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Updated: Sep 14, 2026

Isolation, Characterization, and Purification of Macrophages from Tissues Affected by Obesity-related Inflammation
Published on: April 3, 2017
Macrophage HDAC3 drives obesity and adipose tissue metabolic maladaptation through GDF3-mediated inflammation and
Yulin Zhang1, Ye Chen2, Jia Liu1
1Department of Pharmacology, School of Pharmacy, Anhui Medical University, Hefei 230032, China.
Abstract:
Chronic inflammation is a hallmark of obesity and its associated metabolic disorders. Adipose tissue macrophages (ATMs) play a crucial role in maintaining tissue homeostasis and orchestrating metabolic inflammation. Importantly, the regulation of proinflammatory gene translation is critical for macrophage activation, a process that has been closely linked to the onset of insulin resistance and type 2 diabetes. Histone deacetylase 3 (HDAC3) is a contributing factor of inflammatory gene expression; however, its precise role in modulating adipose tissue inflammation and type 2 diabetes remains poorly understood. This study demonstrates that metabolically stressed-induced HDAC3 mediates ATMs inflammation. HDAC3 deficiency in macrophages reduces adipose tissue macrophage infiltration and fibrosis, improves hyperglycemia, and reduced weight gain, adiposity in diet-induced obesity mice. HDAC3 deficiency mitigated the chronic inflammation and fibrosis in adipose tissue by suppressing inflammatory cytokine production via H3K4Me3/H3K27Ac-mediated chromatin remodeling. Mechanistically, growth differentiation factor 3 (GDF3) functions as a sensor of metabolic stress, interacts with HDAC3 through histone modification-mediated chromatin remodeling of inflammation genes. Critically, HDAC3 and GDF3 co-expression increased in adipose tissue/ATMs of obese humans, correlating positively with BMI, blood glucose, and proinflammatory gene levels. Our finding identifies HDAC3 as a molecular nexus connecting ATMs activation to systemic insulin resistance and type 2 diabetes. The GDF3-HDAC3 axis drives transcriptional reprogramming through H3K4Me3/H3K27Ac modifications, revealing a novel therapeutic target for obesity-associated metabolic disease.
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