Trimeric reassembly of the globular domain of human C1q
Pascale Tacnet1, Eric Chung Chee Cheong, Pierrette Goeltz
1Laboratoire d'Enzymologie Moléculaire, Institut de Biologie Structurale, CEA-CNRS-Université Joseph Fourier, 41 rue Jules Horowitz, 38027 Grenoble Cedex 1, France.
Insights
The globular C1q domain (gC1q) can self-assemble into functional trimers. However, the collagenous domain may be crucial for initiating gC1q folding and subsequent C1q assembly.
Area of Science:
- Immunology
- Structural Biology
- Biochemistry
Background:
- C1q initiates the classical complement pathway by binding targets.
- C1q is a hetero-trimer with distinct N-terminal, collagenous, and globular (gC1q) domains.
- The mechanism of C1q trimeric assembly and domain roles remain unclear.
Purpose of the Study:
- To investigate if the gC1q domain can form functional trimers independently.
- To determine the role of the collagenous domain in C1q assembly.
Main Methods:
- Acid-mediated dissociation of gC1q protomers.
- In vitro reassembly of gC1q protomers upon neutralization.
- Assessment of trimer functionality.
Main Results:
- gC1q protomers reassembled into functional trimers after acid treatment and neutralization.
- Successful reassembly required preserved tertiary structure in gC1q protomers.
- The gC1q domain contains intrinsic trimerization information.
Conclusions:
- The gC1q domain possesses inherent information for trimer formation.
- The collagenous domain may play a role in initializing gC1q folding for proper assembly.
- Understanding C1q assembly is key to its function in the complement system.
Abstract:
C1q is a versatile recognition protein which binds to a variety of targets and consequently triggers the classical pathway of complement. C1q is a hetero-trimer composed of three chains (A, B and C) arranged in three domains, a short N-terminal region, followed by a collagenous repeat domain that gives rise to the formation of (ABC) triple helices, each ending in a C-terminal hetero-trimeric globular domain, called gC1q, which is responsible for the recognition properties of C1q. The mechanism of the trimeric assembly of C1q and in particular the role of each domain in the process is unknown. Here, we have investigated if the gC1q domain was able to assemble into functional trimers, in vitro, in the absence of the collagenous domain, a motif known to promote obligatory trimers in other proteins. Acid-mediated gC1q protomers reassembled into functional trimers, once neutralized, indicating that it is the gC1q domain which possesses the information for trimerization. However, reassembly occurred after neutralization, only if the gC1q protomers had preserved a residual tertiary structure at the end of the acidic treatment. Thus, the collagenous domain of C1q might initialize the folding of the gC1q domain so that subsequent assembly of the entire molecule can occur.
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