Key result
Gene set enrichment analysis identified 22 commonly dysregulated pathways in obese adipose tissue and atherosclerotic plaques, including upregulation of inflammatory response and downregulation of oxidative phosphorylation.
p-value: p=<0.05
This study provides evidence for common pathogenic pathways, such as inflammatory response and oxidative phosphorylation, underlying obesity-driven insulin resistance and atherogenesis in a mouse model.
Supports overlapping inflammatory and metabolic dysregulation in obesity and atherosclerosis; hypothesis-generating in animal models and should not yet inform practice.
BACKGROUND: The metabolic syndrome is becoming increasingly prevalent in the general population that is at simultaneous risk for both type 2 diabetes and cardiovascular disease. The critical pathogenic mechanisms underlying these diseases are obesity-driven insulin resistance and atherosclerosis, respectively. To obtain a better understanding of molecular mechanisms involved in pathogenesis of the metabolic syndrome as a basis for future treatment strategies, studies considering both inherent risks, namely metabolic and cardiovascular, are needed. Hence, the aim of this study was to identify pathways commonly dysregulated in obese adipose tissue and atherosclerotic plaques. METHODS: We carried out a gene set enrichment analysis utilizing data from two microarray experiments with obese white adipose tissue and atherosclerotic aortae as well as respective controls using a combined insulin resistance-atherosclerosis mouse model. RESULTS: We identified 22 dysregulated pathways common to both tissues with p values below 0.05, and selected inflammatory response and oxidative phosphorylation pathways from the Hallmark gene set to conduct a deeper evaluation at the single gene level. This analysis provided evidence of a vast overlap in gene expression alterations in obese adipose tissue and atherosclerosis with Il7r, C3ar1, Tlr1, Rgs1 and Semad4d being the highest ranked genes for the inflammatory response pathway and Maob, Bckdha, Aldh6a1, Echs1 and Cox8a for the oxidative phosphorylation pathway. CONCLUSIONS: In conclusion, this study provides extensive evidence for common pathogenic pathways underlying obesity-driven insulin resistance and atherogenesis which could provide a basis for the development of novel strategies to simultaneously prevent type 2 diabetes and cardiovascular disease in patients with metabolic syndrome.
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Moreno‐Viedma et al. (2016) studied Obesity-driven insulin resistance and atherosclerosis (n=24). Diabetogenic diet vs. Normal chow was evaluated on Common dysregulated pathways in obese white adipose tissue and atherosclerotic aortae (p=<0.05). Gene set enrichment analysis identified 22 commonly dysregulated pathways in obese adipose tissue and atherosclerotic plaques, including upregulation of inflammatory response and downregulation of oxidative phosphorylation.
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