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NOX-inflicted oxidative stress in neurodegeneration and inflammation

Abstract
Further understanding of mechanisms that promote neuronal decay in neurodegenerative diseases may pave the way for new therapies. Aberrant activation of the reactive oxygen species (ROS)-generating enzyme NADPH oxidase 2 (NOX2) in myeloid cells is suggested to contribute to neurodegeneration in experimental models. However, its exact role in human disease is not known. We aimed to define the impact of NOX2 activity on neurodegeneration and identify potential therapeutic strategies for NOX2-inflicted pathologies. To this end, we examined single nucleotide polymorphisms (SNPs) that affect the magnitude of NOX2-derived ROS formation in the context of the neurodegenerative and neuroinflammatory diseases multiple sclerosis (MS), Guillain-Barré syndrome (GBS), and Parkinson’s disease (PD). Furthermore, we investigated the NOX2-inhibitory potential of inhibitors of Bruton’s tyrosine kinase (BTKi), which regulates myeloid cell activation. We identified two SNP alleles (rs4673 A and rs1049254 G in CYBA, encoding the NOX2 subunit p22phox) that were associated with reduced NOX2-derived ROS production. In MS, these low-ROS alleles heralded reduced disease severity and a markedly delayed onset of secondary progressive MS (paper I). Patients with GBS carrying low-ROS alleles were less likely to require assisted ventilation during the acute phase and experienced a rapid recovery of motor function (paper II). Furthermore, an analysis of clinical milestone cumulation in idiopathic PD revealed that patients with low-ROS alleles showed a reduced rate of disease progression (paper III). In paper IV, we demonstrated that BTKi effectively blocked activation of NOX2 in myeloid cells in response to surface receptor stimulation. This translated into potentiated natural killer cell-mediated clearance of malignant cells in the presence of immunosuppressive myeloid cells in vitro and in vivo. In conclusion, our results suggest that NOX2-derived ROS may contribute to neuronal death in MS, GBS, and PD. This implies that NOX2 might serve as a generic driver of neurodegeneration and invites research on its role in additional neurodegenerative diseases. The NOX2-inhibitory potential of BTKi makes them conceivable candidates to target myeloid immunosuppression in both hematological and solid cancers, as well as to alleviate other NOX2-dependent pathologies.
Parts of work
I. Törnell A, Kiffin R, Haghighi S, Mossberg N, Andersen O, Hellstrand K, Martner A. Impact of CYBA genotypes on severity and progression of multiple sclerosis. Eur J Neurol. 2022;29(5):1457–64. https://doi.org/10.1111/ene.15259
 
II. Törnell A, Lagerstrom N, Mossberg N, Kiffin R, Farman H, Lycke J, Andersen O, Axelsson M, Hellstrand K, Martner A. CYBA allelic variants are associated with severity and recovery in Guillain-Barré syndrome. J Peripher Nerv Syst. 2023;28(3):407–14. https://doi.org/10.1111/jns.12571
 
III. Törnell A, von Below D, Levander D, Nissbrandt H, Bergquist F, Hellstrand K, Martner A. Gene variants entailing increased enzymatic ROS formation may accelerate long-term progression in idiopathic Parkinson’s disease. In manuscript.
 
IV. Törnell A, Waldenström J, Kiffin R, Akhiani AA, Thorén FB, Hellstrand K, Martner A. Bruton’s tyrosine kinase activates the NOX2/ROS axis to drive myeloid immunosuppression in cancer. Submitted.
 
Degree
Doctor of Philosophy (Medicine)
University
University of Gothenburg. Sahlgrenska Academy
Institution
Institute of Biomedicine. Department of Medical Microbiology and Immunology
Disputation
Onsdagen den 4 juni 2025, kl. 9.00, Hörsal Arvid Carlsson, Academicum, Medicinaregatan 3, Göteborg
Date of defence
2025-06-04
E-mail
andreas.tornell@gu.se
URI
https://hdl.handle.net/2077/85338
Collections
  • Doctoral Theses / Doktorsavhandlingar Institutionen för biomedicin
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Abstract (239.2Kb)
Thesis frame (1.992Mb)
Cover (1.656Mb)
Date
2025-05-13
Author
Törnell, Andreas
Keywords
NADPH oxidase
NOX2
oxidative stress
neurodegeneration
multiple sclerosis
Guillain-Barré syndrome
Parkinson’s disease
Publication type
Doctoral thesis
ISBN
978-91-8115-253-1 (PRINT)
978-91-8115-252-4 (PDF)
Language
eng
Metadata
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