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Updated: May 27, 2025

Isolation, Characterization, and Purification of Macrophages from Tissues Affected by Obesity-related Inflammation
Published on: April 3, 2017
Pyruvate dehydrogenase alleviates macrophage autophagy in Hcy-induced ApoE -/- mice
Qiujun Liu1,2,3, Feng Li1,2,3,4, Shutong Hu1,2,3
1NHC Key Laboratory of Metabolic Cardiovascular Diseases Research, Ningxia Medical University, Yinchuan 750004, China.
Insights
Pyruvate dehydrogenase (PDH) deficiency impairs macrophage autophagy in homocysteine-induced atherosclerosis. Activating PDH may offer a therapeutic strategy by enhancing autophagy via the AMPK/mTOR pathway.
Area of Science:
- Cardiovascular Biology
- Cellular Metabolism
- Immunology
Background:
- Macrophages are crucial in atherosclerosis; homocysteine (Hcy) is an independent risk factor.
- Macrophage autophagy defects and dysregulated energy metabolism contribute to atherosclerotic plaque formation.
- The role of pyruvate dehydrogenase (PDH) in Hcy-induced macrophage autophagy is unclear.
Purpose of the Study:
- To investigate the impact of Hcy on macrophage autophagy.
- To elucidate the role of PDH in Hcy-induced atherosclerosis.
- To identify potential therapeutic targets for Hcy-induced atherosclerosis.
Main Methods:
- Proteomic profiling of Hcy-treated macrophages.
- KEGG pathway analysis of differentially expressed proteins.
- Assessment of PDH expression, activity, and autophagy in Hcy-treated macrophages and ApoE-/- mice.
Main Results:
- Hcy treatment altered protein expression, impacting metabolism-related pathways.
- PDH expression and activity were reduced in Hcy-treated macrophages, impairing autophagy.
- PDH activation promoted ULK1-FIP200-Atg13 complex assembly via AMPK/mTOR signaling.
Conclusions:
- PDH plays a critical role in regulating macrophage autophagy under Hcy exposure.
- PDH activation is a potential therapeutic avenue for Hcy-induced atherosclerosis.
- Targeting PDH may restore macrophage autophagy and mitigate atherosclerotic progression.
Abstract:
Macrophages play a protective role in atherosclerosis, whereas homocysteine (Hcy) is recognized as an independent risk factor for atherosclerosis. Defects in macrophage autophagy contribute to the formation of atherosclerotic plaques, and dysregulated energy metabolism is closely linked to the process of autophagy. However, the regulation of macrophage autophagy by pyruvate dehydrogenase (PDH), a key component of the PDH complex involved in energy and metabolic homeostasis, remains poorly understood in the context of atherosclerosis induced by Hcy. In our study, proteomic profiling identifies 748 upregulated proteins and 760 downregulated proteins in Hcy-treated macrophages. KEGG pathway analysis reveals significant enrichment of differentially expressed proteins in metabolism-related pathways, including those related to the biosynthesis of amino acids, carbon metabolism, and glycolysis/gluconeogenesis. Additionally, we explore the role of PDH in mediating Hcy-induced atherosclerosis in ApoE -/- mice. The results show a marked reduction in PDH expression and activity in Hcy-treated macrophages, leading to impaired autophagy. Notably, PDH activation enhances the assembly of the autophagy initiator ULK1-FIP200-Atg13 complex through the modulation of the AMPK/mTOR signaling pathway, suggesting a potential therapeutic target for Hcy-induced atherosclerosis.
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