Systems-level Investigation of the Anxiolytic Gut-Brain Interactions induced by Paraprobiotic Lactobacillus brevis SBC8803 in Zebrafish
Kubota, A.; Zang, L.; Shinkai, T.; Nakai, M.; Tajima, A.; Shimada, Y.
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Anxiety disorders are among the most prevalent mental health conditions worldwide, and interest in psychobiotics--live or inactivated microorganisms that beneficially modulate the microbiota-gut-brain axis--is increasing. Heat-killed Lactobacillus brevis SBC8803 enhances serotonin (5-hydroxytryptamine; 5-HT) signaling and ameliorates stress-related phenotypes in mammals, although the gut-brain pathways mediating these effects remain incompletely defined. Here, we investigated the anxiolytic effects and underlying molecular mechanisms of oral SBC8803 administration in adult zebrafish. Adult male AB-strain zebrafish were fed a diet containing heat-killed SBC8803 for 4 weeks, and anxiety-like behavior was evaluated using the novel tank test. SBC8803-treated fish exhibited a shorter latency to enter the upper half of the tank and more frequent transitions into the upper half, consistent with reduced anxiety-like behavior. To explore underlying mechanisms, we performed brain RNA sequencing and 16S rRNA gene sequencing of intestinal contents, followed by integrative multi-omics analyses. Brain transcriptomic profiling identified differentially expressed genes and enrichment of serotonin receptor, CREB, and oxytocin signaling pathways, suggesting enhanced monoaminergic and plasticity-related signaling. Microbiome functional prediction indicated SBC8803-associated shifts in lipid and vitamin metabolism, including pathways related to riboflavin (vitamin B2) and tryptophan. Gene set variation analysis combined with DIABLO-based data integration revealed coordinated changes between microbial metabolic and brain signaling pathways, consistent with a vitamin B-serotonin-anti-inflammatory axis linking gut metabolism to neural regulation. Furthermore, residual correlation analysis showed innate gut-brain coordination independent of SBC8803 effect, such as the coupling between brain arachidonic acid and gut histidine metabolism. These findings support the biological validity of SBC8803 administration-associated interactions observed in the multi-omics analyses. Collectively, these findings indicate that the paraprobiotic SBC8803 exerts anxiolytic-like effects in zebrafish and reshapes gut-brain network states at behavioral, microbial, and transcriptomic levels, providing a mechanistic framework for considering heat-killed SBC8803 as a candidate psychobiotic for anxiety-related conditions.
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