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首页> 外文期刊>Pfluegers Archiv: European Journal of Physiology >Imaging Ca2+ activity in mammalian cells and zebrafish with a novel red-emitting aequorin variant
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Imaging Ca2+ activity in mammalian cells and zebrafish with a novel red-emitting aequorin variant

机译:使用新型红色发光水母发光蛋白变体对哺乳动物细胞和斑马鱼中的Ca2 +活性进行成像

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摘要

Ca2+ monitoring with aequorin is an established bioluminescence technique, whereby the photoprotein emits blue light when it binds to Ca2+. However, aequorin's blue emission and low quantum yield limit its application for in vivo imaging because blue-green light is greatly attenuated in animal tissues. In earlier work, aequorin was molecularly fused with green, yellow, and red fluorescent proteins, producing an emission shift through bioluminescence resonance energy transfer (BRET). We have previously shown that the chimera tandem dimer Tomato-aequorin (tdTA) emits red light in mammalian cells and across the skin and other tissues of mice [1]. In this work, we varied the configuration of the linker in tdTA to maximize energy transfer. One variant, named Redquorin, improved BRET from aequorin to tdTomato to almost a maximum value, and the emission above 575 nm exceeded 73 % of total counts. By pairing Redquorin with appropriate synthetic coelenterazines, agonist-induced and spontaneous Ca2+ oscillations in single HEK-293 cells were imaged. In addition, we also imaged Ca2+ transients associated with twitching behavior in developing zebrafish embryos expressing Redquorin during the segmentation period. Furthermore, the emission profile of Redquorin resulted in significant luminescence crossing a blood sample, a highly absorbing tissue. This new tool will facilitate in vivo imaging of Ca2+ from deep tissues of animals.
机译:用水母发光蛋白监测Ca2 +是一种成熟的生物发光技术,该光蛋白与Ca2 +结合时会发出蓝光。然而,水母发光蛋白的蓝色发射和低量子产率限制了其在体内成像中的应用,因为蓝绿色光在动物组织中被大大衰减。在较早的工作中,水母发光蛋白与绿色,黄色和红色荧光蛋白分子融合,通过生物发光共振能量转移(BRET)产生发射位移。先前我们已经表明,嵌合串联二聚体番茄-水母发光蛋白(tdTA)在哺乳动物细胞中以及在小鼠的皮肤和其他组织中发出红光[1]。在这项工作中,我们改变了tdTA中连接子的结构,以最大程度地进行能量转移。一种名为Redquorin的变体将BRET从水母发光蛋白提高到tdTomato几乎达到最大值,并且在575 nm以上的发射超过了总计数的73%。通过将Redquorin与适当的合成腔肠素配对,可以对单个HEK-293细胞中激动剂诱导的和自发的Ca2 +振荡进行成像。此外,我们还对在分割期间表达Redquorin的发育中斑马鱼胚胎中与抽搐行为相关的Ca2 +瞬态进行了成像。此外,Redquorin的发射曲线导致穿过高吸收组织的血样的大量发光。这种新工具将促进动物深层组织中Ca2 +的体内成像。

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