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LDL Cholesterol Uptake Assay Using Live Cell Imaging Analysis with Cell Health Monitoring
Published on: November 17, 2018
Transcriptional profiling uncovers a network of cholesterol-responsive atherosclerosis target genes
Josefin Skogsberg1, Jesper Lundström, Alexander Kovacs
1The Computational Medicine Group, Karolinska Institutet, Karolinska University Hospital Solna, Stockholm, Sweden.
Abstract:
Despite the well-documented effects of plasma lipid lowering regimes halting atherosclerosis lesion development and reducing morbidity and mortality of coronary artery disease and stroke, the transcriptional response in the atherosclerotic lesion mediating these beneficial effects has not yet been carefully investigated. We performed transcriptional profiling at 10-week intervals in atherosclerosis-prone mice with human-like hypercholesterolemia and a genetic switch to lower plasma lipoproteins (Ldlr(-/-)Apo(100/100)Mttp(flox/flox) Mx1-Cre). Atherosclerotic lesions progressed slowly at first, then expanded rapidly, and plateaued after advanced lesions formed. Analysis of lesion expression profiles indicated that accumulation of lipid-poor macrophages reached a point that led to the rapid expansion phase with accelerated foam-cell formation and inflammation, an interpretation supported by lesion histology. Genetic lowering of plasma cholesterol (e.g., lipoproteins) at this point all together prevented the formation of advanced plaques and parallel transcriptional profiling of the atherosclerotic arterial wall identified 37 cholesterol-responsive genes mediating this effect. Validation by siRNA-inhibition in macrophages incubated with acetylated-LDL revealed a network of eight cholesterol-responsive atherosclerosis genes regulating cholesterol-ester accumulation. Taken together, we have identified a network of atherosclerosis genes that in response to plasma cholesterol-lowering prevents the formation of advanced plaques. This network should be of interest for the development of novel atherosclerosis therapies.
Insights
Lowering plasma cholesterol halts atherosclerosis progression by regulating specific genes. This study identifies a network of 37 cholesterol-responsive genes that prevent advanced plaque formation, offering new therapeutic targets for cardiovascular disease.
Area of Science:
- Cardiovascular Biology
- Molecular Medicine
- Atherosclerosis Research
Background:
- Plasma lipid-lowering therapies effectively reduce cardiovascular events.
- The specific transcriptional mechanisms within atherosclerotic lesions remain poorly understood.
Purpose of the Study:
- To investigate the transcriptional response in atherosclerotic lesions during lipid-lowering interventions.
- To identify genes mediating the beneficial effects of cholesterol reduction on plaque development.
Main Methods:
- Transcriptional profiling of atherosclerotic lesions in hypercholesterolemic mice at 10-week intervals.
- Genetic manipulation to lower plasma lipoproteins.
- siRNA-inhibition in macrophages to validate gene networks.
Main Results:
- Atherosclerotic lesions showed a rapid expansion phase linked to lipid-poor macrophage accumulation and inflammation.
- Genetic lowering of plasma cholesterol prevented advanced plaque formation.
- 37 cholesterol-responsive genes were identified in the arterial wall, with 8 key genes regulating cholesterol-ester accumulation in macrophages.
Conclusions:
- A network of cholesterol-responsive genes mediates the prevention of advanced plaque formation upon plasma cholesterol lowering.
- These identified genes represent potential novel therapeutic targets for atherosclerosis treatment.
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