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Updated: Jun 11, 2025

Induction and Validation of Cellular Senescence in Primary Human Cells
Published on: June 20, 2018
Vitamin C, doxycycline, and azithromycin (VDA) targeted changes in cellular senescence-related genes in human
Roshanak Alvandi1,2, Samira Salimiyan2, Mohammad Moradzad3
1Student Research Committee, Kurdistan University of Medical Sciences, Sanandaj, Iran.
Objectives:
Adipose-derived Mesenchymal stem cells (ASCs) have garnered attention for their regenerative potential; therefore, their cellular senescence-related gene expression remains crucial in therapeutic contexts. Nowadays, combination therapies have shown promising results in reducing senescent cells. This study investigated the effects of vitamin C, doxycycline, and azithromycin co-treatment on the key cellular senescence-associated genes in ASCs.
Materials And Methods:
Human ASCs were cultured and treated for 24 hr with vitamin C, doxycycline, azithromycin, and a combination of three drugs. Total RNAs were extracted, and the expression of p21, p16, Nanog, Oct4, and Sox2 genes was assessed using reverse transcription-quantitative polymerase chain reaction (RT-qPCR). Additionally, cell cycle alterations were analyzed via flow cytometry after treatment with these compounds.
Results:
Notably, vitamin C treatment resulted in a significant down-regulation of p21 gene expression (P<0.01), implicating the potential role of vitamin C in promoting cell cycle progression. Doxycycline treatment led to a significant up-regulation of p21 and p16 gene expression (P<0.05), as it has previously been shown to induce cell cycle arrest. Similarly, azithromycin treatment predominantly increased p21 expression (P<0.05). Besides, cell cycle analysis revealed that each compound had changed the distribution of cells across different phases of the cell cycle.
Conclusion:
The combined use of all three drugs yielded intricate interactions, suggesting a complex yet promising approach to future research. According to our findings, the major difference in the combination drug-treated group (VDA) can be explained by the neutralizing effect of these three components in the environment.
Insights
Vitamin C, doxycycline, and azithromycin affect cellular senescence genes in adipose-derived stem cells (ASCs). Vitamin C down-regulated p21, while doxycycline and azithromycin increased p21 and p16 expression, with complex interactions in combination therapy.
Area of Science:
- Stem Cell Biology
- Cellular Senescence
- Molecular Biology
Background:
- Adipose-derived Mesenchymal stem cells (ASCs) possess significant regenerative potential.
- Understanding cellular senescence-related gene expression in ASCs is critical for therapeutic applications.
- Combination therapies are emerging as effective strategies for senescent cell reduction.
Purpose of the Study:
- To investigate the impact of vitamin C, doxycycline, and azithromycin, individually and in combination, on key senescence-associated genes in ASCs.
- To analyze the effects of these compounds on cell cycle distribution.
Main Methods:
- Human ASCs were treated with vitamin C, doxycycline, azithromycin, or a combination thereof for 24 hours.
- Gene expression analysis of p21, p16, Nanog, Oct4, and Sox2 was performed using RT-qPCR.
- Cell cycle analysis was conducted using flow cytometry.
Main Results:
- Vitamin C significantly down-regulated p21 gene expression (P<0.01), suggesting promotion of cell cycle progression.
- Doxycycline significantly up-regulated p21 and p16 gene expression (P<0.05), consistent with cell cycle arrest induction.
- Azithromycin predominantly increased p21 expression (P<0.05), and all compounds altered cell cycle distribution.
Conclusions:
- Individual drug treatments demonstrated distinct effects on senescence markers and cell cycle.
- The combination therapy (VDA) exhibited complex interactions, potentially due to a neutralizing effect.
- These findings highlight a complex but promising avenue for future research in senolytic combination therapies.
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