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Amoxicillin Modulates ApoA-I Transcription and Secretion, Predominantly via PPARα Transactivation Inhibition
Jehad Z Tayyeb1,2, Herman E Popeijus1, Ronald P Mensink1
1Department of Nutrition and Movement Sciences, NUTRIM School for Nutrition and Translational Research in Metabolism, Maastricht University, 6229 ET Maastricht, The Netherlands.
Abstract:
In a recent human study, we observed that amoxicillin treatment decreased HDL-C concentration. We hypothesize that antibiotics lower the transcription and secretion of ApoA-I, the responsible protein for HDL production. HepG2 and Caco-2 cells were exposed to increasing dose of amoxicillin, penicillin, and streptomycin. Secreted ApoA-I protein and mRNA transcripts were analyzed using ELISA and qPCR, respectively. To unravel underlying mechanisms, KEAP1, CPT1, and CHOP mRNA expressions were determined as well as PPARα transactivation. In HepG2 and Caco-2, amoxicillin decreased ApoA-I transcription and secretion. Effects on ApoA-I expression were clearly there for amoxicillin while no effects were observed for penicillin or streptomycin. KEAP1, CPT1, and CHOP mRNA expressions were reduced by amoxicillin treatments. Moreover, a significant correlation between ApoA-I and CPT1 mRNA expressions was found. Furthermore, amoxicillin lowered PPARα transactivation. All together, these data suggest that inhibited PPARα transactivation is involved in the effects of amoxicillin on ApoA-I. In conclusion, the direct effect of amoxicillin in treated HepG2 and Caco-2 cells was a lower ApoA-I secretion and transcription. Based on evaluating alterations in KEAP1, CPT1, and CHOP mRNA expressions plus PPARα transactivation, we suggest that a reduced PPARα activation is a potential mechanism behind the observed amoxicillin effects on ApoA-I expression.
Insights
Amoxicillin treatment reduces high-density lipoprotein cholesterol (HDL-C) by decreasing apolipoprotein A-I (ApoA-I) transcription and secretion. This effect is linked to inhibited peroxisome proliferator-activated receptor alpha (PPARα) transactivation.
Area of Science:
- Biochemistry
- Molecular Biology
- Pharmacology
Background:
- Human studies show amoxicillin decreases HDL-C.
- Apolipoprotein A-I (ApoA-I) is crucial for HDL production.
- Antibiotics may impact ApoA-I synthesis and release.
Purpose of the Study:
- To investigate amoxicillin's effect on ApoA-I transcription and secretion.
- To explore the underlying molecular mechanisms involving KEAP1, CPT1, CHOP, and PPARα.
- To determine if amoxicillin directly affects ApoA-I expression in liver and intestinal cells.
Main Methods:
- Exposure of HepG2 and Caco-2 cells to amoxicillin, penicillin, and streptomycin.
- Quantification of ApoA-I mRNA and protein using qPCR and ELISA.
- Analysis of KEAP1, CPT1, and CHOP mRNA expression.
- Assessment of PPARα transactivation.
Main Results:
- Amoxicillin significantly reduced ApoA-I transcription and secretion in HepG2 and Caco-2 cells.
- Penicillin and streptomycin did not affect ApoA-I expression.
- Amoxicillin decreased KEAP1, CPT1, and CHOP mRNA levels.
- A significant correlation was observed between ApoA-I and CPT1 mRNA.
- Amoxicillin treatment lowered PPARα transactivation.
Conclusions:
- Amoxicillin directly inhibits ApoA-I secretion and transcription in liver and intestinal cells.
- Reduced PPARα activation is a potential mechanism for amoxicillin's impact on ApoA-I.
- Amoxicillin's effects on ApoA-I are mediated through pathways involving KEAP1, CPT1, CHOP, and PPARα.
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