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Cell-free Biochemical Fluorometric Enzymatic Assay for High-throughput Measurement of Lipid Peroxidation in High Density Lipoprotein
Published on: October 12, 2017
Oxidized LDL regulates efferocytosis through the CD36-PKM2-mtROS pathway
Abstract:
Macrophage efferocytosis, the process by which phagocytes engulf and remove apoptotic cells (ACs), plays a critical role in maintaining tissue homeostasis. Efficient efferocytosis prevents secondary necrosis, mitigates chronic inflammation, and impedes atherosclerosis progression. However, the regulatory mechanisms of efferocytosis under atherogenic conditions remain poorly understood. We previously demonstrated that oxidized LDL (oxLDL), an atherogenic lipoprotein, induces mitochondrial reactive oxygen species (mtROS) in macrophages via CD36. In this study, we demonstrate that macrophage mtROS facilitate continual efferocytosis through a positive feedback mechanism. However, oxLDL disrupts continual efferocytosis by dysregulating the internalization of ACs. This disruption is mediated by an overproduction of mtROS. Mechanistically, oxLDL/CD36 signaling promotes the translocation of cytosolic PKM2 to mitochondria, facilitated by the chaperone GRP75. Mitochondrial PKM2 then binds to Complex III of the electron transport chain, inducing mtROS production. This study elucidates a novel regulatory mechanism of efferocytosis in atherosclerosis, providing potential therapeutic targets for intervention.
Summary:
Macrophages clear apoptotic cells through a process called efferocytosis, which involves mitochondrial ROS. However, the atherogenic oxidized LDL overstimulates mitochondrial ROS via the CD36-PKM2 pathway, disrupting continual efferocytosis. This finding elucidates a novel molecular mechanism that explains defects in efferocytosis, driving atherosclerosis progression.
Insights
Macrophage efferocytosis, crucial for tissue health, is disrupted by oxidized LDL. This atherogenic lipoprotein overproduces mitochondrial ROS, impairing the clearance of apoptotic cells and driving atherosclerosis.
Area of Science:
- Immunology
- Cell Biology
- Cardiovascular Research
Background:
- Macrophage efferocytosis is vital for tissue homeostasis and preventing inflammation.
- Dysfunctional efferocytosis contributes to atherosclerosis progression.
- Oxidized LDL (oxLDL) is implicated in atherogenesis, but its precise effects on efferocytosis are unclear.
Purpose of the Study:
- To investigate the regulatory mechanisms of macrophage efferocytosis under atherogenic conditions.
- To elucidate how oxLDL impacts efferocytosis and identify underlying molecular pathways.
Main Methods:
- Investigated macrophage efferocytosis in vitro.
- Utilized oxidized LDL (oxLDL) and assessed mitochondrial reactive oxygen species (mtROS) production.
- Examined the role of CD36, PKM2, and GRP75 in the efferocytosis pathway.
- Analyzed the impact of oxLDL on apoptotic cell (AC) internalization.
Main Results:
- Macrophage mtROS normally facilitate efferocytosis via a positive feedback loop.
- oxLDL disrupts efferocytosis by inducing excessive mtROS production.
- oxLDL/CD36 signaling causes PKM2 translocation to mitochondria, enhancing mtROS generation.
- This dysregulation impairs the internalization of ACs.
Conclusions:
- Macrophage efferocytosis is regulated by mitochondrial ROS.
- Oxidized LDL disrupts efferocytosis through the CD36-PKM2-mtROS pathway.
- This mechanism explains efferocytosis defects in atherosclerosis and suggests therapeutic targets.
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