首页> 美国卫生研究院文献>Proceedings of the National Academy of Sciences of the United States of America >Optimized two-color super resolution imaging of Drp1 during mitochondrial fission with a slow-switching Dronpa variant
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Optimized two-color super resolution imaging of Drp1 during mitochondrial fission with a slow-switching Dronpa variant

机译:线粒体裂变过程中Drp1的慢速切换Dronpa变体优化的双色双色成像

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摘要

We studied the single-molecule photo-switching properties of Dronpa, a green photo-switchable fluorescent protein and a popular marker for photoactivated localization microscopy. We found the excitation light photoactivates as well as deactivates Dronpa single molecules, hindering temporal separation and limiting super resolution. To resolve this limitation, we have developed a slow-switching Dronpa variant, rsKame, featuring a V157L amino acid substitution proximal to the chromophore. The increased steric hindrance generated by the substitution reduced the excitation light-induced photoactivation from the dark to fluorescent state. To demonstrate applicability, we paired rsKame with PAmCherry1 in a two-color photoactivated localization microscopy imaging method to observe the inner and outer mitochondrial membrane structures and selectively labeled dynamin related protein 1 (Drp1), responsible for membrane scission during mitochondrial fission. We determined the diameter and length of Drp1 helical rings encircling mitochondria during fission and showed that, whereas their lengths along mitochondria were not significantly changed, their diameters decreased significantly. These results suggest support for the twistase model of Drp1 constriction, with potential loss of subunits at the helical ends.
机译:我们研究了Dronpa的单分子光开关特性,绿色的光开关荧光蛋白和用于光激活定位显微镜的流行标记。我们发现激发光不仅可以激活Dronpa单分子,还可以使其失活,从而阻碍了时间分离并限制了超分辨率。为解决此限制,我们开发了一种慢转换Dronpa变体rsKame,其特征在于靠近发色团的V157L氨基酸取代。由取代产生的增加的位阻降低了激发光诱导的从暗态到荧光态的光活化。为了证明其适用性,我们将rsKame与PAmCherry1在两种颜色的光活化定位显微镜成像方法中配对,以观察线粒体内膜和内膜的结构以及选择性标记的动力蛋白相关蛋白1(Drp1),该蛋白负责线粒体裂变过程中的膜分裂。我们确定了裂变过程中围绕线粒体的Drp1螺旋环的直径和长度,并表明,尽管沿线粒体的长度不变,但直径却明显减小。这些结果表明支持Drp1收缩的扭曲酶模型,可能在螺旋末端失去亚基。

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