bioRxiv Science⌕ Search

Biology subjects

Beikbaghban, T.

Publications and source records attributed to Beikbaghban, T..

2 recordsLinked to original sources

Pro- and anti-inflammatory macrophages adjust UCP2 protein levels based on their intrinsic metabolism and available metabolites

The immune and metabolic responses of macrophages are closely linked, and mitochondria play a key role in polarizing them into pro-inflammatory (classical) and anti-inflammatory (alternative) states. Mitochondrial uncoupling protein 2 (UCP2) is involved in regulating macrophage inflammation and glucose metabolism; however, its regulatory mechanisms are unclear. We found that inflammatory stimuli reduce UCP2 expression and oxygen consumption rates (OCR), indicating mitochondrial suppression. Conversely, IL-4-activated macrophages displayed higher UCP2 levels and enhanced respiration. Under glucose deprivation, LPS-stimulated macrophages retained mitochondrial activity despite lower UCP2 levels. Pyruvate emerged as a key regulator of UCP2, blocking its mitochondrial entry reduced UCP2 expression. Additionally, hypoxia markedly decreased UCP2 levels in IL-4-activated macrophages, suggesting that hypoxia contributes to UCP2 suppression in pro-inflammatory macrophages. Notably, pro-inflammatory macrophages exhibit reduced reliance on UCP2 due to suppressed mitochondrial respiration. Pyruvate regulates UCP2 expression, highlighting the connection between glycolysis and mitochondrial metabolism. These findings may inform therapeutic strategies for diseases involving immune dysregulation.

biophysics↗

The 2-oxoglutarate/malate carrier extends the family of mitochondrial carriers capable of FA-activated proton transport.

Metabolic reprogramming in cancer cells has been linked to the mitochondrial dysfunction. Recent studies have suggested the mitochondrial 2-oxoglutarate/malate carrier (OGC) as a potential target for preventing cancer progression. Although OGC is known to be a part of the malate/aspartate shuttle, its exact role in cancer metabolism remains unclear. In this study, we investigated the contribution of recombinant murine OGC to the proton transport by measuring the conductance (Gm) of planar lipid bilayer membranes reconstituted with OGC. Our results show that OGC significantly increases Gm only in the presence of free fatty acids (FAs) and 2,4-dinitrophenol, demonstrating for the first time its involvement in proton transport. We found that (i) the increase in OGC activity directly correlates with the increase in the number of unsaturated bonds of FAs, and (ii) OGC substrates and inhibitors compete with FAs for the same binding site. In addition, we have identified R90 as a crucial amino acid of the binding site for FAs, ATP, 2-oxoglutarate, and malate, which is a first step towards understanding the OGC-mediated proton transport mechanism. Elucidating the contribution of OGC to the uncoupling will be crucial in the design of targeted drugs for the treatment of cancer and other metabolic diseases.

biophysics↗