Department of Biotechnology, Graduate School of Engineering, Osaka University, 2-1 Yamadaoka, Suita 565-0871, Japan.
The Institute of Scientific and Industrial Research, Osaka University, 8-1 Mihogaoka, Ibaraki 567-0047, Japan.
Cell Chem Biol. 2019 Oct 17;26(10):1469-1479.e6. doi: 10.1016/j.chembiol.2019.07.012. Epub 2019 Aug 15.
Reversibly switchable fluorescent proteins (RSFPs) are crucial tags for super-resolution observation of protein localization and dynamics inside living cells. However, due to the high fluorescence pK (∼5-6) of most RSFPs, their usage in acidic conditions (pH 4.5-6.0) has been limited. Here, we investigated a new photochromic mechanism in Gamillus, a recently developed green fluorescent protein with acid tolerance. Gamillus exhibits negative switching with especially high contrast in acidic conditions, and its off switching is caused by trans-to-cis isomerization of the chromophore hydroxyphenyl ring that accompanies protonation. Through a combination of rational design and saturation mutagenesis, we developed two variants with enhanced switching contrasts and off-switching speeds, designated rsGamillus-S and rsGamillus-F, respectively. The fluorescence intensity, off-switching speed, and switching contrast of the rsGamillus variants are only slightly affected by changes in pH between 4.5 and 7.5. Exploiting these properties, we succeeded in high-contrast super-resolution imaging of cellular architectures in acidic conditions.
可还原荧光蛋白(RSFPs)是用于在活细胞内观察蛋白质定位和动态的超分辨率观察的关键标记物。然而,由于大多数 RSFPs 的荧光 pK(约为 5-6)较高,其在酸性条件(pH 4.5-6.0)下的使用受到限制。在这里,我们研究了最近开发的具有耐酸性的绿色荧光蛋白 Gamillus 中的一种新的光致变色机制。Gamillus 在酸性条件下表现出特别高对比度的负切换,其关闭切换是由生色团的羟苯基环的顺式-反式异构化引起的,该异构化伴随着质子化。通过合理设计和饱和突变,我们开发了两种具有增强的切换对比度和关闭切换速度的变体,分别命名为 rsGamillus-S 和 rsGamillus-F。rsGamillus 变体的荧光强度、关闭切换速度和切换对比度仅受 pH 在 4.5 到 7.5 之间变化的轻微影响。利用这些特性,我们成功地在酸性条件下实现了高对比度的细胞结构超分辨率成像。