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产丁酸梭菌 CML199 通过丁酸盐驱动的肠-骨轴增强骨骼发育并对抗衰老引起的骨丢失:鸡模型。

Anaerostipes caccae CML199 enhances bone development and counteracts aging-induced bone loss through the butyrate-driven gut-bone axis: the chicken model.

机构信息

State Key Laboratory of Animal Nutrition and Feeding, College of Animal Science and Technology, China Agricultural University, Beijing, 100193, China.

Animal Nutrition Institute, Sichuan Agricultural University, Chengdu, Sichuan, 611130, China.

出版信息

Microbiome. 2024 Oct 22;12(1):215. doi: 10.1186/s40168-024-01920-y.

Abstract

BACKGROUND

The gut microbiota is a key regulator of bone metabolism. Investigating the relationship between the gut microbiota and bone remodeling has revealed new avenues for the treatment of bone-related disorders. Despite significant progress in understanding gut microbiota-bone interactions in mammals, research on avian species remains limited. Birds have unique bone anatomy and physiology to support egg-laying. However, whether and how the gut microbiota affects bone physiology in birds is still unknown. In this study, we utilized laying hens as a research model to analyze bone development patterns, elucidate the relationships between bone and the gut microbiota, and mine probiotics with osteomodulatory effects.

RESULTS

Aging led to a continuous increase in bone mineral density in the femur of laying hens. The continuous deposition of medullary bone in the bone marrow cavity of aged laying hens led to significant trabecular bone loss and weakened bone metabolism. The cecal microbial composition significantly shifted before and after sexual maturity, with some genera within the class Clostridia potentially linked to postnatal bone development in laying hens. Four bacterial strains associated with bone development, namely Blautia coccoides CML164, Fournierella sp002159185 CML151, Anaerostipes caccae CML199 (ANA), and Romboutsia lituseburensis CML137, were identified and assessed in chicks with low bacterial loads and chicken primary osteoblasts. Among these, ANA demonstrated the most significant promotion of bone formation both in vivo and in vitro, primarily attributed to butyrate in its fermentation products. A long-term feeding experiment of up to 72 weeks confirmed that ANA enhanced bone development during sexual maturity by improving the immune microenvironment of the bone marrow in laying hens. Dietary supplementation of ANA for 50 weeks prevented excessive medullary bone deposition and mitigated aging-induced trabecular bone loss.

CONCLUSIONS

These findings highlight the beneficial effects of ANA on bone physiology, offering new perspectives for microbial-based interventions for bone-related disorders in both poultry and possibly extending to human health. Video Abstract.

摘要

背景

肠道微生物群是骨骼代谢的关键调节剂。研究肠道微生物群与骨重塑之间的关系,为治疗与骨骼相关的疾病开辟了新途径。尽管在哺乳动物中对肠道微生物群-骨骼相互作用的理解取得了重大进展,但对禽类的研究仍然有限。鸟类具有独特的骨骼解剖结构和生理学,以支持产卵。然而,肠道微生物群是否以及如何影响鸟类的骨骼生理学尚不清楚。在这项研究中,我们利用产蛋母鸡作为研究模型,分析骨骼发育模式,阐明骨骼与肠道微生物群之间的关系,并挖掘具有骨调节作用的益生菌。

结果

衰老导致产蛋母鸡股骨骨密度持续增加。老年产蛋母鸡骨髓腔内连续沉积的髓质骨导致小梁骨大量丢失和骨代谢减弱。成熟前后盲肠微生物组成发生显著变化,厚壁菌门中的某些属可能与产蛋母鸡产后骨发育有关。与骨骼发育相关的 4 种细菌菌株,即 Blautia coccoides CML164、Fournierella sp002159185 CML151、Anaerostipes caccae CML199(ANA)和 Romboutsia lituseburensis CML137,在低细菌负荷的雏鸡和鸡原代成骨细胞中被鉴定和评估。其中,ANA 无论是在体内还是体外,对骨形成的促进作用最为显著,主要归因于其发酵产物中的丁酸。长达 72 周的长期喂养实验证实,ANA 通过改善产蛋母鸡骨髓的免疫微环境,增强了性成熟时的骨骼发育。ANA 饮食补充 50 周可防止骨髓中过多的髓质骨沉积,并减轻衰老引起的小梁骨丢失。

结论

这些发现强调了 ANA 对骨骼生理学的有益影响,为骨骼相关疾病的基于微生物的干预提供了新视角,不仅适用于家禽,也可能扩展到人类健康。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7196/11495078/8d2994b04e65/40168_2024_1920_Fig1_HTML.jpg

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