Skip to main content
BrainCited

Mitochondrial translation impairment-triggered neuroinflammation mediates fluoride-induced cognitive deficits.

Wenhui Liu, Chenxi Wang, Huayang Tang, Zhiyuan Tian, Dongjie Li et al.
Other Ecotoxicology and environmental safety 2025 2 인용
PubMed DOI
<\/script>\n
`; }, get iframeSnippet() { const domain = 'braincited.com'; const params = 'pmid\u003D41075330'; return ``; }, get activeSnippet() { return this.method === 'script' ? this.scriptSnippet : this.iframeSnippet; }, copySnippet() { navigator.clipboard.writeText(this.activeSnippet).then(() => { this.copied = true; setTimeout(() => { this.copied = false; }, 2000); }); } }" @keydown.escape.window="open = false" @click.outside="open = false">

Embed This Widget

Style



      
      
    

Widget powered by . Free, no account required.

Study Design

연구 유형
Other
대상 집단
Fluoride-exposed in vivo and in vitro models
중재
Mitochondrial translation impairment-triggered neuroinflammation mediates fluoride-induced cognitive deficits. None
대조군
Fluoride-exposed mice vs control
일차 결과
Cognitive deficits and neuroinflammation markers
효과 방향
Positive
비뚤림 위험
Unclear

Abstract

Fluoride exposure poses multi-organ toxicity, including skeletal fluorosis, dental fluorosis, neuroinflammation, and cognitive deficits. While fluoride-induced neurotoxicity is linked to mitochondrial dysfunction-particularly via disrupted mitochondrial translation-the mechanistic interplay between translational impairment, neuroinflammation, and cognitive decline remains poorly defined. Here, integrated proteomic and functional analyses revealed that fluoride upregulates mitochondrial ribosomal protein L15 (MRPL15) through its upstream transcription factor CCAAT/enhancer-binding protein-α (C/EBPα) in both in vivo and in vitro models. This dysregulation perturbed mitochondrial translation fidelity, culminating in mitochondrial reactive oxygen species (mtROS) overproduction. Elevated mtROS activated the NLRP3 inflammasome, triggering pyroptotic cell death and subsequent hippocampal-dependent cognitive impairment. Importantly, the natural compound curcumin (CUR) attenuated fluoride neurotoxicity by enhancing mitochondrial bioenergetics and suppressing the mtROS/NLRP3-pyroptosis axis. Our findings establish mitochondrial translation disruption as a novel mechanism underlying fluoride-induced neuroinflammation and cognitive deficits, urging a critical re-evaluation of fluoride safety thresholds in environmental health policies.

요약

None

Used In Evidence Reviews

Similar Papers