Lacticaseibacillus rhamnosus GR-1 prevents autism-like behaviors by reshaping the maternal and offspring microbiome.

IF 9.2 1区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Ruili Yang, Yi Xu, Jinchun Xu, Chengqing Huang, Feng Zhu, Tian Wang, Rui Kong, Jie Xiao, Biao He, Xiaozhen Gu, Hui-Li Wang
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Abstract

As a prevalent neurodevelopmental disease, whether ASD (autism spectrum disorder) can be ameliorated by the early use of a single microbe remains unknown. Here we used a lactobacillus strain, Lacticaseibacillus rhamnosus GR-1 (LGR-1), for prenatal intervention in autism-like mice with either environmental or idiopathic origins by exclusively administering to the pregnant dams at a dose of 109/mouse/day, followed by offspring behavioral assessment with 3-chamber trial and marble burying test. The results revealed that LGR-1 prevented the occurrence of autism-like symptoms, as evidenced by the improved behaviors and restored E/I (excitatory-inhibitory) balance in the prefrontal cortex of male pups. In parallel, the offspring microbiome was reshaped by LGR-1 treatment, probably mediated by the vertical transmission of maternal microbiome, with its roles further unraveled by fecal microbiota transplant and cross-fostering experiments. In addition to gut commensals, the LGR-1-shaping vaginal microbiota also contributed to the establishment of "beneficial" microbiome. Regarding key taxa in offspring, Akkermansia muciniphila was influenced by LGR-1 and exerted impact on behaviors via pathways related to IL-17-producing lymphocytes. Our findings demonstrate that prenatal microbial administration protects offspring against autism-like behavioral phenotypes through microbiome transmission, highlighting a potential microbe-based therapeutic avenue to mitigate ASD risk.

鼠李糖乳杆菌GR-1通过重塑母体和后代的微生物群来预防自闭症样行为。
作为一种常见的神经发育疾病,ASD(自闭症谱系障碍)是否可以通过早期使用单一微生物来改善尚不清楚。本研究采用鼠李糖乳杆菌GR-1 (lactoaseibacillus rhamnosus GR-1, LGR-1)菌株对环境型或特发性自闭症样小鼠进行产前干预,给药剂量为109只/只/天,随后采用三室试验和大理岩掩埋试验对后代进行行为评估。结果显示,LGR-1可以防止自闭症样症状的发生,这可以通过改善雄性幼崽的行为和恢复前额叶皮层的E/I(兴奋-抑制)平衡来证明。与此同时,LGR-1处理对后代微生物群进行了重塑,这可能是由母体微生物群的垂直传播介导的,粪便微生物群移植和交叉培养实验进一步揭示了其作用。除了肠道共生菌外,塑造lgr -1的阴道微生物群也有助于“有益”微生物群的建立。在后代的关键类群中,嗜粘Akkermansia muciniphila受LGR-1的影响,并通过与il -17产生淋巴细胞相关的途径对行为产生影响。我们的研究结果表明,产前微生物管理通过微生物组传播保护后代免受自闭症样行为表型的影响,强调了一种潜在的基于微生物的治疗途径来减轻ASD风险。
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来源期刊
npj Biofilms and Microbiomes
npj Biofilms and Microbiomes Immunology and Microbiology-Microbiology
CiteScore
12.10
自引率
3.30%
发文量
91
审稿时长
9 weeks
期刊介绍: npj Biofilms and Microbiomes is a comprehensive platform that promotes research on biofilms and microbiomes across various scientific disciplines. The journal facilitates cross-disciplinary discussions to enhance our understanding of the biology, ecology, and communal functions of biofilms, populations, and communities. It also focuses on applications in the medical, environmental, and engineering domains. The scope of the journal encompasses all aspects of the field, ranging from cell-cell communication and single cell interactions to the microbiomes of humans, animals, plants, and natural and built environments. The journal also welcomes research on the virome, phageome, mycome, and fungome. It publishes both applied science and theoretical work. As an open access and interdisciplinary journal, its primary goal is to publish significant scientific advancements in microbial biofilms and microbiomes. The journal enables discussions that span multiple disciplines and contributes to our understanding of the social behavior of microbial biofilm populations and communities, and their impact on life, human health, and the environment.
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