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Updated: Jun 10, 2025

Induction of Atherosclerotic Plaques Through Activation of Mineralocorticoid Receptors in Apolipoprotein E-deficient Mice
Published on: September 26, 2018
Mechanisms and consequences of myeloid adhesome dysfunction in atherogenesis
Irina Zhevlakova1, Huan Liu2, Tejasvi Dudiki1
1Department of Neurosciences, Lerner Research Institute, Cleveland Clinic, 9500 Euclid Ave, Cleveland, OH 44195, USA.
Aims:
In the context of atherosclerosis, macrophages exposed to oxidized low-density lipoproteins (oxLDLs) exhibit cellular abnormalities, specifically in adhesome functions, yet the mechanisms and implications of these adhesive dysfunctions remain largely unexplored.
Methods And Results:
This study reveals a significant depletion of Kindlin3 (K3) or Fermt3, an essential component of the adhesome regulating integrin functions, in macrophages located within atherosclerotic plaques in vivo and following oxLDL exposure in vitro. To examine the effects of K3 deficiency, the study utilized hyperlipidaemic bone marrow chimeras devoid of myeloid Kindlin3 expression. The absence of myeloid K3 increased atherosclerotic plaque burden in the aortas in vivo and enhanced lipid accumulation and lipoprotein uptake in macrophages from Kindlin3-null chimeric mice in vitro. Importantly, re-expression of K3 in macrophages ameliorated these abnormalities. RNA sequencing of bone marrow-derived macrophages (BMDM) from K3-deficient mice revealed extensive deregulation in adhesion-related pathways, echoing changes observed in wild-type cells treated with oxLDL. Notably, there was an increase in Olr1 expression [encoding the lectin-like oxidized LDL receptor-1 (LOX1)], a gene implicated in atherogenesis. The disrupted K3-integrin axis in macrophages led to a significant elevation in the LOX1 receptor, contributing to increased oxLDL uptake and foam cell formation. Inhibition of LOX1 normalized lipid uptake in Kindlin3-null macrophages. A similar proatherogenic phenotype, marked by increased macrophage LOX1 expression and foam cell formation, was observed in myeloid-specific Itgβ1-deficient mice but not in Itgβ2-deficient mice, underscoring the critical role of K3/Itgβ1 interaction.
Conclusion:
This study shows that the loss of Kindlin3 in macrophages upon exposure to oxLDL leads to adhesome dysfunction in atherosclerosis and reveals the pivotal role of Kindlin3 in macrophage function and its contribution to the progression of atherosclerosis, providing valuable insights into the molecular mechanisms that could be targeted for therapeutic interventions.
Insights
Loss of Kindlin3 in macrophages impairs adhesome function, worsening atherosclerosis. Restoring Kindlin3 ameliorates these effects, highlighting its therapeutic potential in treating this cardiovascular disease.
Area of Science:
- Cardiovascular Biology
- Cellular Adhesion
- Atherosclerosis Research
Background:
- Macrophages are key players in atherosclerosis, accumulating lipids and forming foam cells.
- Oxidized low-density lipoproteins (oxLDLs) induce cellular abnormalities in macrophages, particularly affecting adhesion.
- The precise mechanisms and implications of oxLDL-induced adhesive dysfunction in macrophages are not well understood.
Purpose of the Study:
- To investigate the role of Kindlin3 (K3) in macrophage adhesome function during atherosclerosis.
- To elucidate the mechanisms by which K3 deficiency contributes to atherogenesis.
- To explore K3 as a potential therapeutic target for atherosclerosis.
Main Methods:
- Utilized hyperlipidaemic bone marrow chimeras lacking myeloid Kindlin3 expression.
- Exposed bone marrow-derived macrophages (BMDM) to oxLDL in vitro.
- Performed RNA sequencing on K3-deficient BMDM.
- Investigated the role of LOX1 and integrins (Itgβ1, Itgβ2) in K3-mediated macrophage function.
Main Results:
- Kindlin3 (K3) is significantly depleted in macrophages within atherosclerotic plaques and upon oxLDL exposure.
- Myeloid K3 deficiency exacerbates atherosclerosis, increasing plaque burden and macrophage lipid accumulation.
- K3 deficiency upregulates LOX1 expression, leading to increased oxLDL uptake and foam cell formation.
- Re-expression of K3 or inhibition of LOX1 ameliorates these proatherogenic phenotypes.
- The K3/Itgβ1 interaction is critical for regulating macrophage adhesion and function in atherosclerosis.
Conclusions:
- Loss of Kindlin3 in macrophages results in adhesome dysfunction, contributing to atherosclerosis progression.
- Kindlin3 plays a pivotal role in regulating macrophage response to oxLDL and foam cell formation.
- Targeting the Kindlin3 pathway offers a promising therapeutic strategy for atherosclerosis.
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