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Published on: March 29, 2017
Susceptibility of nucleotide-binding oligomerization domain 2 mutations to Whipple's disease
Katrina A Williamson1, Mark Yun2, Matthew J Koster1
1Division of Rheumatology, Mayo Clinic, Rochester, MN, USA.
Objectives:
Whipple's disease (WD) results from infection of the bacteria Tropheryma whipplei (TW). This disease is characterized by macrophage infiltration of intestinal mucosa and primarily affects Caucasian males. Genetic studies of host susceptibility are scarce. Nucleotide-binding oligomerization domain containing protein 2 (NOD2) is an innate immune sensor, resides mainly in monocytes/macrophages and contributes to defence against infection and inflammatory regulation. NOD2 mutations are associated with autoinflammatory diseases. We report the association of NOD2 mutations with TW and WD for the first time.
Methods:
A multicentre, retrospective study of three patients with WD was conducted. Patients received extensive multidisciplinary evaluations and were cared for by the authors. NOD2 and its association with infection and inflammation were schematically represented.
Results:
All patients were Caucasian men and presented with years of autoinflammatory phenotypes, including recurrent fever, rash, inflammatory arthritis, gastrointestinal symptoms and elevated inflammatory markers. All patients underwent molecular testing using a gene panel for periodic fever syndromes and were identified to carry NOD2 mutations associated with NOD2-associated autoinflammatory disease. Despite initially negative gastrointestinal evaluations, repeat endoscopy with duodenal tissue biopsy ultimately confirmed WD. After initial ceftriaxone and maintenance with doxycycline and/or HCQ, symptoms were largely controlled, though mild relapses occurred in follow-up.
Conclusion:
Both NOD2 and TW/WD are intensively involved in monocytes/macrophages. WD is regarded as a macrophage disease. NOD2 leucin-rich repeat-associated mutations in monocytes/macrophages cause functional impairment of these cells and consequently may make the host susceptible for TW infection and WD, especially in the setting of immunosuppression.
Insights
Mutations in the Nucleotide-binding oligomerization domain containing protein 2 (NOD2) gene are linked to Whipple's disease (WD), a rare bacterial infection. This finding may explain host susceptibility to Tropheryma whipplei (TW) infection.
Area of Science:
- Immunology
- Infectious Diseases
- Genetics
Background:
- Whipple's disease (WD) is caused by Tropheryma whipplei (TW) infection, affecting macrophages and primarily Caucasian males.
- Genetic factors influencing host susceptibility to WD are not well understood.
- Nucleotide-binding oligomerization domain containing protein 2 (NOD2) is an innate immune sensor involved in infection defense and inflammation regulation, with mutations linked to autoinflammatory conditions.
Purpose of the Study:
- To investigate the association between NOD2 mutations and Whipple's disease.
- To explore the role of NOD2 in host susceptibility to Tropheryma whipplei infection.
Main Methods:
- A multicentre, retrospective study of three Whipple's disease patients.
- Molecular testing using a gene panel for periodic fever syndromes.
- Repeat endoscopy with duodenal tissue biopsy for diagnosis.
Main Results:
- All three patients were Caucasian men with autoinflammatory phenotypes and confirmed NOD2 mutations.
- Whipple's disease was ultimately confirmed via duodenal biopsy despite initial negative evaluations.
- Patients showed symptom control with antibiotics (ceftriaxone, doxycycline/HCQ), with some relapses.
Conclusions:
- NOD2 mutations are associated with Whipple's disease for the first time.
- Impaired NOD2 function in monocytes/macrophages may increase susceptibility to Tropheryma whipplei infection.
- WD is considered a macrophage disease, and NOD2 plays a role in its pathogenesis.
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