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Liao, W.-I.

Publications and source records attributed to Liao, W.-I..

2 recordsLinked to original sources

Gut Microbiome-derived Propionate Reprograms Alveolar MacrophagesMetabolically and Regulates Lung Injury Responses

Responses to lung injury can vary between individuals and the diet and gut microbiome represent two underappreciated sources of inter-individual variability. The gut microbiome can influence lung injury outcomes through the gut-lung axis, but exactly how diet and its effects on the microbiota are involved remains unclear. We hypothesized that a dietary fiber intervention would enrich for the presence of short-chain fatty acid (SCFA)-producing fermentative bacteria in the gut microbiome, thereby influencing resting lung immunometabolic tone and influence downstream immune responses to lung injury and infection. To test this hypothesis, we fed mice fiber-rich (FR) and fiber-free (FF) diets and observed changes in the steady-state transcriptional programming of alveolar macrophages (AMs) in the absence of injury. Next, we examined the effects of FR and FF diets on the responses to sterile and infectious lung injury in vivo while simultaneously profiling gut microbiota and SCFA levels transmitted along the gut-lung axis. Finally, we validated our in vivo observations with mechanistic studies of the metabolic, signaling, and chromatin-modifying effects of specific SCFAs on lung AMs ex vivo and in vitro. Overall, a FR diet reprogrammed AMs and attenuated lung inflammation after sterile injury while exacerbating lung infection. This effect of FR diets could be transferred to germ-free (GF) mice by fecal microbiome transplantation (FMT) and depended on the ability of the microbiota to produce propionate. Mechanistically, SCFAs altered the metabolic programming of AMs and lung tissue ex vivo without a role for free fatty acid receptors (FFAR) or chromatin remodeling. These findings demonstrate that the gut-lung axis can regulate the resting metabolic tone through dietary fiber intake and the enrichment of SCFA-producing gut bacteria, as well as influence sterile and non-sterile lung injury responses through the activity of gut metabolites. These results provide further evidence to support the development of therapeutic dietary interventions or the use of specific gut metabolites to preserve or enhance specific aspects of host pulmonary immunity.

immunology↗

Regulation of Lung Immune Tone by the Gut-Lung Axis via Dietary Fiber, Gut Microbiota, and Short-Chain Fatty Acids

Lung immune tone, i.e. the immune state of the lung, can vary between individuals and over a single individuals lifetime, and its basis and regulation in the context of inflammatory responses to injury is poorly understood. The gut microbiome, through the gut-lung axis, can influence lung injury outcomes but how the diet and microbiota affect lung immune tone is also unclear. We hypothesized that lung immune tone would be influenced by the presence of fiber-fermenting short-chain fatty acid (SCFA)-producing gut bacteria. To test this hypothesis, we conducted a fiber diet intervention study followed by lung injury in mice and profiled gut microbiota using 16S sequencing, metabolomics, and lung immune tone. We also studied germ-free mice to evaluate lung immune tone in the absence of microbiota and performed in vitro mechanistic studies on immune tone and metabolic programming of alveolar macrophages exposed to the SCFA propionate (C3). Mice on high-fiber diet were protected from sterile lung injury compared to mice on a fiber-free diet. This protection strongly correlated with lower lung immune tone, elevated propionate levels and enrichment of specific fecal microbiota taxa; conversely, lower levels of SCFAs and an increase in other fatty acid metabolites and bacterial taxa correlated with increased lung immune tone and increased lung injury in the fiber-free group. In vitro, C3 reduced lung alveolar macrophage immune tone (through suppression of IL-1{beta} and IL-18) and metabolically reprogrammed them (switching from glycolysis to oxidative phosphorylation after LPS challenge). Overall, our findings reveal that the gut-lung axis, through dietary fiber intake and enrichment of SCFA-producing gut bacteria, can regulate innate lung immune tone via IL-1{beta} and IL-18 pathways. These results provide a rationale for the therapeutic development of dietary interventions to preserve or enhance specific aspects of host lung immunity.

immunology↗