Effect of gut microbiota-derived metabolites and extracellular vesicles on neurodegenerative disease in a gut-brain axis chip

肠-脑轴 细胞外小泡 肠道菌群 微泡 神经发生 微生物群 诱导多能干细胞 胞外囊泡 生物 芯片上器官 机制(生物学) 神经科学 生物信息学 细胞生物学 免疫学 胚胎干细胞 微流控 遗传学 基因 小RNA 纳米技术 认识论 哲学 材料科学
作者
Na Yeon Kim,Ho Yeon Lee,Yoon Young Choi,Sung Jun Mo,Soomin Jeon,Jang Ho Ha,Soo Dong Park,Jae-Jung Shim,John J. Lee,Bong Geun Chung
出处
期刊:Nano Convergence [Springer Nature]
卷期号:11 (1): 7-7 被引量:67
标识
DOI:10.1186/s40580-024-00413-w
摘要

A new perspective suggests that a dynamic bidirectional communication system, often referred to as the microbiome-gut-brain axis, exists among the gut, its microbiome, and the central nervous system (CNS). This system may influence brain health and various brain-related diseases, especially in the realms of neurodevelopmental and neurodegenerative conditions. However, the exact mechanism is not yet understood. Metabolites or extracellular vesicles derived from microbes in the gut have the capacity to traverse the intestinal epithelial barrier or blood-brain barrier, gaining access to the systemic circulation. This phenomenon can initiate the physiological responses that directly or indirectly impact the CNS and its function. However, reliable and controllable tools are required to demonstrate the causal effects of gut microbial-derived substances on neurogenesis and neurodegenerative diseases. The integration of microfluidics enhances scientific research by providing advanced in vitro engineering models. In this study, we investigated the impact of microbe-derived metabolites and exosomes on neurodevelopment and neurodegenerative disorders using human induced pluripotent stem cells (iPSCs)-derived neurons in a gut-brain axis chip. While strain-specific, our findings indicate that both microbial-derived metabolites and exosomes exert the significant effects on neural growth, maturation, and synaptic plasticity. Therefore, our results suggest that metabolites and exosomes derived from microbes hold promise as potential candidates and strategies for addressing neurodevelopmental and neurodegenerative disorders.
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