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Assembly of Cell Mimicking Supported and Suspended Lipid Bilayer Models for the Study of Molecular Interactions
Published on: August 3, 2021
Syncollin homo-oligomers associate with lipid bilayers in the form of doughnut-shaped structures
N A Geisse1, B Wäsle, D E Saslowsky
1Department of Pharmacology, University of Cambridge, Tennis Court Road, Cambridge CB2 1PD, United Kingdom.
Insights
Syncollin, a pancreatic protein, forms doughnut-shaped homo-oligomers. These structures, visualized by microscopy, create pores in liposomes, suggesting a role in cellular transport.
Area of Science:
- Cell biology
- Protein structure and function
- Pancreatic physiology
Background:
- Syncollin is a 16-kDa protein found on pancreatic acinar cell zymogen granule membranes.
- Purified syncollin behaves as a large (120-kDa) protein, indicating oligomerization.
Purpose of the Study:
- To investigate the structural organization of the syncollin oligomer.
- To elucidate the functional properties of syncollin oligomers.
Main Methods:
- Chemical cross-linking to determine oligomer size distribution.
- Electron microscopy for structural visualization.
- Atomic force microscopy (AFM) to analyze oligomer morphology and behavior.
- Liposome permeability assays to assess functional impact.
Main Results:
- Syncollin exists as homo-oligomers, forming discrete species up to hexamers.
- Electron microscopy revealed doughnut-shaped structures (10 nm outer diameter).
- AFM confirmed doughnut structures and oligomer dissociation at alkaline pH or with reducing agents.
- Syncollin induced permeability in liposomes for a fluorescent probe.
Conclusions:
- Syncollin forms oligomeric, doughnut-shaped structures on cell membranes.
- These structures can create pores, potentially facilitating transport across membranes.
- The findings suggest a role for syncollin in pancreatic acinar cell secretion or transport processes.
Abstract:
Syncollin is a 16-kDa protein that is associated with the luminal surface of the zymogen granule membrane in the pancreatic acinar cell. Detergent-solubilized, purified syncollin migrates on sucrose density gradients as a large (120-kDa) protein, suggesting that it exists naturally as a homo-oligomer. In this study, we investigated the structure of the syncollin oligomer. Chemical cross-linking of syncollin produced a ladder of bands, the sizes of which are consistent with discrete species from monomers up to hexamers. Electron microscopy of negatively stained syncollin revealed doughnut-shaped structures of outer diameter 10 nm and inner diameter 3 nm. Atomic force microscopy (AFM) of syncollin on mica supports at pH 7.6 showed particles of molecular volume 155 nm(3). Smaller particles were observed either at alkaline pH (11.0), or in the presence of a reducing agent (dithiothreitol), conditions that cause dissociation of the oligomer. AFM imaging of syncollin attached to supported lipid bilayers again revealed doughnut-shaped structures (outer diameter 31 nm, inner diameter 6 nm) protruding 1 nm from the bilayer. Finally, addition of syncollin to liposomes rendered them permeable to the water-soluble fluorescent probe 5(6)-carboxyfluorescein. These results are discussed in relation to the possible physiological role of syncollin.
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