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Yang, G.-S.

Publications and source records attributed to Yang, G.-S..

2 recordsLinked to original sources

Boxcar Imaging FCS Reveals Membrane Raft Stabilization Kinetics in Antigen-Stimulated Mast Cells

Antigen (Ag) crosslinking of immunoglobulin E-receptor (IgE-Fc{varepsilon}RI) complexes in mast cells and consequent coupling with Lyn tyrosine kinase in the plasma membrane inner leaflet stimulates transmembrane signaling to initiate allergic and inflammatory responses. As established previously, this coupling requires formation of liquid-ordered (Lo)-like regions (aka "rafts") around the nano-clustered receptors to facilitate lipid-based partitioning of Lyn via its membrane anchor, followed by receptor phosphorylation mediated by protein-protein interactions. Imaging fluorescence correlation spectroscopy (ImFCS) was previously used to measure diffusion of Lyn-EGFP and its lipid anchor PM-EGFP (both Lo-preferring) as well as EGFP-GG (inner leaflet lipid probe, liquid-disordered (Ld)-preferring) and showed that the membrane reorganized within 15 minutes after Ag addition. To quantify the transition kinetics between the resting and Ag-stimulated steady-states, we have now developed Boxcar ImFCS for time-resolved diffusion measurements on sub-minute scale. We found that Ag stimulation causes gradual diffusion decreases for Lyn-EGFP and PM-EGFP with distinctive half-times (t1/2) of 6.9 min and 12 min, respectively, showing that Lyns protein-based interactions accelerate its diffusional transition. Simultaneously, EGFP-GG gradually changes to faster diffusion with t1/2 = 9.4 min. In comparison, t1/2 = 5.0 min for recruitment of cytoplasmic Syk by phosphorylated Fc{varepsilon}RI, consistent with initiation of transmembrane signaling before global membrane reorganization and raft condensation is completed by large, stabilized Ag-IgE-Fc{varepsilon}RI clusters. Boxcar ImFCS extends the analytical power of ImFCS to reveal dynamic membrane processes that may accompany stimuli-receptor interactions and their sequalae. STATEMENT OF SIGNIFICANCEStimulated lipid reorganization and stabilization of liquid-ordered (Lo)- like regions ("rafts") in the plasma membrane inner leaflet are decisive for initiating IgE-receptor-mediated mast cell signaling. Here, we developed a new technique, termed Boxcar Imaging Fluorescence Correlation Spectroscopy, to determine the kinetics of raft stabilization after antigen binding and crosslinking IgE receptors. We provide one of the first characterizations of time-dependent raft condensation as stimulated in live cells. We envisage broad applications of this experimental strategy to quantitatively decipher intertwined processes of membrane phase-like separation and functional transmembrane signaling.

biophysics↗

Lipid Driven Inter-leaflet Coupling of Plasma Membrane Order Regulates FcεRI Signaling in Mast Cells

Engagement of high affinity immunoglobulin E (IgE) receptor Fc{varepsilon}RI with extracellular, multivalent antigen (Ag) stabilizes co-existing ordered and disordered phases in the inner leaflet of the plasma membrane. This optimally controls biochemical interactions between signaling components required for transmembrane (TM) signaling in mast cells. The biophysical organization of the resting inner leaflet is poised to respond appropriately to this extracellular stimulation. The resting inner leaflet is generally less ordered than the outer leaflet, with a lipid composition that does not spontaneously phase separate in model membranes. We proposed that coupling between the two leaflets mediates separation into different phase-like domains in the inner leaflet. To test this hypothesis in live cells, we first established a straightforward approach to evaluate changes in membrane order due to inter-leaflet coupling by measuring inner leaflet diffusion of phase-specific lipid probes with Imaging Fluorescence Correlation Spectroscopy (ImFCS) before and after methyl--cyclodextrin (mCD)-catalyzed exchange of outer leaflet lipids (LEX) with exogenous order- or disorder-promoting phospholipids. We examined the functional impact of LEX by monitoring two Ag-stimulated cellular responses, namely early-stage recruitment of Syk kinase to the inner leaflet and late-stage exocytosis of secretory granules (degranulation). Based on changes in probe diffusion, we observed global increase or decrease of inner leaflet order when outer leaflet is exchanged with order or disorder promoting lipids, respectively, in unstimulated cells. Furthermore, the degree of stimulated Syk recruitment and degranulation correlates with the inner leaflet order of the resting cells, which was varied using LEX. Overall, combined LEX and ImFCS platform provides strong evidence of lipid-based control of stimulated TM signaling in live mast cells. In addition, our functional results imply that resting-state lipid composition and ordering of the outer leaflet sets the ordering of the inner leaflet, likely via interleaflet coupling, and correspondingly modulates TM signaling initiated by antigen-activated IgE-Fc{varepsilon}RI. STATEMENT OF SIGNIFICANCECoupling between plasma membrane leaflets, which are biochemically and biophysically asymmetric, results in a steady-state membrane organization that is thought to play fundamental roles in cellular functions. Here, we present a straightforward assay built around mCD-catalyzed lipid exchange (LEX) and Imaging Fluorescence Correlation Spectroscopy (ImFCS) to quantitatively characterize a novel, lipid-driven, interleaflet coupling mechanism and its functional impact in live mast cells. We showed that elevation of outer leaflet lipid order induces ordering throughout the inner leaflet in resting cells. This ordering enhances protein-based reactions during Ag-stimulated Fc{varepsilon}RI signaling and consequent cellular response. Overall, we provide a compelling evidence of functional relevance of plasma membrane organizational heterogeneity driven by lipid-based interleaflet coupling.

biophysics↗