A biophysical imaging strategy based on linear unmixing Förster resonance energy transfer (lux-FRET) for investigating protein-protein interactions and receptor-mediated signaling in live cells is presented. This method utilizes spectral unmixing of FRET signals acquired via confocal laser scanning microscopy (LSM), enabling high-resolution quantification of molecular interactions with both spatial and temporal precision. Applying lux-FRET, receptor-receptor interactions and downstream signaling events, including agonist specificity for 5-HT receptors were examined. Ratiometric Förster resonance energy transfer (FRET) measurements with a genetically encoded cAMP biosensor allowed us to assess biosensor sensitivity to cyclic nucleotides and receptor efficacy. Additionally, physiological interactions between CD44 and 5-HT receptors and the oligomerization state of the 5-HT1A receptor through apparent FRET efficiency analysis was explored. The findings demonstrate the utility of lux-FRET combined with quantitative fluorescence microscopy as a powerful tool for dissecting dynamic signaling mechanisms in live cells. This approach offers broad applicability for researchers studying receptor pharmacology, cellular signaling, and protein interaction dynamics. • The study presents a real‑time imaging strategy that integrates lux‑FRET with quantitative fluorescence microscopy to study protein interactions and receptor signaling in living cells. • Employs spectral and ratiometric FRET analysis to achieve precise, quantitative measurement of molecular interactions. • Enables high‑resolution visualization of dynamic signaling processes under physiological conditions.
Sonal Prasad (Sun,) studied this question.