Key result
Altered metabolic pathways and hypoxia-induced signaling in the rheumatoid arthritis synovium drive the inflammatory response and disease pathogenesis.
Understanding the interplay between hypoxia-induced signaling and metabolic pathways may provide insights into rheumatoid arthritis pathogenesis.
May inform RA therapeutic targets; leaves open clinical validation of metabolic modulators.
Rheumatoid arthritis is characterized by synovial proliferation, neovascularization and leucocyte extravasation leading to joint destruction and functional disability. The blood vessels in the inflamed synovium are highly dysregulated, resulting in poor delivery of oxygen; this, along with the increased metabolic demand of infiltrating immune cells and inflamed resident cells, results in the lack of key nutrients at the site of inflammation. In these adverse conditions synovial cells must adapt to generate sufficient energy to support their proliferation and activation status, and thus switch their cell metabolism from a resting regulatory state to a highly metabolically active state. This alters redox-sensitive signalling pathways and also results in the accumulation of metabolic intermediates which, in turn, can act as signalling molecules that further exacerbate the inflammatory response. The RA synovium is a multi-cellular tissue, and while many cell types interact to promote the inflammatory response, their metabolic requirements differ. Thus, understanding the complex interplay between hypoxia-induced signalling pathways, metabolic pathways and the inflammatory response will provide better insight into the underlying mechanisms of disease pathogenesis.
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Fearon et al. (2018) conducted a review in Rheumatoid arthritis. Altered metabolic pathways and hypoxia-induced signaling in the rheumatoid arthritis synovium drive the inflammatory response and disease pathogenesis.
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