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Biology subjects

Killeen, T. D.

Publications and source records attributed to Killeen, T. D..

2 recordsLinked to original sources

Precise Alternation Between Image-Forming Sample Planes Enables Quantitative Monitoring of Receptor-Arrestin Interaction Dynamics at the Plasma Membrane of Live Cells

Investigations of G protein-coupled receptors (GPCRs) interactions with non-visual arrestins in living cells are essential to understanding the complex molecular mechanisms of GPCR-based signaling. Quantitative analysis of these interactions remains challenging in live cells, particularly when attempting to repeatedly image distinct cellular regions with high precision. Here, we describe the implementation of an optical imaging stabilization approach that integrates the recently developed Focal Readjustment for Enhanced Vertical Resolution (FREVR) technology into a multiphoton microscope, enabling high-precision alternation between image-forming sample planes with < 20-nanometer repeatability and stability over time. Using this setup, we monitored the dynamic recruitment of arrestin-2 (Arr2) to the plasma membrane of HEK-293 cells expressing muscarinic acetylcholine M2 receptors (M2R) by alternatively imaging distinct planes of interest, the basolateral membrane and a membrane cross-section. Following stimulation of M2R by agonist ligand, we observed a pronounced redistribution of cytoplasmic arrestin-2 toward the plasma membrane in both cellular cross-sections and at the basolateral membrane. This method enables direct comparison of receptor and arrestin dynamics across regions of individual cells with very high precision, eliminating the need for averaging over numerous cells in order to denoise biologically relevant signals, and thereby capturing physiological cell-to-cell variability.

biophysics↗

Distinct Membrane Binding Properties of the Two Non-visual Arrestins

Membrane interactions play a crucial role in regulating arrestin activation and its binding to phosphorylated G protein-coupled receptors (GPCRs). Here, we utilize in vitro biophysical approaches and cell-based fluorescence intensity fluctuation analysis to systematically compare the membrane-binding properties of the two highly conserved arrestin subtypes, arrestin-2 and arrestin-3, under basal and stimulated conditions. Our findings reveal that arrestin-2 selectively engages the PI(4,5)P2-containing nanodiscs via its C-edge, whereas arrestin-3 primarily utilizes its finger loop to interact with negatively charged lipids. Notably, while the lipid bilayer alone does not activate arrestin, it synergistically enhances arrestin-2/3 activation in conjunction with a phosphorylated GPCR C-tail. Additionally, the spacing between receptor phosphorylation sites and the lipid bilayer modulates arrestin-membrane assembly. Live cell tracking further demonstrates that arrestin-2 and arrestin-3 exhibit distinct plasma membrane dissociation dynamics. These findings provide novel insights into the mechanisms governing arrestin activation and its functional interplay with membranes.

biochemistry↗