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首页> 外文期刊>Analytical Chemistry >REAL-TIME DETECTION OF SINGLE-MOLECULES IN SOLUTION BY CONFOCAL FLUORESCENCE MICROSCOPY
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REAL-TIME DETECTION OF SINGLE-MOLECULES IN SOLUTION BY CONFOCAL FLUORESCENCE MICROSCOPY

机译:共聚焦荧光显微镜实时检测溶液中的单分子

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We report real-time detection of single fluorescent molecules in solution with a simple technique that combines confocal microscopy, diffraction-limited laser excitation, and a high-efficiency photon detector. The probe volume, similar to 5.0 x 10(-16) L, is defined latitudinally by optical diffraction and longitudinally by spherical aberration. With an unlimited excitation throughput and a low background level, this technique allows fluorescence detection of single rhodamine molecules with a signal-to-noise ratio of similar to 10 in 1 ms, which approaches the theoretical limit set by fluorescence saturation. Real-time measurements at a speed of 500 000 data points/s yield single-molecule fluorescence records that not only show the actual transit time of a particular molecule across the probe volume but also contain characteristically long (similar to 50 mu s) and short (similar to 4 mu s) dark gaps. Random-walk simulations of single fluorescent molecules provide evidence that these long and short dark periods are caused mainly by boundary recrossing motions of a single molecule at the probe volume periphery and by intersystem crossing into and out of the dark triplet state. We have also extended the use of confocal fluorescence microscopy to study individual, fluorescently tagged biomolecules, including deoxynucleotides, single-stranded primers, and double-stranded DNA. The achieved sensitivity permits dynamic structural studies of individual lambda-phage DNA molecules labeled with intercalating fluorescent dyes; the results reveal large-amplitude DNA structural fluctuations that occur on the millisecond time scale.
机译:我们报告了一种简单的技术,结合了共聚焦显微镜,衍射极限激光激发和高效光子检测器,可以对溶液中的单个荧光分子进行实时检测。探头体积类似于5.0 x 10(-16)L,是通过光学衍射在纬度上定义的,而在球差在纵向上是定义的。凭借无限的激发通量和低背景水平,该技术允许在1 ms内以接近10的信噪比对单个若丹明分子进行荧光检测,接近荧光饱和度设定的理论极限。以500,000个数据点/秒的速度进行实时测量可产生单分子荧光记录,不仅显示特定分子跨探针体积的实际传输时间,而且还具有特征性的长(类似于50μs)和短时间(类似于4 s s)暗间隙。单个荧光分子的随机游走模拟提供了证据,这些长的和短的暗周期主要是由单个分子在探针体积外围的边界重交运动以及系统进入和退出暗三重态引起的。我们还扩展了共聚焦荧光显微镜的用途,以研究带有荧光标记的单个生物分子,包括脱氧核苷酸,单链引物和双链DNA。所获得的灵敏度允许对嵌入荧光染料标记的单个λ噬菌体DNA分子进行动态结构研究;结果揭示了在毫秒级上发生的大幅度DNA结构波动。

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