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Method to Visualize and Analyze Membrane Interacting Proteins by Transmission Electron Microscopy
Published on: March 5, 2017
Size-dependent protein segregation at membrane interfaces
Eva M Schmid1, Matthew H Bakalar2, Kaushik Choudhuri3
1Department of Bioengineering, University of California, Berkeley, CA.
Insights
Protein size differences passively segregate molecules at membrane interfaces. Even small size variations, like a ~5 nm increase, can exclude proteins, impacting cell signaling and organelle interactions.
Area of Science:
- Biophysics
- Cell Biology
- Biochemistry
Background:
- Cell-cell junctions exhibit specific protein organization patterns, e.g., E-cadherin enrichment and CD45 exclusion.
- Understanding protein organization mechanisms is crucial for cell signaling and intracellular transport.
Purpose of the Study:
- To investigate the role of protein size in membrane protein organization at interfaces.
- To determine if passive mechanisms, independent of the cytoskeleton, can drive protein segregation.
Main Methods:
- Reconstitution of membrane interfaces using giant unilamellar vesicles (GUVs).
- Decoration of GUVs with synthetic binding and non-binding proteins of varying sizes.
- In vitro measurements combined with Monte Carlo simulations.
Main Results:
- Protein size differences significantly alter organization at reconstituted membrane interfaces.
- A ~5 nm increase in non-binding protein size can lead to its exclusion from the interface.
- Exclusion is influenced by lateral crowding, binding affinity, and membrane fluctuations.
Conclusions:
- Passive protein size differences are a potent mechanism for segregating proteins at membrane interfaces.
- This mechanism has implications for understanding signaling at cell-cell junctions and protein sorting in organelles.
Abstract:
Membrane interfaces formed at cell-cell junctions are associated with characteristic patterns of membrane protein organization, such as E-cadherin enrichment in epithelial junctional complexes and CD45 exclusion from the signaling foci of immunological synapses. To isolate the role of protein size in these processes, we reconstituted membrane interfaces in vitro using giant unilamellar vesicles decorated with synthetic binding and non-binding proteins. We show that size differences between binding and non-binding proteins can dramatically alter their organization at membrane interfaces in the absence of active contributions from the cytoskeleton, with as little as a ~5 nm increase in non-binding protein size driving its exclusion from the interface. Combining in vitro measurements with Monte Carlo simulations, we find that non-binding protein exclusion is also influenced by lateral crowding, binding protein affinity, and thermally-driven membrane height fluctuations that transiently limit access to the interface. This simple, sensitive, and highly effective means of passively segregating proteins has implications for signaling at cell-cell junctions and protein sorting at intracellular contact points between membrane-bound organelles.
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