Gut microbiota's role in high-altitude cognitive impairment: the therapeutic potential of Clostridium sp. supplementation.

IF 8 2区 生物学 Q1 BIOLOGY Science China Life Sciences Pub Date : 2024-12-18 DOI:10.1007/s11427-024-2779-9
Wei Zhou, Yongqiang Zhou, Shikun Zhang, Bin Li, Zhong Li, Zhijie Bai, Dezhi Sun, Chaoji Huangfu, Ningning Wang, Tiantian Xia, Congshu Huang, Lina Guan, Xi Yang, Yangyi Hu, Pengfei Zhang, Pan Shen, Rui Wang, Zhexin Ni, Yue Gao
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Abstract

Prolonged exposure to high-altitude environments may increase the risk of cognitive decline in young migrants. Recent studies suggest that hypobaric hypoxia-induced alterations in gut microbial composition could partly contribute to this risk. However, the absence of direct evidence from cohort studies and an unclear mechanism hinder intervention development based on this hypothesis. This study recruited 109 young male migrants living in Xizang to investigate the microbial mechanisms underlying cognitive impairment associated with high-altitude migration. Multi-omic analysis revealed distinct microbiome and metabolome features in migrants with cognitive decline, notably a reduced abundance of Clostridium species and disrupted fecal absorption of L-valine. Mechanistic studies showed that hypobaric hypoxia significantly damaged the intestinal barrier, leading to lipopolysaccharide (LPS) leakage and an influx of inflammatory factors into the peripheral blood, which activated microglia and caused neuronal injury in the hippocampus of mice. Additionally, compromised L-valine absorption due to intestinal barrier damage correlated with lower hippocampal glutamate levels and neurotrophic factors. Intervention with Clostridium sp. effectively restored the intestinal barrier and enhanced L-valine absorption, which mitigated hypobaric hypoxia-induced inflammation and hippocampal neural damage in mice. In conclusion, cognitive impairment among young migrants at high altitude may be attributed to hypobaric hypoxia-induced gut microbiota disruption and subsequent intestinal barrier dysfunction. This study may provide a promising approach for preventing and treating high-altitude-associated cognitive impairment.

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肠道微生物群在高海拔认知障碍中的作用:补充梭状芽孢杆菌的治疗潜力。
长期暴露于高海拔环境可能会增加年轻移民认知能力下降的风险。最近的研究表明,低气压缺氧引起的肠道微生物组成的改变可能部分促成了这种风险。然而,缺乏来自队列研究的直接证据和不明确的机制阻碍了基于这一假设的干预措施的发展。本研究招募了109名居住在西藏的年轻男性移民,探讨高原移民相关认知障碍的微生物机制。多组学分析揭示了认知能力下降的移民中不同的微生物组和代谢组特征,特别是梭状芽胞杆菌种类丰度降低和l -缬氨酸的粪便吸收中断。机制研究表明,低气压缺氧显著破坏肠道屏障,导致脂多糖(LPS)渗漏,炎症因子涌入外周血,激活小胶质细胞,引起小鼠海马神经元损伤。此外,肠屏障损伤导致的l -缬氨酸吸收受损与海马谷氨酸水平降低和神经营养因子降低相关。用梭状芽胞杆菌干预可以有效地恢复肠道屏障,增强l -缬氨酸的吸收,从而减轻小鼠低压缺氧引起的炎症和海马神经损伤。综上所述,高原青年移民的认知障碍可能是由低气压缺氧引起的肠道微生物群破坏和随后的肠道屏障功能障碍引起的。本研究为高原相关认知障碍的预防和治疗提供了新的思路。
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来源期刊
CiteScore
15.10
自引率
8.80%
发文量
2907
审稿时长
3.2 months
期刊介绍: Science China Life Sciences is a scholarly journal co-sponsored by the Chinese Academy of Sciences and the National Natural Science Foundation of China, and it is published by Science China Press. The journal is dedicated to publishing high-quality, original research findings in both basic and applied life science research.
期刊最新文献
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