所记录到的光强度、荧光寿命的大小以及权值对二组分荧光寿命成像显微术的频域外差法测量及数据处理精度的影响,提出了改进测量精度的方法,如选择合适的调制频率和染料,使调制频率ω和荧光寿命τ满足(14)和(15)式;增大CCD的积分时间等。  相似文献   

4.
论述了在植物细胞学研究中应用荧光显微分析技术时常用的荧光分析仪器以及近年来荧光显微分析技术在植物细胞学研究中的应用,并对其应用前景进行了展望.  相似文献   

5.
【目的】探究荧光蛋白标签对马疱疹病毒I型(Equine herpes virus type 1,EHV-1)gD囊膜蛋白亚细胞定位的影响。【方法】以EHV-1基因组为模板利用PCR扩增gD全基因,分别克隆至pAcGFP1-C1和p Ds Red2-N1质粒,构建p Ac-GFP-gD(GFP-gD)和p Ds-gD-Red(gD-Red)重组质粒;将GFP基因插入gD基因信号肽序列之后并克隆至PVAX-1质粒,构建PVAX-S-GFP-gD’(S-GFP-gD’)重组质粒;将Flag标签序列与gD囊膜蛋白N端序列融合后并克隆至p VAX-1表达载体,构建p VAX-Flag-gD(Flag-gD)重组质粒。将4种不同重组真核表达质粒分别转染BHK-21细胞,通过激光共聚焦显微镜对不同融合蛋白gD进行亚细胞定位。【结果】成功构建4种不同的融合蛋白gD真核表达载体;在BHK-21细胞单独表达时,不同融合蛋白gD绝大部分都定位于高尔基体,极少量定位于细胞核内。【结论】不同插入位点的荧光蛋白标签对gD囊膜蛋白亚细胞定位无明显影响,这对今后研究其它蛋白亚细胞定位提供参考。  相似文献   

6.
自制显微荧光光度系统及其应用   总被引:4,自引:0,他引:4  
用自行开发的细胞显微荧光分光光度系统对神经细胞内游离的静息[Ca~(2 )]_j及其动态生理变化成功地进行了测定,实验结果证明系统工作稳定、重复性好,测定结果也符合公认的动态变化特点。本文报道了该项研究工作开发成功的细胞显微荧光光度系统及神经细胞内钙离子的分析测定过程及其结果。  相似文献   

7.
为研究拟南芥的血红蛋白1(AtGLB1)基因的亚细胞定位,该实验构建了拟南芥血红蛋白1基因与绿色荧光蛋白基因融合的植物表达载体pUCGFP/ AtGLB1.利用基因枪转化法将重组载体转入洋葱表皮细胞瞬时表达,通过检测融合蛋白在洋葱表皮细胞中的分布来确定拟南芥血红蛋白1在细胞中的定位.荧光显微镜检测结果表明,AtGLB1基因表达产物主要定位在细胞核中,少量定位在细胞质中.  相似文献   

8.
拟南芥的血红蛋白3(AtGLB 3)属于截短的血红蛋白。与拟南芥血红蛋白1相比,拟南芥血红蛋白3具有不同的起源、不同的生化特性和结构;但其功能还不清楚。蛋白质的定位与蛋白质的功能息息相关。为深入研究该基因功能,构建了拟南芥血红蛋白3基因与绿色荧光蛋白融合的植物表达载体pUCGFP/AtGLB3。利用基因枪转化法将重组载体转入洋葱表皮细胞瞬时表达,通过检测融合蛋白在洋葱表皮细胞中的分布来确定拟南芥血红蛋白3在细胞中的定位。荧光显微镜检测结果表明,AtGLB3基因表达产物主要定位在细胞膜上。  相似文献   

9.
超分辨显微成像技术(super-resolution microscopy,SRM)可以绕过光学衍射极限对成像分辨率的限制,让以前观察不到的纳米级结构实现可视化,这一重大研究进展推动了现代生命科学和生物医学研究的进步与发展.细胞是生物体的基本组成单位,对活细胞内部的细微结构和动力学过程进行研究是掌握生命本质必不可少的途...  相似文献   

