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Pierre, L.

Publications and source records attributed to Pierre, L..

2 recordsLinked to original sources

Effects of NAD⁺ Repletion with Nicotinamide Riboside on Obesity-Induced Chronic Kidney Disease and Renal Cell Lipotoxicity

Nicotinamide riboside (NR), a natural precursor of NAD, has been suggested to confer protection against metabolic and age-related disorders. However, its impact on chronic kidney disease (CKD), particularly in the context of obesity, remains poorly understood. Here, we evaluated the potential effects of NR supplementation in models of obesity-induced renal injury. The metabolic and renal effects of both preventive and interventional NR supplementation were assessed in mice fed high-fat or low-fat diets. Our data showed that NAD repletion, whether preventive or interventional, did not affect body or organ weights, glucose metabolism, insulin resistance, or hepatic and renal lipid accumulation. NR supplementation was however associated with SIRT3-mediated deacetylation of SOD2 in the renal tissue of obese mice, and it moderately reduced renal dysfunction. To further explore the cellular mechanisms underlying the renal effects of NR in a lipotoxic context, we investigated its impact on renal proximal tubular cells exposed to palmitic acid (PA). NR significantly prevented oxidative stress in proximal tubular epithelial cells, as evidenced by the activation of SOD2 and the reduction of lipid peroxidation and mitochondrial dysfunction. However, NR did not reduce PA-induced lipid accumulation. In conclusion, this study provides evidence that NR exerts antioxidant effects and enhances mitochondrial function in renal cells in vitro but does not protect obese mice from metabolic disorders and associated CKD.

biochemistry↗

A within-host infection model to explore tolerance andresistance

How are some individuals surviving infections while others die? The answer lies in how infected individuals invest into controlling pathogen proliferation and mitigating damage, two strategies respectively called resistance and disease tolerance. Pathogen within-host dynamics (WHD), influenced by resistance, and its connection to host survival, determined by tolerance, decide the infection outcome. To grasp these intricate effects of resistance and tolerance, we used a deterministic theoretical model where pathogens interact with the immune system of a host. The model describes the positive and negative regulation of the immune response, consider the way damage accumulate during the infection and predicts WHD. When chronic, infections stabilize at a Set-Point Pathogen Load (SPPL). Our model predicts that this situation can be transient, the SPPL being then a predictor of life span which depends on initial condition (e.g. inoculum). When stable, the SPPL is rather diagnostic of non lethal chronic infections. In lethal infections, hosts die at a Pathogen Load Upon Death (PLUD) which is almost independent from the initial conditions. As the SPPL, the PLUD is affected by both resistance and tolerance but we demonstrate that it can be used in conjunction with mortality measurement to distinguish the effect of disease tolerance from that of resistance. We validate empirically this new approach, using Drosophila melanogaster and the pathogen Providencia rettgeri. We found that, as predicted by the model, hosts that were wounded or deficient of key antimicrobial peptides had a higher PLUD, while Catalase mutant hosts, likely to have a default in disease tolerance, had a lower PLUD.

evolutionary biology↗