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Time-resolvable fluorescent conjugates for the detection of pathogens in environmental samples containing autofluorescent material

机译:用于检测含有自发荧光材料的环境样品中病原体的时间可解析的荧光缀合物

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Water is routinely monitored for environmental pathogens such a Cryptosporidium and Giardia using immunofluorescence microscopy (IFM). Autofluorescence can greatly diminish an operators capacity to resolve labeled pathogens from non-specific background. Naturally fluorescing components (autofluorophores) encountered in biological samples typically have fluorescent lifetimes (τ) of less than 100 nanoseconds and their emissions may be excluded through use of time-resolved fluorescence microscopy (TRFM). TRFM relies on the large differences in τ between autofluorescent molecules and long-lived lanthanide chelates. In TRFM, targets labeled with a time-resolvable fluorescent immunoconjugate are excited by an intense (UV) light pulse. A short delay is imposed to permit the decay of autofluorescence before capture of luminescence from the excited chelate using an image intensified CCD camera. In our experience, autofluorescence can be reduced to insignificant levels with a consequent 30-fold increase in target visibility using TRFM techniques. We report conjugation of a novel europium chelate to a monoclonal antibody specific for Giardia lamblia and use of the immunoconjugate for TRFM studies. Initial attempts to conjugate the same chelate to a monoclonal antibody directed against Cryptosporidium parvum led to poorly fluorescent constructs that were prone to denature and precipitate. We successfully conjugated BHHCT to anti-mouse polyvalent immunoglobulin and used this construct to overcome the difficulties in direct labeling of the anti-Cryptosporidium antibody. Both Giardia and Cryptosporidium were labeled using the anti-mouse protocol with a subsequent 20-fold and 6.6-fold suppression of autofluorescence respectively. A rapid protocol for conjugating and purifying the immunoconjugate was found and methods of quantifying the fluorescence to protein ratio determined. Performance of our TRFM was dependent on the quality and brightness of the immunoconjugate and optimization of the conjugation process is necessary to reap the full benefit of time-resolved techniques.
机译:使用免疫荧光显微镜(IFM)常规监测用于环保病原体的环境病原体和Giardia。自发荧光可以大大减少操作员能力,解决来自非特定背景的标记的病原体。在生物样品中遇到的天然荧光组分(自发氟化物)通常具有小于100纳秒的荧光寿命(τ),并且它们的排放可以通过使用时间分辨的荧光显微镜(TRFM)来排除。 TRFM依赖于自过荧光分子和长寿命镧系元素之间的τ的巨大差异。在TRFM中,用时间可解析的荧光免疫缀合物标记的靶标被强烈(UV)光脉冲激发。施加短暂的延迟,允许使用图像从激发的CCD相机捕获从激发螯合物之前捕获发光前的自发荧光。在我们的经验中,使用TRFM技术的目标可见度增加,可减少自发荧光。我们报告将新型铕螯合物结合到对Giardia Labblia的单克隆抗体和使用免疫缀合物进行TRFM研究。初始尝试将相同的螯合物与针对密码孢子座的单克隆抗体缀合,导致荧光构建体易于变性和沉淀。我们成功地将BHHCT与抗小鼠多价免疫球蛋白共轭,并使用该构建体来克服抗碱抗体抗体直接标记的困难。使用抗小鼠方案标记贾纳迪亚和密码孢子脒,分别用随后的20倍和6.6倍抑制自荧光。发现了一种用于缀合和纯化免疫缀合物的快速方案,并定量荧光与测定蛋白质比的方法。我们的TRFM的性能取决于免疫缀合物的质量和亮度,并对共轭过程的优化是必要的,以获得时间解决技术的全部好处。

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