A novel TNFRSF1A mutation associated with TNF-receptor-associated periodic syndrome and its metabolic signature

Author:

Steiner Joachim D12ORCID,Annibal Andrea2ORCID,Laboy Raymond2,Braumann Marie1,Göbel Heike3,Laasch Valentin2,Müller Roman-Ulrich14,Späth Martin R1,Antebi Adam24,Kubacki Torsten1ORCID

Affiliation:

1. Department II of Internal Medicine and Center for Molecular Medicine Cologne, Faculty of Medicine and University Hospital Cologne, University of Cologne , Cologne, Germany

2. Max Planck Institute for Biology of Ageing , Cologne, Germany

3. Institute of Pathology, University Hospital of Cologne , Cologne, Germany

4. Cologne Excellence Cluster on Cellular Stress Responses in Aging-Associated Diseases (CECAD), University of Cologne , Cologne, Germany

Abstract

Abstract Objective We describe a family with a novel mutation in the TNF Receptor Superfamily Member 1A (TNFRSF1A) gene causing TNF receptor–associated periodic syndrome (TRAPS) with renal AA amyloidosis. Methods Case series of affected family members. We further investigated the plasma metabolome of these patients in comparison with healthy controls using mass spectrometry. Results In all symptomatic family members, we detected the previously undescribed variant c.332A>G (p.Q111R) in the TNFRSF1A gene. Canakinumab proved an effective treatment option leading to remission in all treated patients. One patient with suspected renal amyloidosis showed near normalization of proteinuria under treatment. Analysis of the metabolome revealed 31 metabolic compounds to be upregulated and 35 compounds to be downregulated compared with healthy controls. The most dysregulated metabolites belonged to pathways identified as arginine biosynthesis, phenylalanine, tyrosine and tryptophan biosynthesis, and cysteine and methionine metabolism. Interestingly, the metabolic changes observed in all three TRAPS patients seemed independent of treatment with canakinumab and subsequent remission. Conclusion We present a novel mutation in the TNFRSF1A gene associated with amyloidosis. Canakinumab is an effective treatment for individuals with this new likely pathogenic variant. Alterations in the metabolome were most prominent in the pathways related to arginine biosynthesis, tryptophan metabolism, and metabolism of cysteine and methionine, and seemed to be unaffected by treatment with canakinumab. Further investigation is needed to determine the role of these metabolomic changes in the pathophysiology of TRAPS.

Funder

European Research Council

European Union’s Horizon 2020

Max-Planck-Gesellschaft

Publisher

Oxford University Press (OUP)

Subject

Pharmacology (medical),Rheumatology

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