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Chlorogenic acid attenuates skin senescence and UVR-induced photoaging via the modulation of mitochondrial function
Rui Li1, Chujuan Hu2, Ping Zhou3
1State Key Laboratory of Bioactive Substance and Function of Natural Medicines, Institute of Medicinal Biotechnology, Chinese Academy of Medical Sciences, Peking Union Medical College, Beijing, 100050, PR China. lirui2022@imb.cams.cn.
Background:
Mitochondrial function plays a critical role in skin aging. Chlorogenic acid (CGA), a botanical compound, has demonstrated regulatory effects on mitochondrial function and senescence inhibition. However, whether the anti-aging effects of CGA are attributable to its regulation of mitochondrial function remains unclear. There is a need to investigate the anti-aging effect and mechanism of CGA by modulating mitochondrial function, particularly its mode of action on mitochondrial function.
Methods:
Normal human dermal fibroblasts and human epidermal keratinocytes were used to detect the regulation of collagen I production, mitochondrial functions, and anti-aging properties of CGA and confirmed by mitochondrial transplantation. The photo-aging mouse model was established by ultraviolet (UV) radiation, followed by the treatment of CGA-gel (1 mmol/kg/d) for 14 days. The skin tissues were collected and tested.
Results:
CGA promotes collagen I (Col1) production by activating the TGF-β/Smad signaling pathway, while concurrently inhibiting cellular senescence. CGA administration significantly reduced the expression of p21, senescence-associated secretory phenotype (SASP) production, and SA-β-Gal activity in skin cells. Additionally, CGA treatment notably enhanced mitochondrial function, improving disrupted mitochondrial cristae in senescent cells and boosting the oxidative phosphorylation (OXPHOS) process. ATP levels increased by approximately 40-80% following CGA treatment. Mitochondrial transplantation further confirmed CGA's anti-aging effects are linked to mitochondrial function. CGA significantly mitigated UV-induced reduction in Col1, suppressed p21 expression and SASP production, and improved mitochondrial morphology and structure in vivo.
Conclusion:
CGA promotes Col1 production and attenuates skin cellular senescence, with these effects being directly associated with mitochondrial regulation. Thus, CGA holds promise as a potent agent for preventing cellular senescence.
Insights
Chlorogenic acid (CGA) rejuvenates skin by boosting collagen and improving mitochondrial function, effectively combating aging and cellular senescence. This botanical compound offers a promising natural approach to anti-aging skincare.
Area of Science:
- Dermatology
- Cell Biology
- Biochemistry
Background:
- Mitochondrial dysfunction is a key driver of skin aging.
- Chlorogenic acid (CGA) shows potential for regulating mitochondrial function and inhibiting senescence.
- The precise anti-aging mechanism of CGA via mitochondrial modulation requires investigation.
Purpose of the Study:
- To investigate the anti-aging effects of CGA.
- To elucidate the mechanism by which CGA modulates mitochondrial function for anti-aging benefits.
Main Methods:
- Utilized normal human dermal fibroblasts and keratinocytes to assess CGA's effects on collagen I production and mitochondrial function.
- Employed mitochondrial transplantation to confirm CGA's anti-aging mechanism.
- Established a photo-aging mouse model using UV radiation and treated with CGA-gel, followed by skin tissue analysis.
Main Results:
- CGA enhanced collagen I production via the TGF-β/Smad pathway and inhibited cellular senescence markers (p21, SASP, SA-β-Gal).
- CGA improved mitochondrial function, including cristae morphology and oxidative phosphorylation (OXPHOS), increasing ATP levels by 40-80%.
- In vivo studies confirmed CGA mitigated UV-induced skin damage, reduced senescence markers, and improved mitochondrial structure.
Conclusions:
- CGA promotes collagen production and reduces skin cellular senescence.
- These anti-aging effects are directly linked to CGA's regulation of mitochondrial function.
- CGA demonstrates significant potential as an agent for preventing skin cellular senescence.
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