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Delzenne, N.

Publications and source records attributed to Delzenne, N..

2 recordsLinked to original sources

Gut microbiota-dependent phenylpropanoic acid derivatives reduced in cancer cachexia protect against myotube atrophy

Cancer cachexia is a debilitating disease characterized by muscle atrophy. Given the gut dysbiosis in cancer cachexia and the increasing evidence of a gut-muscle axis, we explored the potential beneficial effects of bacteria-dependent metabolites on myotube atrophy. Using both hypothesis-driven and hypothesis-free approaches, in-depth metabolomic analysis of blood samples from cachectic C26 tumor-bearing mice treated or not with antibiotics, as well as disease-free germ-free and conventionalized mice, identified 7 bacteria-dependent metabolites decreased under cachectic conditions. Such alterations were not mediated by reduced caloric intake. Among them, 2 metabolites, namely 2-phenylpropanoic acid (2PPA, also known as 2-phenylpropionic acid) and 3-(3,4-dihydroxyphenyl)propanoic acid (3,4OHPP, also known as 3,4-dihydroxyhydrocinnamic acid or dihydrocaffeic acid), demonstrated anti-atrophying effect, alone and in combination, on mouse C2C12 myotubes. Transcriptomics revealed that these 2 bacteria-dependent metabolites restored the amino acid homeostasis with an activation of ATF4 and the serine biosynthesis pathway. Pharmacological inhibition of the phosphoglycerate dehydrogenase (PHGDH), the rate-limiting enzyme of this pathway, prevented the anti-atrophying effects of 2PPA and 3,4OHPP, indicating a causal role for PHGDH in this effect. By identifying microbiota-dependent metabolites as potential therapeutic levers, the current work not only advances our understanding of microbiome-host crosstalk in disease but also opens avenues for innovative, targeted interventions to mitigate muscle atrophy.

microbiology↗

Blood metabolomic profiling reveals new targets in the management of psychological symptoms associated with alcohol use disorder

Alcohol use disorder (AUD) is a global health problem with limited therapeutic options. The biochemical mechanisms that lead to this disorder are not yet fully understood, and in this respect, metabolomics represents a promising approach to decipher metabolic events related to AUD. The plasma metabolome contains a plethora of bioactive molecules that reflects the functional changes in host metabolism but also the impact of the gut microbiome and nutritional habits. In this study, we investigated the impact of severe AUD (sAUD), and of a three-week period of alcohol abstinence, on the blood metabolome (non-targeted LC-MS metabolomics analysis) in 96 sAUD patients hospitalized for alcohol withdrawal. We found that the plasma levels of different lipids ((lyso)phosphatidylcholines, long-chain fatty acids), short-chain fatty acids (i.e. 3-hydroxyvaleric acid) and bile acids were altered in sAUD patients. In addition, several microbial metabolites, including indole-3-propionic acid, p-cresol sulfate, hippuric acid, pyrocatechol sulfate, and metabolites belonging to xanthine class (paraxanthine, theobromine and theophylline) were sensitive to alcohol exposure and alcohol withdrawal. 3-Hydroxyvaleric acid, caffeine metabolites (theobromine, paraxanthine and theophylline) and microbial metabolites (hippuric acid and pyrocatechol sulfate) were correlated with anxiety, depression and alcohol craving. Metabolomics analysis in post-mortem samples of frontal cortex and cerebrospinal fluid of those consuming a high level of alcohol revealed that those metabolites can be found also in brain tissue. Our data allow to for the identification of neuroactive metabolites, from interactions between food components and microbiota, which may represent new targets in the management of neuropsychiatric diseases such as sAUD.

neuroscience↗