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Glycated High-Density Lipoproteins Reduce Endothelial Phenotypic Expression of Monocyte-Derived Multipotential Cells
Felipe Massó-Rojas1, Luis Felipe Montaño-Estrada2, Araceli Páez-Arenas1
1Laboratory of Translational Medicine, UNAM-INC Research Unit, National Institute of Cardiology Ignacio Chávez, Mexico City 14080, Mexico.
Insights
In type 2 diabetes, advanced glycation of high-density lipoproteins (HDL) impairs the ability of monocyte-derived multipotential cells (MOMCs) to become endothelial cells. Preserving HDL integrity is crucial for endothelial repair and preventing vascular complications in T2D.
Area of Science:
- Endocrinology and Metabolism
- Cardiovascular Research
- Cell Biology
Background:
- High-density lipoproteins (HDL) protect the endothelium, but this function is compromised in type 2 diabetes (T2D).
- Monocyte-derived multipotential cells (MOMCs) can differentiate into endothelial cells, but the impact of HDL glycation on this process is unknown.
Purpose of the Study:
- To investigate the effect of HDL glycation, size, and composition on MOMC differentiation into endothelial cells in normoglycemic, prediabetic, and T2D individuals.
Main Methods:
- HDL was isolated from normoglycemic, prediabetic, and T2D participants.
- HDL characteristics (size, composition, glycation products) were analyzed.
- CD14+ MOMCs were incubated with HDL, and endothelial phenotypic expression (CD14+/KDR+) was assessed.
Main Results:
- T2D patients exhibited higher concentrations of early and advanced glycation products in HDL compared to other groups.
- HDL from T2D patients significantly reduced CD14+/KDR+ expression in MOMCs compared to HDL from normoglycemic and prediabetic individuals.
- Advanced glycation end products in HDL showed an inverse correlation with CD14+/KDR+ expression, independent of other HDL characteristics.
Conclusions:
- Increased HDL advanced glycation in T2D patients impairs MOMC endothelial differentiation.
- These findings underscore the importance of maintaining HDL integrity in T2D to support endothelial repair and mitigate vascular complications.
Abstract:
Background: High-density lipoproteins (HDL) exert protective effects on the endothelium, which are impaired in type 2 diabetes (T2D). Although monocyte-derived multipotential cells (MOMCs) can be differentiated into the endothelial lineage, it remains unclear whether HDL glycation, size, and composition could affect MOMCs differentiation. Methods: Twenty normoglycemic (49 years, 35% male), 20 prediabetic (52 years, 35% male), and 20 newly diagnosed T2D participants (51 years, 50% male) were recruited. HDL were isolated from each study group. The size, composition, and early, intermediate, or advanced glycation products of HDL were determined. CD14+ MOMCs were isolated from healthy volunteers and incubated with HDL from each group. Endothelial phenotypic expression was assessed by CD14+/KDR+ expression. Results: Compared with normoglycemic and prediabetic individuals, T2D patients had higher concentrations of early (4.4, 4.6, vs. 5.2 µmol/mg of protein, respectively; p = 0.049) and advanced (7.7, 8.7, vs. 14.3 µg-BSA-AGEs/mg of protein, respectively; p < 0.02) glycation products in HDL. HDL composition was similar among groups. The CD14+/KDR+ expression in MOMCs incubated with HDL from T2D patients was lower than that observed in prediabetes and normoglycemic individuals (46% vs. 52% and 61%, respectively; p = 0.002). Advanced glycation end products in HDL inversely correlated with CD14+/KDR+ cells (r = -0.418, p = 0.002), adjusting for other HDL characteristics. Conclusions: In T2D patients, increased HDL-advanced glycation impairs the endothelial phenotypic expression of MOMCs, independently of other HDL characteristics. Since advanced glycation leads to greater biological damage, these findings highlight the importance of preserving HDL integrity in T2D patients to support endothelial repair and potentially delay vascular complications.
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