生物
自噬
代谢物
贝肯1
反硫化
金黄色葡萄球菌
代谢组
细胞生物学
ATG5型
癌症研究
母乳喂养
药理学
程序性细胞死亡
葡萄球菌感染
微生物学
对接(动物)
细胞内
夏巴迪疟原虫
裂谷1
粒体自噬
斑马鱼
TLR4型
保护
作者
Shaodong Fu,Chengsen Yang,Shiyang Zhao,Yingzou Fang,Ming Li,Jinye Lu,B Yang,Yawei Qiu,H B Wang,Jie Zhang,Yan Xu,Jinfeng Miao
出处
期刊:Autophagy
[Taylor & Francis]
日期:2026-07-24
卷期号:: 1-20
标识
DOI:10.1080/15548627.2026.2708568
摘要
Breastfeeding anchors infant immunity and long-term health, but its benefits are threatened by Staphylococcus aureus (S. aureus) mastitis, an increasingly prevalent condition driven by antimicrobial resistance and therapeutic limitations. Beyond compromising maternal wellness, mastitis threatens the safety and continuity of breast milk, highlighting a critical need for innovative intervention strategies. Herein, we demonstrated that α‑ketobutyrate (α-KB), a metabolite of the transsulfuration pathway, mitigated S. aureus‑induced inflammation, oxidative stress, and blood-milk barrier (BMB) disruption both in vivo and in vitro. α‑KB enhanced macroautophagic/autophagic responses, marked by increased ATG5, BECN1 (beclin 1), and LC3-II:LC3-I conversion and reduced SQSTM1/p62, through a RIPK1-lactate-TFEB axis. Specifically, it directly bound and stabilized RIPK1, elevated lactate production, and drove TFEB nuclear translocation to activate macroautophagy/autophagy and promote intracellular bacterial clearance. Molecular docking and molecular dynamics simulations suggested stable α‑KB and RIPK1 binding via hydrophobic and hydrogen bond interactions; RIPK1 knockout abolished α‑KB-induced autophagy and lactate generation, effects rescued by lactate supplementation. This study identifies a novel immunometabolic circuit linking a metabolite to RIPK1-lactate-TFEB-mediated autophagy, offering therapeutic potential against antibiotic‑resistant S. aureus mastitis and presenting a new paradigm for safeguarding breastfeeding quality and infant health.
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