The Oxidized Phospholipid PGPC Impairs Angiogenesis by Inhibiting Endothelial Autophagosomal–Lysosomal Fusion Through NPC1-Induced Syntaxin 17 Acetylation and Ubiquitination

BACKGROUND: Angiogenesis is essential for the recovery of ischemic hearts with coronary artery disease (CAD). PGPC (1-palmitoyl-2-glutamyl-sn-glycero-3-phosphocholine) is a major phospholipid oxidation product in atherosclerotic lesions. Autophagy participates in angiogenesis. However, whether PGPC affects angiogenesis in ischemic hearts by regulating autophagy remains unclear. METHODS: Plasma PGPC concentrations were quantified and the effects of PGPC on angiogenesis were evaluated in cultured endothelial cells and in vivo using a subcutaneous Matrigel plug assay, as well as in hindlimb ischemia and myocardial infarction models in C57BL/6J mice. Autophagic flux and the expression and modification of proteins associated with autophagy and angiogenesis were also assessed. RESULTS: Plasma PGPC levels were increased in patients with CAD, and they were positively correlated with the severity of CAD and negatively correlated with coronary collateral artery formation. PGPC inhibited endothelial cell migration and tube formation. PGPC suppressed neovascularization in Matrigel plugs and reduced blood flow recovery in hindlimb ischemia. In a mouse model of myocardial infarction, PGPC attenuated angiogenesis in the ischemic myocardium. These proangiogenic effects induced by VEGFA (vascular endothelial growth factor A) in ischemic hearts were significantly inhibited by PGPC. Mechanistically, PGPC inhibited the expression of STX17 (syntaxin 17), a crucial molecule that controls autophagosomal–lysosomal fusion by promoting the acetylation and subsequent ubiquitination and degradation of STX17. PGPC upregulated the expression of NPC1 (NPC intracellular cholesterol transporter 1) through CD36 (cluster of differentiation 36). NPC1 not only promoted the acetylation and subsequent ubiquitination and degradation of STX17 through the recruitment of ACAT1 (acetyl-CoA acetyltransferase 1), but also competed with STX17 to bind VAMP8 (vesicle-associated membrane protein 8), leading to inhibition of the expression of eNOS (endothelial nitric oxide synthase), ERK1/2 (extracellular signal-regulated kinase 1/2), and nitric oxide production. Oxidized phospholipid-neutralizing antibody E06, STX17 overexpression, or silencing of NPC1 reversed the inhibitory effect of PGPC on angiogenesis by restoring autophagic flux. CONCLUSIONS: PGPC promotes the acetylation and subsequent ubiquitin-mediated degradation of STX17 by increasing NPC1, leading to a reduction in the level of STX17 associated with VAMP8, which inhibits autophagosomal–lysosomal fusion and angiogenesis. Targeting PGPC, NPC1, or STX17 may represent novel therapeutic approaches to promote angiogenesis in patients with CAD.

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Journal
Circulation
Published
2026-10-06
DOI
https://doi.org/10.1161/circulationaha.126.079506
Primary Topic
Autophagy in Disease and Therapy
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article
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article

The Oxidized Phospholipid PGPC Impairs Angiogenesis by Inhibiting Endothelial Autophagosomal–Lysosomal Fusion Through NPC1-Induced Syntaxin 17 Acetylation and Ubiquitination

Jing‐Song Ou, Jianjun Gao, Yongping Bai, Yu‐Peng Jian et al.
Circulation
Autophagy in Disease and Therapy
article

The Oxidized Phospholipid PGPC Impairs Angiogenesis by Inhibiting Endothelial Autophagosomal–Lysosomal Fusion Through NPC1-Induced Syntaxin 17 Acetylation and Ubiquitination

Jing‐Song Ou, Jianjun Gao, Yongping Bai, Yu‐Peng Jian, Meng-Jie Deng, Zhi‐Jun Ou, Jia‐Guo Zhou, Fang-Yuan Wu, Chan-Yuan Lyu, Gang Dai, Yue-Ting Kang, Li Chen, Le Li, Jia-Hui Liu, Jia-Bao Liao, Wan-Kai Pan, Yan Li, Yu-Jia Liu, Yang Cao, He-Jian Xie
article en

Abstract

BACKGROUND: Angiogenesis is essential for the recovery of ischemic hearts with coronary artery disease (CAD). PGPC (1-palmitoyl-2-glutamyl-sn-glycero-3-phosphocholine) is a major phospholipid oxidation product in atherosclerotic lesions. Autophagy participates in angiogenesis. However, whether PGPC affects angiogenesis in ischemic hearts by regulating autophagy remains unclear. METHODS: Plasma PGPC concentrations were quantified and the effects of PGPC on angiogenesis were evaluated in cultured endothelial cells and in vivo using a subcutaneous Matrigel plug assay, as well as in hindlimb ischemia and myocardial infarction models in C57BL/6J mice. Autophagic flux and the expression and modification of proteins associated with autophagy and angiogenesis were also assessed. RESULTS: Plasma PGPC levels were increased in patients with CAD, and they were positively correlated with the severity of CAD and negatively correlated with coronary collateral artery formation. PGPC inhibited endothelial cell migration and tube formation. PGPC suppressed neovascularization in Matrigel plugs and reduced blood flow recovery in hindlimb ischemia. In a mouse model of myocardial infarction, PGPC attenuated angiogenesis in the ischemic myocardium. These proangiogenic effects induced by VEGFA (vascular endothelial growth factor A) in ischemic hearts were significantly inhibited by PGPC. Mechanistically, PGPC inhibited the expression of STX17 (syntaxin 17), a crucial molecule that controls autophagosomal–lysosomal fusion by promoting the acetylation and subsequent ubiquitination and degradation of STX17. PGPC upregulated the expression of NPC1 (NPC intracellular cholesterol transporter 1) through CD36 (cluster of differentiation 36). NPC1 not only promoted the acetylation and subsequent ubiquitination and degradation of STX17 through the recruitment of ACAT1 (acetyl-CoA acetyltransferase 1), but also competed with STX17 to bind VAMP8 (vesicle-associated membrane protein 8), leading to inhibition of the expression of eNOS (endothelial nitric oxide synthase), ERK1/2 (extracellular signal-regulated kinase 1/2), and nitric oxide production. Oxidized phospholipid-neutralizing antibody E06, STX17 overexpression, or silencing of NPC1 reversed the inhibitory effect of PGPC on angiogenesis by restoring autophagic flux. CONCLUSIONS: PGPC promotes the acetylation and subsequent ubiquitin-mediated degradation of STX17 by increasing NPC1, leading to a reduction in the level of STX17 associated with VAMP8, which inhibits autophagosomal–lysosomal fusion and angiogenesis. Targeting PGPC, NPC1, or STX17 may represent novel therapeutic approaches to promote angiogenesis in patients with CAD.

Circulation
Central South University (CN), Sun Yat-sen University (CN), Chinese Academy of Medical Sciences & Peking Union Medical College (CN), The First Affiliated Hospital, Sun Yat-sen University (CN), Xiangya Hospital Central South University (CN)
Openalex Percentile: Top 11%
Autophagy in Disease and Therapy
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