Department of Chemistry, School of Science, University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-0033, Japan.
Proc Natl Acad Sci U S A. 2013 Jun 4;110(23):9332-7. doi: 10.1073/pnas.1304056110. Epub 2013 May 20.
Regulation of an intracellular acidic environment plays a pivotal role in biological processes and functions. However, spatiotemporal analysis of the acidification in complex tissues of living subjects persists as an important challenge. We developed a photo-inactivatable bioluminescent indicator, based on a combination of luciferase-fragment complementation and a photoreaction of a light, oxygen, and voltage domain from Avena sativa Phototropin1 (LOV2), to visualize temporally dynamic acidification in living tissue samples. Bioluminescence of the indicator diminished upon light irradiation and it recovered gradually in the dark state thereafter. The recovery rate was remarkably sensitive to pH changes but unsusceptible to fluctuation of luciferin or ATP concentrations. Bioluminescence imaging, taken as an index of the recovery rates, enabled long-time recording of acidification in apoptotic and autophagous processes in a cell population and an ischemic condition in living mice. This technology using the indicator is widely applicable to sense organelle-specific acidic changes in target biological tissues.
细胞内酸性环境的调节在生物过程和功能中起着关键作用。然而,在活体复杂组织中对酸化进行时空分析仍然是一个重要的挑战。我们开发了一种光可灭活的生物发光指示剂,基于荧光素酶片段互补和来自燕麦 Avena sativa Phototropin1 (LOV2) 的光、氧和电压域的光反应的组合,以可视化活体组织样品中时间动态的酸化。指示剂的生物发光在光照后减弱,此后在黑暗状态下逐渐恢复。恢复速率对 pH 值变化非常敏感,但对荧光素或 ATP 浓度的波动不敏感。生物发光成像作为恢复速率的指标,可实现细胞群体凋亡和自噬过程以及活体小鼠缺血状态下酸化的长时间记录。该技术使用指示剂广泛适用于目标生物组织中细胞器特异性酸性变化的检测。