Effects of Spontaneous Bilayer Curvature on Influenza Virus–mediated Fusion Pores
Open Access
- 1 October 1998
- journal article
- Published by Rockefeller University Press in The Journal of general physiology
- Vol. 112 (4) , 409-422
- https://doi.org/10.1085/jgp.112.4.409
Abstract
Cells expressing the hemagglutinin protein of influenza virus were fused to planar bilayer membranes containing the fluorescent lipid probes octadecylrhodamine (R18) or indocarbocyanine (DiI) to investigate whether spontaneous curvature of each monolayer of a target membrane affects the growth of fusion pores. R18 and DiI lowered the transition temperatures for formation of an inverted hexagonal phase, indicating that these probes facilitate the formation of negative curvature structures. The probes are known to translocate from one monolayer of a bilayer membrane to the other in a voltage-dependent manner. The spontaneous curvature of the cis monolayer (facing the cells) or the trans monolayer could therefore be made more negative through control of the polarity of voltage across the planar membrane. Electrical admittance measurements showed that the open times of flickering fusion pores were shorter when probes were in trans monolayers and longer when in cis monolayers compared with times when probe was symmetrically distributed. Open times were the same for probe symmetrically distributed as when probes were not present. Thus, open times were a function of the asymmetry of the spontaneous curvature between the trans and cis monolayers. Enriching the cis monolayer with a negative curvature probe reduced the probability that a small pore would fully enlarge, whereas enriching the trans monolayer promoted enlargement. Lysophosphatidylcholine has positive spontaneous curvature and does not translocate. When lysophosphatidylcholine was placed in trans leaflets of planar membranes, closing of fusion pores was rare. The effects of the negative and positive spontaneous curvature probes do not support the hypothesis that a flickering pore closes from an open state within a hemifusion diaphragm (essentially a “flat” structure). Rather, such effects support the hypothesis that the membrane surrounding the open pore forms a three-dimensional hourglass shape from which the pore flickers shut.Keywords
This publication has 50 references indexed in Scilit:
- Inner but Not Outer Membrane Leaflets Control the Transition from Glycosylphosphatidylinositol-anchored Influenza Hemagglutinin-induced Hemifusion to Full FusionThe Journal of cell biology, 1997
- An Early Stage of Membrane Fusion Mediated by the Low pH Conformation of Influenza Hemagglutinin Depends upon Membrane LipidsThe Journal of cell biology, 1997
- GPI-anchored influenza hemagglutinin induces hemifusion to both red blood cell and planar bilayer membranes.The Journal of cell biology, 1995
- Comparison of transient and successful fusion pores connecting influenza hemagglutinin expressing cells to planar membranes.The Journal of general physiology, 1995
- The fusion kinetics of influenza hemagglutinin expressing cells to planar bilayer membranes is affected by HA density and host cell surface.The Journal of general physiology, 1995
- Restricted movement of lipid and aqueous dyes through pores formed by influenza hemagglutinin during cell fusion.The Journal of cell biology, 1994
- Lipid PolymorphismAnnals of the New York Academy of Sciences, 1987
- Diacylglycerols, lysolecithin, or hydrocarbons markedly alter the bilayer to hexagonal phase transition temperature of phosphatidylethanolaminesBiochemistry, 1985
- An efficient method for introducing macromolecules into living cells.The Journal of cell biology, 1985
- Transmembrane movement of phosphatidylglycerol and diacylglycerol sulfhydryl analogsBiochemistry, 1984