Regulated Accumulation of Desmosterol Integrates Macrophage Lipid Metabolism and Inflammatory Responses
Regulated Accumulation of Desmosterol Integrates Macrophage Lipid Metabolism and Inflammatory Responses
Inflammation and macrophage foam cells are characteristic features of atherosclerotic lesions, but the mechanisms linking cholesterol accumulation to inflammation and LXR-dependent response pathways are poorly understood. To investigate this relationship, we utilized lipidomic and transcriptomic methods to evaluate the effect of diet and LDL receptor genotype on macrophage foam cell formation within the peritoneal cavities of mice. Foam cell formation was associated with significant changes in hundreds of lipid species and unexpected suppression, rather than activation, of inflammatory gene expression. We provide evidence that regulated accumulation of desmosterol underlies many of the homeostatic responses, including activation of LXR target genes, inhibition of SREBP target genes, selective reprogramming of fatty acid metabolism, and suppression of inflammatory-response genes, observed in macrophage foam cells. These observations suggest that macrophage activation in atherosclerotic lesions results from extrinsic, proinflammatory signals generated within the artery wall that suppress homeostatic and anti-inflammatory functions of desmosterol.
- Georgia Institute of Technology United States
- University of California, San Francisco United States
- Vanderbilt University School of Medicine United States
- Duke University United States
- University of Colorado Denver United States
Male, Biomedical and clinical sciences, Mononuclear, 610, Cardiovascular, Inbred C57BL, Medical and Health Sciences, LDL, Mice, Receptors, Genetics, Leukocytes, 2.1 Biological and endogenous factors, Animals, Nutrition, Sterol Regulatory Element Binding Proteins, Biomedical and Clinical Sciences, Biochemistry, Genetics and Molecular Biology(all), Desmosterol, Fatty Acids, Biological Sciences, Atherosclerosis, Lipid Metabolism, Mice, Inbred C57BL, Biological sciences, Cholesterol, Receptors, LDL, Gene Knockdown Techniques, Leukocytes, Mononuclear, Biochemistry and Cell Biology, Transcriptome, Biotechnology, Developmental Biology, Foam Cells
Male, Biomedical and clinical sciences, Mononuclear, 610, Cardiovascular, Inbred C57BL, Medical and Health Sciences, LDL, Mice, Receptors, Genetics, Leukocytes, 2.1 Biological and endogenous factors, Animals, Nutrition, Sterol Regulatory Element Binding Proteins, Biomedical and Clinical Sciences, Biochemistry, Genetics and Molecular Biology(all), Desmosterol, Fatty Acids, Biological Sciences, Atherosclerosis, Lipid Metabolism, Mice, Inbred C57BL, Biological sciences, Cholesterol, Receptors, LDL, Gene Knockdown Techniques, Leukocytes, Mononuclear, Biochemistry and Cell Biology, Transcriptome, Biotechnology, Developmental Biology, Foam Cells
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