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Eculizumab treatment alters the proteometabolome beyond the inhibition of complement
Christopher Nelke, Christina B. Schroeter, Frauke Stascheit, Niklas Huntemann, Marc Pawlitzki, Alice Willison, Saskia Räuber, Nico Melzer, Ute Distler, Stefan Tenzer, Kai Stühler, Andreas Roos, Andreas Meisel, Sven G. Meuth, Tobias Ruck
Christopher Nelke, Christina B. Schroeter, Frauke Stascheit, Niklas Huntemann, Marc Pawlitzki, Alice Willison, Saskia Räuber, Nico Melzer, Ute Distler, Stefan Tenzer, Kai Stühler, Andreas Roos, Andreas Meisel, Sven G. Meuth, Tobias Ruck
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Research Article Neuroscience

Eculizumab treatment alters the proteometabolome beyond the inhibition of complement

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Abstract

Therapeutic strategies targeting complement have revolutionized the treatment of myasthenia gravis (MG). However, a deeper understanding of complement modulation in the human system is required to improve treatment responses and identify off-target effects shaping long-term outcomes. For this reason, we studied a cohort of patients with MG treated with either eculizumab or azathioprine as well as treatment-naive patients using a combined proteomics and metabolomics approach. This strategy validated known effects of eculizumab on the terminal complement cascade. Beyond that, eculizumab modulated the serum proteometabolome as distinct pathways were altered in eculizumab-treated patients, including the oxidative stress response, mitogen-activated protein kinase signaling, and lipid metabolism with particular emphasis on arachidonic acid signaling. We detected reduced levels of arachidonate 5-lipoxygenase (ALOX5) and leukotriene A4 in eculizumab-treated patients. Mechanistically, ligation of the C5a receptor (C5aR) is needed for ALOX5 metabolism and generation of downstream leukotrienes. As eculizumab prevents cleavage of C5 into C5a, decreased engagement of C5aR may inhibit ALOX5-mediated synthesis of pro-inflammatory leukotrienes. These findings indicate distinct off-target effects induced by eculizumab, illuminating potential mechanisms of action that may be harnessed to improve treatment outcomes.

Authors

Christopher Nelke, Christina B. Schroeter, Frauke Stascheit, Niklas Huntemann, Marc Pawlitzki, Alice Willison, Saskia Räuber, Nico Melzer, Ute Distler, Stefan Tenzer, Kai Stühler, Andreas Roos, Andreas Meisel, Sven G. Meuth, Tobias Ruck

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Figure 6

Immunometabolic pathways are altered in eculizumab-treated patients.

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Immunometabolic pathways are altered in eculizumab-treated patients.
(A)...
(A) sPLS-DA score plot showing the metabolite data set for different groups. Prediction ellipses are 95% CI. (B) Functional enrichment analysis of the eculizumab cohort compared with other groups. Enrichment was performed by MetaboAnalystR package version 3.0 set to GSEA using the KEGG database. (C and D) Metabolite abundance of 5-HPETE and PGH2 displayed as raincloud plots. Metabolite levels were determined by metabolomic analysis. (E and F) Metabolite abundance of LTA4 and PGH2 displayed as raincloud plots. Metabolite levels were determined by immunoassay. Whiskers are 1.5 IQR. (G) For longitudinal analysis, samples were acquired from 5 patients before and under eculizumab treatment. (H) Longitudinal analysis shows reduction of LTA4 level in eculizumab-treated patients. (I) PGH2 levels remained unchanged after switching to eculizumab. “Before eculizumab” and “eculizumab” are represented in dark red and red, respectively. (J) Schematic overview of AA metabolism. Changes observed in this study are indicated by arrows. To account for multiple comparisons, statistical significance was corrected by the false discovery rate (FDR) approach. A threshold of q = 5% was used for FDR. ANOVA testing was used for comparison of multiple groups. N = 10 per group. 5-HPETE, arachidonic acid 5-hydroperoxide; GSEA, gene set enrichment analysis; LTA4, leukotriene A4; PGH2, prostaglandin H2; sPLS-DA, sparse partial least squares discriminant analysis.

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