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Proteomic study of endothelial dysfunction induced by AGEs and its possible role in diabetic cardiovascular
Reema Banarjee1, Akshay Sharma2, Shakuntala Bai1
1Proteomics Facility, Division of Biochemical Sciences, CSIR-National Chemical Laboratory, Pune 411008, India; Academy of Scientific and Innovative Research (AcSIR), India.
Abstract:
Endothelial dysfunction is one of the primary steps in the development of diabetes associated cardiovascular diseases. Hyperglycemic condition in diabetes promotes accumulation of advanced glycation end products (AGEs) in the plasma, that interact with the receptor for AGEs (RAGE) present on the endothelial cells and negatively affect their function. Using Human umbilical vascular endothelial cells (HUVECs) in culture, the effect of glycated human serum albumin on global proteomic changes was studied by SWATH-MS, a label free quantitative proteomic approach. Out of the 1860 proteins identified, 161 showed higher abundance while 123 showed lesser abundance in cells treated with glycated HSA. Bioinformatic analysis revealed that the differentially regulated proteins were involved in various processes such as apoptosis, oxidative stress etc. that are associated with endothelial dysfunction. Furthermore, the iRegulon analysis and immunofuorescence studies indicated that several of the differentially regulated proteins were transcriptionally regulated by NF-κB, that is downstream to AGE-RAGE axis. Some of the important differentially regulated proteins include ICAM1, vWF, PAI-1 that affect important endothelial functions like cell adhesion and blood coagulation. qPCR analysis showed an increase in expression of the AGE receptor RAGE along with other genes involved in endothelial function. AGE treatment to HUVEC cells led to increased oxidative stress and apoptosis. This is the first proteomics study that provides insight into proteomic changes downstream to AGE-RAGE axis leading to endothelial dysfunction and predisposing to cardiovascular complications.
Significance:
Cardiovascular disease (CVD) is a major pathological outcome in diabetic patients and it is important to address ways that target its development before the onset. Elevated plasma AGEs in diabetes can affect endothelial function and can continue to show their effects even after blood glucose levels are back to normal. Since endothelial dysfunction acts as one of the initiating factors for the development of CVD, understanding how AGEs affect the endothelial cell proteome to cause dysfunction will provide insight into the mechanisms involved and aid designing new therapeutic approaches.
Insights
Advanced glycation end products (AGEs) trigger endothelial dysfunction in diabetes by interacting with the receptor for AGEs (RAGE). This study reveals proteomic changes, including increased oxidative stress and apoptosis, contributing to cardiovascular disease risk.
Area of Science:
- Proteomics
- Endothelial Biology
- Cardiovascular Disease Research
Background:
- Endothelial dysfunction is a key early step in diabetes-associated cardiovascular diseases.
- Elevated advanced glycation end products (AGEs) in diabetes impair endothelial function, even post-glycemic control.
- Understanding AGEs' impact on endothelial cell proteome is crucial for developing therapeutic strategies.
Purpose of the Study:
- To investigate global proteomic changes in human umbilical vascular endothelial cells (HUVECs) exposed to glycated human serum albumin (HSA).
- To elucidate the downstream effects of the AGE-RAGE axis on endothelial cell function and identify key regulatory pathways.
- To establish the link between AGE-induced proteomic alterations and the development of endothelial dysfunction.
Main Methods:
- Utilized SWATH-MS, a label-free quantitative proteomic approach, to analyze protein expression in HUVECs treated with glycated HSA.
- Employed bioinformatic analysis to identify differentially regulated proteins and associated biological processes.
- Conducted iRegulon analysis, immunofluorescence, and quantitative real-time PCR (qPCR) to validate findings and explore regulatory mechanisms.
Main Results:
- Identified 1860 proteins, with 161 showing increased and 123 decreased abundance upon glycated HSA treatment.
- Bioinformatic analysis linked differentially regulated proteins to apoptosis and oxidative stress pathways.
- NF-κB was identified as a key transcriptional regulator for several affected proteins, including ICAM1, vWF, and PAI-1, downstream of the AGE-RAGE axis.
- AGE treatment increased RAGE expression, oxidative stress, and apoptosis in HUVECs.
Conclusions:
- This study provides the first proteomic insights into the molecular mechanisms by which the AGE-RAGE axis induces endothelial dysfunction.
- Identified specific proteins and pathways affected by AGEs, highlighting their role in endothelial cell adhesion and coagulation.
- Findings underscore the contribution of AGE-induced endothelial dysfunction to cardiovascular complications in diabetes.
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