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Yona, A.

Publications and source records attributed to Yona, A..

2 recordsLinked to original sources

Microbiota-derived indole-3-propionic acid regulates glucose homeostasis via remodeling of hepatic mitochondrial metabolism

The gut microbiota produces metabolites that circulate to host tissues and are increasingly linked to metabolic health, yet the mechanisms by which individual microbial products regulate liver glucose metabolism remain poorly defined. Here, we identify the tryptophan-derived microbial metabolite indole-3-propionic acid (IPA) as a direct modulator of hepatic glucose production. In primary hepatocytes, a focused screen of indole metabolites revealed that several indole-containing compounds suppress glucagon-stimulated glucose output, with IPA emerging as a physiologically relevant candidate. IPA selectively reduced glucose production from mitochondrial-dependent gluconeogenic substrates while largely preserving glycerol-supported glucose production, suggesting that it does not simply shut down gluconeogenesis but instead alters how hepatocytes use metabolic fuels. Mechanistic analyses showed that IPA redirects lactate-derived carbon away from glucose production and reshapes mitochondrial metabolism, including redox balance, ATP availability, and urea cycle-linked metabolic activity. These effects occurred without detectable disruption of proximal insulin or glucagon signaling, supporting a model in which IPA acts primarily through intracellular metabolic remodeling. In mice, endogenous IPA levels varied with nutritional state, and short-term IPA administration improved fasting glycemia and glucose handling in Western diet-fed animals. Finally, microbiome-depleted mice colonized with IPA-producing Clostridium sporogenes displayed increased circulating IPA and improved glucose tolerance compared with mice colonized with an IPA-deficient mutant C. Sporogenes strain. Together, these findings identify IPA as a microbial metabolite that directly connects gut tryptophan metabolism to hepatic mitochondrial function and systemic glucose regulation, highlighting a mechanistic gut-liver pathway with potential therapeutic relevance to metabolic disease.

physiology↗

Mitochondrial cardiolipin sequestration of caspofungin underlies Cryptococcus neoformans inherent resistance and may contribute to cardiotoxicity

Cryptococcus exhibits inherent resistance to the echinocandin, caspofungin, which inhibits the synthesis of (1,3)-{beta}-D-glucan, a key component of the polysaccharide cell wall. The essential FKS1 gene encodes the catalytic subunit of (1,3)-{beta}-D-glucan synthase and caspofungin effectively inhibits its activity in vitro, yet the drug remains ineffective against Cryptococcus, suggesting mechanisms beyond target insensitivity. The underlying mechanisms of caspofungin resistance remain unknown, although altered regulation of cell-wall remodeling genes, plasma membrane modifications, drug efflux pathways, and melanin biosynthesis have been suggested. Using boron dipyrromethene (BD-) and fluorescein (F-) labelled caspofungin, we demonstrate that caspofungin enters the cryptococcal cell and primarily accumulates in the mitochondrial inner membrane rather than the plasma membrane. We further establish that this mitochondrial accumulation is driven by a specific interaction between caspofungin and cardiolipin, a phospholipid found in mitochondrial membranes. We demonstrate that this unforeseen localization indicates that mitochondrial sequestration diminishes the effective drug concentrations at the intended target. Notably, the interaction between caspofungin and cardiolipin also takes place in human cells, establishing a mechanistic connection to caspofungin-related cardiotoxicity. Our findings reveal a previously unrecognized mechanism of echinocandin resistance in Cryptococcus and emphasize cardiolipin as an important factor in caspofungin effectiveness.

microbiology↗