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Updated: Apr 13, 2026

Quantitative Analysis and Characterization of Atherosclerotic Lesions in the Murine Aortic Sinus
Published on: December 8, 2013
Plasma cholesterol-induced lesion networks activated before regression of early, mature, and advanced atherosclerosis
Johan L M Björkegren1, Sara Hägg2, Husain A Talukdar3
1Cardiovascular Genomics Group, Division of Vascular Biology, Department of Medical Biochemistry and Biophysics, Karolinska Institutet, Stockholm, Sweden ; Cardiovascular Genomics Group, Department of Pathological Anatomy and Forensic Medicine, University of Tartu, Tartu, Estonia ; Institute for Genomics and Multi-scale Biology, Icahn School of Medicine at Mount Sinai, New York, New York, United States of America.
Abstract:
Plasma cholesterol lowering (PCL) slows and sometimes prevents progression of atherosclerosis and may even lead to regression. Little is known about how molecular processes in the atherosclerotic arterial wall respond to PCL and modify responses to atherosclerosis regression. We studied atherosclerosis regression and global gene expression responses to PCL (≥80%) and to atherosclerosis regression itself in early, mature, and advanced lesions. In atherosclerotic aortic wall from Ldlr(-/-)Apob (100/100) Mttp (flox/flox)Mx1-Cre mice, atherosclerosis regressed after PCL regardless of lesion stage. However, near-complete regression was observed only in mice with early lesions; mice with mature and advanced lesions were left with regression-resistant, relatively unstable plaque remnants. Atherosclerosis genes responding to PCL before regression, unlike those responding to the regression itself, were enriched in inherited risk for coronary artery disease and myocardial infarction, indicating causality. Inference of transcription factor (TF) regulatory networks of these PCL-responsive gene sets revealed largely different networks in early, mature, and advanced lesions. In early lesions, PPARG was identified as a specific master regulator of the PCL-responsive atherosclerosis TF-regulatory network, whereas in mature and advanced lesions, the specific master regulators were MLL5 and SRSF10/XRN2, respectively. In a THP-1 foam cell model of atherosclerosis regression, siRNA targeting of these master regulators activated the time-point-specific TF-regulatory networks and altered the accumulation of cholesterol esters. We conclude that PCL leads to complete atherosclerosis regression only in mice with early lesions. Identified master regulators and related PCL-responsive TF-regulatory networks will be interesting targets to enhance PCL-mediated regression of mature and advanced atherosclerotic lesions.
Insights
Plasma cholesterol lowering (PCL) effectively regresses atherosclerosis in early lesions. However, mature and advanced lesions show resistance, highlighting the need for targeted therapies to enhance regression in later stages.
Area of Science:
- Cardiovascular Biology
- Molecular Medicine
- Genomics
Background:
- Plasma cholesterol lowering (PCL) is known to slow atherosclerosis progression and promote regression.
- The molecular mechanisms within the arterial wall that respond to PCL and influence atherosclerosis regression remain poorly understood, especially across different lesion stages.
Purpose of the Study:
- To investigate atherosclerosis regression and global gene expression responses to PCL across early, mature, and advanced atherosclerotic lesions.
- To identify key transcription factor (TF) regulatory networks and master regulators involved in PCL-mediated atherosclerosis regression.
Main Methods:
- Utilized Ldlr(-/-)Apob(100/100)Mttp(flox/flox)Mx1-Cre mouse models with varying stages of atherosclerotic lesions.
- Performed global gene expression analysis to study responses to PCL and atherosclerosis regression.
- Inferred TF regulatory networks and identified master regulators (e.g., PPARG, MLL5, SRSF10/XRN2) using computational methods.
- Validated master regulator function in a THP-1 foam cell model using siRNA knockdown.
Main Results:
- Atherosclerosis regressed following PCL in all lesion stages, but complete regression was only achieved in early lesions.
- Mature and advanced lesions resulted in regression-resistant plaque remnants.
- Genes responding to PCL before regression were enriched for inherited risk of coronary artery disease and myocardial infarction.
- Distinct TF regulatory networks and master regulators were identified for PCL response in early (PPARG), mature (MLL5), and advanced (SRSF10/XRN2) lesions.
Conclusions:
- Complete atherosclerosis regression via PCL is dependent on the lesion stage, being most effective in early lesions.
- Identified master regulators and their associated PCL-responsive TF networks offer potential therapeutic targets to enhance regression of more advanced atherosclerotic plaques.
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