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Activation of human complement serine-proteinase C1r is down-regulated by a Ca(2+)-dependent intramolecular control

N M Thielens1, C Illy, I M Bally

  • 1Institut de Biologie Structurale, Laboratoire d'Enzymologie Moléculaire, Grenoble, France.

Insights

Calcium ions regulate the autoactivation of C1r, a key enzyme in the human complement system. This study reveals Ca2+ inhibits C1r activation, with C1q releasing this inhibition, crucial for understanding complement cascade regulation.

Area of Science:

  • Biochemistry
  • Immunology
  • Complement System

Background:

  • The human complement system's C1 complex initiates the classical pathway.
  • C1 comprises C1q, C1r, and C1s, with C1r autoactivation being central to C1 activation.
  • Regulation of C1r autoactivation is critical for controlling complement-mediated immune responses.

Purpose of the Study:

  • To elucidate the regulatory mechanisms of C1r autoactivation.
  • To investigate the specific role of calcium ions (Ca2+) in controlling C1r activation.
  • To understand how C1q interacts with the C1r/C1s complex to modulate C1r activity.

Main Methods:

  • Enzyme kinetics studies using proenzyme C1r, EDTA, and Ca2+.
  • Analysis of C1r activation within reconstituted C1 complexes (C1s-C1r-C1r-C1s and C1s alpha-C1r-C1r-C1s alpha).
  • Investigation of interactions between C1q (intact and fragments) and C1 complexes.

Main Results:

  • Ca2+ ions significantly inhibit C1r autoactivation, particularly intramolecular activation.
  • C1q partially reverses the Ca2+-mediated inhibition of C1r.
  • Formation of C1 complexes with C1q restores C1r activation potential, independent of C1s's catalytic region.
  • Collagen-like C1q fragments bind but do not induce C1r activation above 25°C.

Conclusions:

  • C1r autoactivation is primarily regulated by a Ca2+-dependent intramolecular mechanism involving its alpha-region.
  • The C1q-mediated signal releases this Ca2+ dependent inhibition, triggering C1r activation within the C1 complex.
  • These findings provide insight into the intricate regulation of the classical complement pathway.

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