Department of Chemistry, University of Illinois at Chicago, 845 W. Taylor Street, MC 111, Chicago, IL, 60607, USA.
Department of Pharmacology and The Center for Lung and Vascular Biology, The University of Illinois College of Medicine, Chicago, IL, USA.
Sci Rep. 2022 Mar 28;12(1):5291. doi: 10.1038/s41598-022-09364-w.
Genetically encoded, Förster resonance energy transfer (FRET) biosensors enable live-cell optical imaging of signaling molecules. Small conformational changes often limit the dynamic range of biosensors that combine fluorescent proteins (FPs) and sensing domains into a single polypeptide. To address this, we developed FRET and lanthanide-based FRET (LRET) biosensors of Rac1 activation with two key features that enhance sensitivity and dynamic range. For one, alpha helical linker domains separate FRET partners and ensure a large conformational change and FRET increase when activated Rac1 at the biosensor C-terminus interacts with an amino-terminal Rac binding domain. Incorporation of a luminescent Tb(III) complex with long (~ ms) excited state lifetime as a LRET donor enabled time-gated luminescence measurements of Rac1 activity in cell lysates. The LRET dynamic range increased with ER/K linker length up to 1100% and enabled robust detection of Rac1 inhibition in 96-well plates. The ER/K linkers had a less pronounced, but still significant, effect on conventional FRET biosensors (with FP donors and acceptors), and we were able to dynamically image Rac1 activation at cell edges using fluorescence microscopy. The results herein highlight the potential of FRET and LRET biosensors with ER/K linkers for cell-based imaging and screening of protein activities.
基因编码的荧光共振能量转移(FRET)生物传感器可实现信号分子的活细胞光学成像。小的构象变化通常会限制将荧光蛋白(FP)和传感结构域组合成单个多肽的生物传感器的动态范围。为了解决这个问题,我们开发了 Rac1 激活的 FRET 和基于镧系元素的 FRET(LRET)生物传感器,具有两个增强灵敏度和动态范围的关键特征。一方面,α螺旋连接域分离 FRET 供体和受体,并确保在激活的 Rac1 在生物传感器的 C 端与氨基末端 Rac 结合结构域相互作用时,发生大的构象变化和 FRET 增加。将具有长 (~ms)激发态寿命的发光 Tb(III)复合物作为 LRET 供体掺入,可实现细胞裂解物中 Rac1 活性的时间门控发光测量。LRET 动态范围随 ER/K 接头长度增加至 1100%,并能够在 96 孔板中稳健地检测 Rac1 抑制。ER/K 接头对常规 FRET 生物传感器(具有 FP 供体和受体)的影响较小,但仍然显著,并且我们能够使用荧光显微镜动态成像细胞边缘的 Rac1 激活。本文的结果强调了具有 ER/K 接头的 FRET 和 LRET 生物传感器在基于细胞的成像和蛋白质活性筛选方面的潜力。