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Differentiated Mouse Adipocytes in Primary Culture: A Model of Insulin Resistance
Published on: February 17, 2023
Epigenomic and transcriptional control of insulin resistance
1Division of Endocrinology and Metabolism, Beth Israel Deaconess Medical Center and Harvard Medical School, Boston, MA, USA. erosen@bidmc.harvard.edu.
Abstract:
Insulin resistance is one of the defining features of type 2 diabetes and the metabolic syndrome and accompanies many other clinical conditions, ranging from obesity to lipodystrophy to glucocorticoid excess. Extraordinary efforts have gone into defining the mechanisms that underlie insulin resistance, with most attention focused on altered signalling as well as mitochondrial and endoplasmic reticulum stress. Here, nuclear mechanisms of insulin resistance, including transcriptional and epigenomic effects, will be discussed. Three levels of control involving transcription factors, transcriptional cofactors, and chromatin-modifying enzymes will be considered. Well-studied examples of the first include PPAR-γ in adipose tissue and the glucocorticoid receptor and FoxO1 in a variety of insulin-sensitive tissues. These proteins work in concert with cofactors such as PGC-1α and CRTC2, and chromatin-modifying enzymes including DNA methyltransferases and histone acetyltransferases, to regulate key genes that promote insulin-stimulated glucose uptake, gluconeogenesis or other pathways that affect systemic insulin action. Furthermore, genetic variation associated with increased risk of type 2 diabetes is often related to altered transcription factor binding, either by affecting the transcription factor itself, or more commonly by changing the binding affinity of a noncoding regulatory region. Finally, several avenues for therapeutic exploitation in the battle against metabolic disease will be discussed, including small-molecule inhibitors and activators of these factors and their related pathways.
Insights
Nuclear mechanisms drive insulin resistance, a key feature of type 2 diabetes. Understanding transcription factors, cofactors, and epigenomic changes offers new therapeutic targets for metabolic diseases.
Area of Science:
- Molecular Biology
- Genetics
- Endocrinology
Background:
- Insulin resistance is central to type 2 diabetes and metabolic syndrome.
- Previous research focused on signaling, mitochondrial, and endoplasmic reticulum stress.
- Nuclear mechanisms, including transcriptional and epigenomic effects, are crucial but less explored.
Purpose of the Study:
- To discuss nuclear mechanisms underlying insulin resistance.
- To explore the roles of transcription factors, cofactors, and chromatin modifiers.
- To highlight therapeutic strategies targeting these nuclear pathways.
Main Methods:
- Review of transcriptional and epigenomic regulation in insulin resistance.
- Examination of key regulatory proteins: transcription factors (e.g., PPAR-γ, glucocorticoid receptor, FoxO1), cofactors (e.g., PGC-1α, CRTC2), and enzymes (e.g., DNA methyltransferases, histone acetyltransferases).
- Analysis of genetic variations impacting transcription factor binding and regulatory regions.
Main Results:
- Identified three levels of nuclear control: transcription factors, cofactors, and chromatin-modifying enzymes.
- Demonstrated how these factors regulate genes involved in glucose uptake and gluconeogenesis.
- Linked genetic variations in regulatory regions to type 2 diabetes risk.
Conclusions:
- Nuclear mechanisms play a significant role in insulin resistance.
- Targeting transcription factors, cofactors, and epigenetic modifiers offers therapeutic potential for metabolic diseases.
- Further research into these pathways can lead to novel treatments for type 2 diabetes and related conditions.
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