Assembly of complement components C5b-8 and C5b-9 on lipid bilayer membranes: visualization by freeze-etch electron microscopy
- 24 January 1989
- journal article
- research article
- Published by American Chemical Society (ACS) in Biochemistry
- Vol. 28 (2) , 534-540
- https://doi.org/10.1021/bi00428a019
Abstract
We have visualized by freeze-etch electron microscopy the macromolecular complexes of complement, C5b-8 and C5b-9, respectively, assembled on synthetic phospholipid bilayers. These complexes were formed sequentially by using purified human complement components C5b-b followed by C7, C8, and C9. Complexes of C5b-8 were observed on the external surface (ES) of vesicles as 12-nm particles that tended to form polydisperse aggregates. The aggregates were sometimes of a regular chainlike structure containing varying numbers of paired subunits. Etching of vesicles containing C5b-9 complexes revealed on the ES large rings of .apprxeq. 27-nm outer diameter. One or two knobs usually were attached to the perimeter of the rings. Splitting of the membrane resulted in partitioning of the C5b-9 with the outer leaflet. Thus, round holes of .apprxeq. 17-nm diameter were present in the protoplasmic face (PF), and raised circular stumps of a matching size were present on the exoplasmic face (EF) of C5b-9 vesicles. C5b-9 complexes were frequently localized in regions of the lowest lipid order. That is, in micrographs of the EF and ES, single C5b-9 complexes were located where the ripples of the P.beta.'' phase bend or reach a dead end, and linear arrays of C5b-9 complexes outlined disclination-like structures in the lattice; the holes in the PF mirrored this distribution. The membrane immediately surrounding C5b-9 rings was often sunk inwardly over an area much larger than that of the ring itself. Thus, shallow depressions were seen about the rings on the ES and around the holes in the PF, whereas raised areolas surrounded the stumps on the EF. These areolas presumably were composed of lipid because of their rippled appearance characteristic of the P.beta.'' phase. These observations are consistent with the hypothesis that the C5b-9 complex is capable of restructuring lipid organization in its immediate environment and that such an effort may participate in the mechanism whereby complement permeabilizes cell membranes.Keywords
This publication has 18 references indexed in Scilit:
- Evidence of direct insertion of terminal complement proteins into cell membrane bilayers during cytolysis. Labeling by a photosensitive membrane probe reveals a major role for the eighth and ninth components.Journal of Biological Chemistry, 1983
- Formation of transmembrane tubules by spontaneous polymerization of the hydrophilic complement protein C9Nature, 1982
- Polymerization of the ninth component of complement (C9): formation of poly(C9) with a tubular ultrastructure resembling the membrane attack complex of complement.Proceedings of the National Academy of Sciences, 1982
- Membrane attack complex of complement: distribution of subunits between the hydrocarbon phase of target membranes and water.Proceedings of the National Academy of Sciences, 1981
- Membrane attack complex of complement: a structural analysis of its assembly.The Journal of Experimental Medicine, 1980
- Preparation of unilamellar liposomes of intermediate size (0.1–0.2 μm) by a combination of reverse phase evaporation and extrusion through polycarbonate membranesBiochimica et Biophysica Acta (BBA) - Biomembranes, 1980
- Disassembly of viral membranes by complement independent of channel formation.Proceedings of the National Academy of Sciences, 1979
- Molecular reorganization of lipid bilayers by complement: a possible mechanism for membranolysis.Proceedings of the National Academy of Sciences, 1979
- A model for ganglioside behaviour in cell membranesBiochimica et Biophysica Acta (BBA) - Biomembranes, 1978
- Immune Lytic Transformation: A State of Irreversible Damage Generated as a Result of the Reaction of the Eighth Component in the Guinea Pig Complement SystemThe Journal of Immunology, 1968