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Mimicking the Function of Signaling Proteins: Toward Artificial Signal Transduction Therapy
Published on: September 29, 2016
Glycation of PDGF results in decreased biological activity
Norbert Nass1, Katrin Vogel, Britt Hofmann
1Martin-Luther University Halle-Wittenberg, Department of Cardiothoracic Surgery, Ernst-Grube Str. 40, D-06120 Halle/Saale, Germany. norbert.nass@medizin.uni-halle.de
Abstract:
Advanced glycation end products (AGEs) are formed by the non-enzymatic glycation of proteins by reducing carbohydrates or alpha-oxo-aldehydes such as glyoxal and methylglyoxal and further rearrangements, eliminations and oxidations. AGE-modifications alter peptide structure, function and stability and accumulate under several pathophysiological conditions such as diabetes and are considered a biomarker of ageing. PDGF is a major regulator of wound healing, which is impaired in hyperglycaemia and ageing. We analyzed whether glycated PDGF has impaired activity in cell culture models and occurs in human subjects. PDGF was AGE-modified by the alpha-oxo-aldehydes glyoxal and methylglyoxal, which was shown by Western-blotting using alpha-carboxymethyllysine (CML) or alpha-arginine-pyrimidine (Arg-Pyr) antibodies. In mouse AKR-2B fibroblasts, this AGE-modified PDGF exhibited reduced signalling to AKT and ERK resulting in decreased cell proliferation. In the human osteosarcoma cell line 143B, PDGF signalling towards the AKT-kinase was decreased when using modified PDGF-AA, -AB, and -BB whereas the constitutive active ERK was not affected. Secreted proteins from collagen-activated platelets from diabetic subjects contained more CML-modified proteins compared to healthy controls. PDGF protein as a platelet protein coprecipitated in immunoprecipitation experiments with alpha-CML-antiserum. In summary, our data suggest that AGE-modification of PDGF contributes to reduced wound healing in diabetic patients.
Insights
Advanced glycation end products (AGEs) modify Platelet-Derived Growth Factor (PDGF), impairing its wound healing function. This AGE-modification of PDGF is linked to reduced healing in diabetic patients.
Area of Science:
- Biochemistry
- Cell Biology
- Pathophysiology
Background:
- Advanced glycation end products (AGEs) result from non-enzymatic protein glycation, altering protein structure and function.
- AGEs accumulate in conditions like diabetes and aging, serving as biomarkers.
- Platelet-Derived Growth Factor (PDGF) is crucial for wound healing, but its function is compromised in hyperglycemia and aging.
Purpose of the Study:
- To investigate the impact of AGE-modification on PDGF activity.
- To determine if AGE-modified PDGF occurs in human subjects.
- To elucidate the role of AGE-modified PDGF in impaired wound healing.
Main Methods:
- AGE-modification of PDGF using glyoxal and methylglyoxal.
- Western-blotting with CML and Arg-Pyr antibodies to confirm AGE-modification.
- Assessment of PDGF signaling (AKT, ERK) and cell proliferation in AKR-2B fibroblasts and 143B cells.
- Immunoprecipitation and analysis of proteins from diabetic and healthy subject platelets.
Main Results:
- AGE-modified PDGF showed reduced signaling to AKT and ERK, decreasing cell proliferation in AKR-2B fibroblasts.
- In 143B cells, AGE-modified PDGF (AA, AB, BB) decreased AKT signaling but did not affect ERK.
- Diabetic subjects' platelets had higher levels of CML-modified proteins, including PDGF, compared to healthy controls.
Conclusions:
- AGE-modification impairs PDGF's signaling and proliferative functions.
- AGE-modified PDGF is present in diabetic individuals.
- AGE-modification of PDGF likely contributes to impaired wound healing in diabetes.
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