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Cathepsin D contributes to the accumulation of advanced glycation end products during photoaging
Xinya Xu1, Yue Zheng1, Yunfen Huang1
1Department of Dermato-Venereology, The Third Affiliated Hospital of Sun Yat-sen University, Guangzhou 510630, PR China.
Background:
The deposition of advanced glycation end products (AGEs) is accelerated in photoaged skin, but the underlying mechanisms remain elusive. Intracellular degradation has been recently considered to play an important role in AGEs removal. Although lysosomal cathepsin D (CatD), B (CatB), L(CatL) and proteasomes are found to degrade internalized AGEs, it remains unknown which protease degrades internalized AGEs in human dermal fibroblasts (HDFs), and whether a decrease in intracellular degradation contributes to enhanced AGEs deposition in photoaged skin.
Objective:
This study aims to investigate the specific proteases that contribute to intracellular AGEs degradation in HDFs and regulate AGEs accumulation in photoaged skin.
Methods:
Repetitive UVA irradiation was used to induce primary HDF photoaging in vitro. Uptake and degradation of AGE-BSA were verified and compared between photoaged and non-photoaged fibroblasts with flow cytometry, ELISA and confocal microscopy. Proteasomal and lysosomal activity, expression of CatD, CatB and CatL were also investigated between photoaged and non-photoaged fibroblasts. Further, the effect of protease inhibitors and CatD overexpression via lentiviral transduction on AGE-BSA degradation was analyzed. Finally, the correlation between CatD expression and AGEs accumulation in sun-exposed and sun-protected skin of people from different age was studied with immunohistochemistry.
Results:
Fibroblasts underwent photoaging in vitro after repetitive UVA irradiation. AGE-BSA was taken up by both photoaged and non-photoaged fibroblasts, but its degradation was significantly decreased in photoaged cells than that of non-photoaged cells. Although the activity of proteasome, CatB, Cat L and Cat D was significantly reduced in photoaged fibroblasts compared to that of non-photoaged cells, and the expression of CatB, CatL and CatD was profoundly attenuated in photoaged fibroblasts, inhibiting proteasome, CatB and CatL did not affect AGE-BSA degradation in HDFs. In contrast, inhibiting CatD activity dose-dependently decreased AGE-BSA degradation; whereas CatD overexpression significantly increased AGE-BSA degradation. Importantly, AGEs accumulation in photo-damaged skin in vivo was inversely correlated with CatD expression.
Conclusion:
CatD plays a major role in intracellular AGEs degradation. Decreased CatD expression and activity impairs intracellular AGEs degradation in photoaged fibroblasts, which may contribute to accelerated AGEs deposition in photoaged skin. The present study provides a potentially novel molecular basis for antiphotoaging therapy.
Insights
Reduced Cathepsin D (CatD) expression impairs intracellular degradation of advanced glycation end products (AGEs) in photoaged skin fibroblasts. This decrease in CatD activity contributes to increased AGEs deposition, suggesting CatD as a target for anti-aging therapies.
Area of Science:
- Dermatology
- Cell Biology
- Biochemistry
Background:
- Advanced glycation end products (AGEs) accumulate in photoaged skin via poorly understood mechanisms.
- Intracellular degradation pathways are crucial for removing AGEs, but specific proteases involved in human dermal fibroblasts (HDFs) remain unidentified.
- Reduced intracellular AGEs degradation may drive AGEs deposition in photoaged skin.
Purpose of the Study:
- To identify specific proteases responsible for intracellular AGEs degradation in HDFs.
- To investigate the role of these proteases in regulating AGEs accumulation in photoaged skin.
- To explore the therapeutic potential of targeting these proteases for anti-aging interventions.
Main Methods:
- Induction of HDF photoaging using repetitive UVA irradiation in vitro.
- Quantification of AGE- Bovine Serum Albumin (BSA) uptake and degradation via flow cytometry, ELISA, and confocal microscopy.
- Assessment of proteasomal and lysosomal activity, including Cathepsin D (CatD), B (CatB), and L (CatL) expression and activity.
- Analysis of AGE-BSA degradation following protease inhibition or CatD overexpression.
- Immunohistochemical analysis of CatD expression and AGEs accumulation in human skin samples.
Main Results:
- Photoaged HDFs exhibited significantly reduced degradation of internalized AGE-BSA compared to non-photoaged cells.
- While proteasome, CatB, and CatL activities were reduced in photoaged cells, only CatD inhibition impaired AGE-BSA degradation.
- CatD overexpression enhanced AGE-BSA degradation, confirming its critical role.
- In vivo studies revealed an inverse correlation between CatD expression and AGEs accumulation in sun-exposed skin.
Conclusions:
- Cathepsin D (CatD) is the primary protease responsible for intracellular AGEs degradation in HDFs.
- Diminished CatD expression and activity in photoaged fibroblasts contribute to accelerated AGEs deposition.
- Targeting CatD presents a novel therapeutic strategy for combating photoaging and reducing AGEs accumulation.
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