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.

Molecular Immunology
|January 1, 1993
PubMed

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.

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