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Updated: Dec 28, 2025

A Mouse Model for Pathogen-induced Chronic Inflammation at Local and Systemic Sites
Published on: August 8, 2014
BMAL1-Downregulation Aggravates Porphyromonas Gingivalis-Induced Atherosclerosis by Encouraging Oxidative Stress
Mengru Xie1,2, Qingming Tang1,2, Jiaming Nie1,2
1From the Department of Stomatology (M.X., Q.T., J.N., X.Z., S.Y., J.S., L.C.), Union Hospital, Tongji Medical College, Huazhong University of Science and Technology, Wuhan, China.
Insights
Porphyromonas gingivalis accelerates atherosclerosis by disrupting the NF-κB-BMAL1 feedback loop, increasing oxidative stress. Melatonin and metronidazole show promise in treating this condition.
Area of Science:
- Cardiovascular Research
- Microbiology
- Chronobiology
Background:
- Atherosclerotic cardiovascular diseases are a leading global cause of mortality, driven by chronic inflammation.
- Pathogenic bacteria, like Porphyromonas gingivalis (P gingivalis), are linked to atherosclerosis development, but mechanisms remain unclear.
Purpose of the Study:
- To investigate how P gingivalis accelerates atherosclerosis.
- To explore potential therapeutic strategies for atherosclerotic cardiovascular diseases.
Main Methods:
- Utilized various mouse models, including ApoE-/- and Bmal1-/- mice, and a jet-lagged model.
- Analyzed the molecular mechanisms involving TLRs-NF-κB signaling, BMAL1 promoter methylation, and circadian clock disruption.
- Assessed the therapeutic potential of metronidazole and melatonin.
Main Results:
- P gingivalis accelerates atherosclerosis by inducing arterial oxidative stress and inflammation, exacerbated by circadian clock disruption.
- P gingivalis activates the TLRs-NF-κB pathway, leading to BMAL1 promoter methylation and suppression of BMAL1 transcription.
- Downregulation of BMAL1 enhances NF-κB signaling, increasing oxidative stress and inflammation in endothelial cells.
Conclusions:
- P gingivalis accelerates atherosclerosis through a positive feedback loop involving NF-κB and BMAL1.
- Melatonin and metronidazole represent promising adjunctive therapies for atherosclerotic cardiovascular diseases.
Rationale:
Atherosclerotic cardiovascular diseases are the leading cause of mortality worldwide. Atherosclerotic cardiovascular diseases are considered as chronic inflammation processes. In addition to risk factors associated with the cardiovascular system itself, pathogenic bacteria such as the periodontitis-associated Porphyromonas gingivalis (P gingivalis) are also closely correlated with the development of atherosclerosis, but the underlying mechanisms are still elusive.
Objective:
To elucidate the mechanisms of P gingivalis-accelerated atherosclerosis and explore novel therapeutic strategies of atherosclerotic cardiovascular diseases.
Methods And Results:
Bmal1-/- (brain and muscle Arnt-like protein 1) mice, ApoE-/- mice, Bmal1-/-ApoE-/- mice, conditional endothelial cell Bmal1 knockout mice (Bmal1fl/fl; Tek-Cre mice), and the corresponding jet-legged mouse model were used. Pgingivalis accelerates atherosclerosis progression by triggering arterial oxidative stress and inflammatory responses in ApoE-/- mice, accompanied by the perturbed circadian clock. Circadian clock disruption boosts P gingivalis-induced atherosclerosis progression. The mechanistic dissection shows that P gingivalis infection activates the TLRs-NF-κB signaling axis, which subsequently recruits DNMT-1 to methylate the BMAL1 promoter and thus suppresses BMAL1 transcription. The downregulation of BMAL1 releases CLOCK, which phosphorylates p65 and further enhances NF-κB signaling, elevating oxidative stress and inflammatory response in human aortic endothelial cells. Besides, the mouse model exhibits that joint administration of metronidazole and melatonin serves as an effective strategy for treating atherosclerotic cardiovascular diseases.
Conclusions:
P gingivalis accelerates atherosclerosis via the NF-κB-BMAL1-NF-κB signaling loop. Melatonin and metronidazole are promising auxiliary medications toward atherosclerotic cardiovascular diseases.
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