10.
三维反卷积显微成像技术浅谈   总被引:1,自引:0,他引:1  
三维宽场反应卷积显微成像技术是应用光学切片方法获取三维标本的二维图像序列,然后通过反卷积图像处理方法进行图像恢复,进而进行三维重建的一种以光学技术和图像处理技术为核心的显微成像方法。本文讲述了光学切片的基本原理,给出了反卷积处理中点扩展函数的理论模型和实验测试方法,然后对现存的反卷积算法做了对比。最后,文章对这一领域的发展趋势作了预测。  相似文献   

11.
目的:探讨应用基于ICCD的超高灵敏度荧光显微成像系统研究光敏剂细胞内分布的可行性。方法:传代培养内皮细胞、食管癌细胞和肺癌细胞,将不同浓度血卟啉单甲醚(HMME)与细胞共同孵育不同时间。采用荧光显微镜及ICCD组成的荧光显微成像系统采集不同浓度及不同孵育时间条件下HMME的荧光图像,并采用计算机图像处理技术进行图像增强、滤波后计算其细胞浆与细胞核的平均荧光强度比值。同时应用激光共聚焦显微镜图像采集进行对比。结果:HMME浓度为5μg/ml时,荧光显微镜采集到HMME的荧光图像;HMME浓度升高到160μg/ml,激光共聚焦显微镜获得HMME的荧光图像。两组图像的特点都为胞浆中荧光强度较高,细胞核区荧光较弱;细胞浆与细胞核的比值约为2~3:1。结论:荧光显微镜和ICCD采集细胞内光敏剂的荧光图像灵敏度高,方法可靠、实用。HMME较多分布在细胞质中,细胞核吸收较少。  相似文献   

12.
Developments in fluorescence microscopy and the availability of fluorescently labeled antibodies and probes for localization of molecules and organelles have made the microscope an indispensable tool with which one can map specific molecules to subcellular loci allowing deep insight into cell and organelle biology. Furthermore, confocal microscopy permits analysis of the three dimensional architecture of cells that could not be accomplished by conventional light microscopy. The goal of fluorescence protein tracing by microscopy is to visualize cellular constituents and general cytoarchitecture as close to native organization as possible. To achieve this, and to preserve cellular structure in the best possible manner, the specimen is usually fixed chemically. Here I review several standard fixation, permeabilization and labeling schemes followed by examples of several standard imaging techniques.  相似文献   

13.
Fluorescent microscope imaging technologies have developed at a rapid pace in recent years. High-throughput 2D fluorescent imaging platforms are now in wide use and are being applied on a proteome wide scale. Multiple fluorophore 3D imaging of live cells is being used to give detailed localization and subcellular structure information. Further, 2D and 3D video microscopy are giving important insights into the dynamics of protein localization and transport. In parallel with these developments, significant research has gone into developing new methodologies for quantifying and extracting meaning from the imaging data. Here we outline and give entry points to the literature on approaches to quantification such as segmentation, tracking, automated classification and data visualization. Particular attention is paid to the distinction between and application of concrete quantification measures such as number of objects in a cell, and abstract measures such as texture.  相似文献   

14.
The recently developed correlative super-resolution fluorescence microscopy (SRM) and electron microscopy (EM) is a hybrid technique that simultaneously obtains the spatial locations of specific molecules with SRM and the context of the cellular ultrastructure by EM. Although the combination of SRM and EM remains challenging owing to the incompatibility of samples prepared for these techniques, the increasing research attention on these methods has led to drastic improvements in their performances and resulted in wide applications. Here, we review the development of correlative SRM and EM (sCLEM) with a focus on the correlation of EM with different SRM techniques. We discuss the limitations of the integration of these two microscopy techniques and how these challenges can be addressed to improve the quality of correlative images. Finally, we address possible future improvements and advances in the continued development and wide application of sCLEM approaches.  相似文献   

15.
16.
Immobilization of virions to glass surfaces is a critical step in single virion imaging. Here we present a technique adopted from single molecule imaging assays which allows adhesion of single virions to glass surfaces with specificity. This preparation is based on grafting the surface of the glass with a mixture of PLL-g-PEG and PLL-g-PEG-Biotin, adding a layer of avidin, and finally creating virion anchors through attachment of biotinylated virus specific antibodies. We have applied this technique across a range of experiments including atomic force microscopy (AFM) and super-resolution fluorescence imaging. This sample preparation method results in a control adhesion of the virions to the surface.  相似文献   

