Synthetic Oligodeoxynucleotide CpG Motifs Activate Human Complement through Their Backbone Structure and Induce Complement-Dependent Cytokine Release

Author:

de Boer Eline12ORCID,Sokolova Marina12,Quach Huy Q.123,McAdam Karin E.12,Götz Maximilian P.4ORCID,Chaban Viktoriia12,Vaage Jarle156ORCID,Fageräng Beatrice12ORCID,Woodruff Trent M.7ORCID,Garred Peter4ORCID,Nilsson Per H.238,Mollnes Tom E.18291011ORCID,Pischke Søren E.12612ORCID

Affiliation:

1. *Institute of Clinical Medicine, University of Oslo, Oslo, Norway;

2. †Department of Immunology, Oslo University Hospital, Oslo, Norway;

3. ‡Linnaeus Centre for Biomaterials Chemistry, Linnaeus University, Kalmar, Sweden;

4. §Laboratory of Molecular Medicine, Department of Clinical Immunology, Rigshospitalet, University of Copenhagen, Copenhagen, Denmark;

5. ¶Division of Physiology, Department of Molecular Medicine, Institute of Basic Medical Sciences, University of Oslo, Oslo, Norway;

6. ‖Department of Research and Development, Division of Emergencies and Critical Care, Oslo University Hospital, Oslo, Norway;

7. #School of Biomedical Sciences, Faculty of Medicine, The University of Queensland, Brisbane, Australia;

8. **K.G. Jebsen Inflammatory Research Center, University of Oslo, Oslo, Norway;

9. ††Research Laboratory, Nordland Hospital Bodø, Bodø, Norway;

10. ‡‡Faculty of Health Sciences, K.G. Jebsen TREC, University of Tromsø, Tromsø, Norway;

11. §§Center of Molecular Inflammation Research, Norwegian University of Science and Technology, Trondheim, Norway; and

12. ¶¶Department of Anaesthesiology and Intensive Care, Division of Emergencies and Critical Care, Oslo University Hospital, Oslo, Norway

Abstract

Abstract Bacterial and mitochondrial DNA, sharing an evolutionary origin, act as danger-associated molecular patterns in infectious and sterile inflammation. They both contain immunomodulatory CpG motifs. Interactions between CpG motifs and the complement system are sparsely described, and mechanisms of complement activation by CpG remain unclear. Lepirudin-anticoagulated human whole blood and plasma were incubated with increasing concentrations of three classes of synthetic CpGs: CpG-A, -B, and -C oligodeoxynucleotides and their GpC sequence controls. Complement activation products were analyzed by immunoassays. Cytokine levels were determined via 27-plex beads-based immunoassay, and CpG interactions with individual complement proteins were evaluated using magnetic beads coated with CpG-B. In whole blood and plasma, CpG-B and CpG-C (p < 0.05 for both), but not CpG-A (p > 0.8 for all), led to time- and dose-dependent increase of soluble C5b-9, the alternative complement convertase C3bBbP, and the C3 cleavage product C3bc. GpC-A, -B, and -C changed soluble fluid-phase C5b-9, C3bBbP, and C3bc to the same extent as CpG-A, -B, and -C, indicating a DNA backbone–dependent effect. Dose-dependent CpG-B binding was found to C1q (r = 0.83; p = 0.006) and factor H (r = 0.93; p < 0.001). The stimulatory complement effect was partly preserved in C2-deficient plasma and completely preserved in MASP-2–deficient serum. CpG-B increased levels of IL-1β, IL-2, IL-6, IL-8, MCP-1, and TNF in whole blood, which were completely abolished by inhibition of C5 and C5aR1 (p < 0.05 for all). In conclusion, synthetic analogs of bacterial and mitochondrial DNA activate the complement system via the DNA backbone. We suggest that CpG-B interacts directly with classical and alternative pathway components, resulting in complement-C5aR1–dependent cytokine release.

Publisher

The American Association of Immunologists

Subject

Immunology,Immunology and Allergy

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