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Using Scaffold Liposomes to Reconstitute Lipid-proximal Protein-protein Interactions In Vitro
Published on: January 11, 2017
Mutations in the putative lipid-interaction domain of complement C9 result in defective secretion of the functional
M Dupuis1, M C Peitsch, U Hamann
1Institute of Biochemistry, University of Lausanne, Epalinges, Switzerland.
Insights
Mutations in a key region of complement protein C9 disrupt its folding and secretion, potentially explaining frequent C9 deficiencies. This research clarifies C9
Area of Science:
- Immunology
- Molecular Biology
- Biochemistry
Background:
- The complement system is crucial for innate immunity.
- Complement protein C9 (C9) polymerizes to form the membrane attack complex (MAC) on target cells.
- Understanding C9's membrane interaction and assembly is vital for explaining complement deficiencies.
Purpose of the Study:
- To investigate the mechanism of C9 lipid binding and insertion into cell membranes.
- To identify the specific regions and amino acids critical for C9 function and secretion.
- To elucidate the molecular basis for C9 deficiencies.
Main Methods:
- Utilized photoaffinity labeling and computer modeling to predict lipid-interacting domains in C9.
- Employed site-directed mutagenesis to alter the amphipathic character of predicted helices (amino acids 293-334).
- Expressed mutated C9 in COS cells to assess protein folding, secretion, and activity.
Main Results:
- Conservative mutations within the amphipathic helices were tolerated, yielding active C9.
- Non-conservative mutations and alterations on either side of the helices resulted in non-secreted, intracellularly degraded C9.
- A naturally occurring mutant lacking Val293 in the lipid-binding region was secretion-incompetent.
- These findings highlight a 'hot spot' region critical for C9 biosynthesis and secretion.
Conclusions:
- The amphipathic helices (293-334) are essential for proper C9 folding, intracellular transport, and secretion.
- Point mutations in this 'hot spot' region likely cause a blockage in C9 transport, leading to secretion incompetence.
- This mechanism explains the high incidence of homozygous C9 deficiencies observed in some populations.
Abstract:
Complement protein C9 assembles with C5, C6, C7, C8 on the surface of target cells to form the lytic membrane attack complex (MAC). During MAC assembly and insertion into the target membrane, the hydrophilic, globular C9 partially unfolds to expose a hydrophobic lipid interaction domain. Several copies of amphiphilic C9 subsequently polymerize to form the characteristic ring-like MAC. Using a combined photoaffinity label and computer modeling approach, two amphipathic helices in a segment encompassing the amino acids 293-334 have been predicted to interact with membrane lipids. To elucidate the mechanism of C9 lipid binding and insertion, site-directed mutagenesis was used to change the amphipathic character of the helices. While some conservative amino acid replacements such as Thr307 by a Leu were tolerated and yielded fully active C9 when expressed in COS cells, successive changes of Leu305 into Val, Ala, and Glu on the hydrophobic site of the first helix gave rise to only partly or not secreted C9. All non-conservative amino acid replacements introduced on either side of the helices resulted in non-secreted C9 that was subsequently degraded intracellularly, indicating the importance of the correct folding of the presumptive transmembrane domain during biosynthesis. A natural secretion-incompetent mutant was found in which Val293, located in the proposed lipid-binding region, was lacking. Taken together, these findings suggest that the high incidence of homozygous C9 deficiencies may be due to a blockage in intracellular transport and secretion due to point mutations in this 'hot spot' region of the molecule.
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