17.
近年来,荧光成像技术发展迅速,其成像系统通常为目前最先进的分析检测仪器之一的激光共聚焦显微镜,荧光探针是荧光成像技术的核心之一。作为新兴光学成像技术,荧光成像技术在生命科学领域中应用广泛,可用于蛋白质及金属离子检测,肿瘤疾病的诊断,并为药物新剂型的研究提供了新思路。  相似文献   

18.
获得活体细胞三维图像以观察细胞内分泌囊泡的空间分布有助于细胞分泌机制的研究。三维荧光反卷积显微技术可以为活体细胞观察提供低荧光漂白 ,低毒副作用的快速三维成像。研究了显微成像系统实验测定和理论计算点扩展函数之间的关系 ,并且实验验证了NA 1.6 5物镜条件下 ,理论计算点扩展函数可以较好地反映显微成像系统的特性。然后使用已知物理结构的三维样本对反卷积算法的有效性进行了研究。进而对使用吖啶橙(acridineorange)标记的大鼠胰腺 β细胞分泌囊泡进行观察。结果显示 ,反卷积算法可以有效地去除原始图像中因为焦外光影响产生的模糊 ,处理后图像清晰地显示了细胞内分泌囊泡的空间分布  相似文献   

19.
Phagocytosis is a fundamental process through which innate immune cells engulf bacteria, apoptotic cells or other foreign particles in order to kill or neutralize the ingested material, or to present it as antigens and initiate adaptive immune responses. The pH of phagosomes is a critical parameter regulating fission or fusion with endomembranes and activation of proteolytic enzymes, events that allow the phagocytic vacuole to mature into a degradative organelle. In addition, translocation of H+ is required for the production of high levels of reactive oxygen species (ROS), which are essential for efficient killing and signaling to other host tissues. Many intracellular pathogens subvert phagocytic killing by limiting phagosomal acidification, highlighting the importance of pH in phagosome biology. Here we describe a ratiometric method for measuring phagosomal pH in neutrophils using fluorescein isothiocyanate (FITC)-labeled zymosan as phagocytic targets, and live-cell imaging. The assay is based on the fluorescence properties of FITC, which is quenched by acidic pH when excited at 490 nm but not when excited at 440 nm, allowing quantification of a pH-dependent ratio, rather than absolute fluorescence, of a single dye. A detailed protocol for performing in situ dye calibration and conversion of ratio to real pH values is also provided. Single-dye ratiometric methods are generally considered superior to single wavelength or dual-dye pseudo-ratiometric protocols, as they are less sensitive to perturbations such as bleaching, focus changes, laser variations, and uneven labeling, which distort the measured signal. This method can be easily modified to measure pH in other phagocytic cell types, and zymosan can be replaced by any other amine-containing particle, from inert beads to living microorganisms. Finally, this method can be adapted to make use of other fluorescent probes sensitive to different pH ranges or other phagosomal activities, making it a generalized protocol for the functional imaging of phagosomes.  相似文献   

20.
Localization-based super resolution microscopy can be applied to obtain a spatial map (image) of the distribution of individual fluorescently labeled single molecules within a sample with a spatial resolution of tens of nanometers. Using either photoactivatable (PAFP) or photoswitchable (PSFP) fluorescent proteins fused to proteins of interest, or organic dyes conjugated to antibodies or other molecules of interest, fluorescence photoactivation localization microscopy (FPALM) can simultaneously image multiple species of molecules within single cells. By using the following approach, populations of large numbers (thousands to hundreds of thousands) of individual molecules are imaged in single cells and localized with a precision of ~10-30 nm. Data obtained can be applied to understanding the nanoscale spatial distributions of multiple protein types within a cell. One primary advantage of this technique is the dramatic increase in spatial resolution: while diffraction limits resolution to ~200-250 nm in conventional light microscopy, FPALM can image length scales more than an order of magnitude smaller. As many biological hypotheses concern the spatial relationships among different biomolecules, the improved resolution of FPALM can provide insight into questions of cellular organization which have previously been inaccessible to conventional fluorescence microscopy. In addition to detailing the methods for sample preparation and data acquisition, we here describe the optical setup for FPALM. One additional consideration for researchers wishing to do super-resolution microscopy is cost: in-house setups are significantly cheaper than most commercially available imaging machines. Limitations of this technique include the need for optimizing the labeling of molecules of interest within cell samples, and the need for post-processing software to visualize results. We here describe the use of PAFP and PSFP expression to image two protein species in fixed cells. Extension of the technique to living cells is also described.  相似文献   

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