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Published on: November 28, 2015
Caffeine Sodium Benzoate Promotes Endothelial Dysfunction of Human Umbilical Vein Endothelial Cells by Promoting M1
Tianwei Yu1, Jiale Wei2, Lili Tian3
1Department of Transfusion Medicine, Peking University Cancer Hospital (Inner Mongolia Campus) & Affiliated Cancer Hospital of Inner Mongolia Medical University, No. 42, Zhaowuda Road, Saihan District, Hohhot, 010020, China.
Insights
Long-term abuse of caffeine sodium benzoate (CSB) triggers M1 macrophage polarization, causing mitochondrial dysfunction and endothelial dysfunction in human umbilical vein endothelial cells (HUVECs). Promoting mitochondrial fusion may offer therapeutic benefits.
Area of Science:
- Cell Biology
- Toxicology
- Pathophysiology
Background:
- Caffeine sodium benzoate (CSB) abuse is linked to endothelial cell dysfunction.
- The precise mechanisms underlying CSB-induced endothelial dysfunction are not fully understood.
Purpose of the Study:
- To elucidate the mechanism by which CSB induces endothelial dysfunction.
- To investigate the role of macrophages and mitochondrial dynamics in CSB toxicity.
Main Methods:
- Serum from CSB-abusing patients (CSB-CS) was used to treat RAW264.7 macrophages.
- Conditioned medium (CM) from treated macrophages was used to culture human umbilical vein endothelial cells (HUVECs).
- HUVEC migration, tube formation, senescence, mitochondrial function (membrane potential, ROS, OPA1, DRP1), and signaling pathways (AKT, GSK3β) were assessed. The effect of mitochondrial fusion promotion (MASM7) was evaluated.
Main Results:
- CSB-CS induced RAW264.7 cell polarization to the M1 phenotype, increasing CD86 and iNOS.
- CM from CSB-treated macrophages impaired HUVEC migration and tube formation, induced senescence, and caused endothelial dysfunction.
- CSB-induced CM led to mitochondrial fission in HUVECs by reducing mitochondrial membrane potential, increasing ROS, decreasing OPA1, and increasing DRP1, alongside reduced p-AKT and p-GSK3β.
- MASM7 treatment mitigated CSB-induced mitochondrial and endothelial dysfunction.
Conclusions:
- CSB induces endothelial dysfunction via M1 macrophage polarization, leading to mitochondrial dysfunction in HUVECs.
- Targeting M1 macrophage polarization and promoting mitochondrial fusion are potential therapeutic strategies for CSB-related diseases.
Abstract:
Our previous study uncovered that long-term abuse of caffeine sodium benzoate (CSB) could lead to dysfunction in human umbilical vein endothelial cells (HUVECs). However, the mechanism by which CSB induced endothelial dysfunction remains largely unstudied. CSB containing serum (CSB-CS) was collected from patients under long-term CSB inhalation. RAW264.7 cells were treated with different concentrations of CSB-CS, after which the conditioned medium (CM) was collected and cultured with HUVECs. The migration, tube formation, and senescence of HUVECs were evaluated. CSB-CS could induce polarization of RAW264.7 cells toward the M1 phenotype, as evidenced by the elevated CD86 and iNOS levels. Additionally, the CM from CSB-treated RAW264.7 cells notably suppressed the migration, tube formation, and induced cell senescence and endothelial dysfunction in HUVECs. Moreover, the CM from CSB-treated RAW264.7 cells greatly reduced mitochondrial membrane potential level, increased the ROS production, reduced OPA1 levels, but elevated DRP1 levels in HUVECs, leading to mitochondrial fission and dysfunction. Meanwhile, the CM from CSB-treated RAW264.7 cells remarkably reduced p-AKT and p-GSK3β levels in HUVECs. Notably, promotion of mitochondrial fusion by MASM7 could mitigate mitochondrial dysfunction and endothelial dysfunction in HUVECs induced by the CM from CSB-treated RAW264.7 cells. Collectively, we found that CSB could induce mitochondrial dysfunction in HUVECs by the polarization of pro-inflammatory M1 macrophages, resulting in endothelial dysfunction. These findings may provide a foundational basis for developing treatments for diseases associated with CSB.
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