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Published on: June 25, 2017
Glucose and palmitate uncouple AMPK from autophagy in human aortic endothelial cells
Karen A Weikel1, José M Cacicedo2, Neil B Ruderman2
1Department of Medicine, Boston University School of Medicine and Boston Medical Center, Boston, Massachusetts karen.weikel@bmc.org.
Insights
In nutrient-rich conditions, AMP-activated protein kinase (AMPK) activity is uncoupled from autophagy in human aortic endothelial cells, suggesting combined therapies may treat cellular dysfunction.
Area of Science:
- Cellular biology
- Cardiovascular research
- Metabolic disease
Background:
- Dysregulated autophagy and reduced AMP-activated protein kinase (AMPK) activity are linked to atherosclerosis.
- The impact of high glucose and fatty acids on autophagy in human aortic endothelial cells (HAECs) is unclear.
- AMPK's role in activating autophagy under nutrient-rich conditions in HAECs is uninvestigated.
Purpose of the Study:
- To investigate how glucose and palmitate affect autophagy in HAECs.
- To determine if AMPK activity influences autophagy in nutrient-rich HAECs.
- To explore therapeutic strategies for nutrient-induced cellular dysfunction in atherosclerosis.
Main Methods:
- Primary HAECs were cultured in high glucose and palmitate.
- Autophagy, apoptosis, and monocyte adhesion were assessed.
- AMPK activity, ULK1 phosphorylation, and ceramide levels were measured.
- AMPK activators and acid ceramidase overexpression were used.
Main Results:
- High glucose and palmitate impaired basal autophagy, increasing apoptosis and monocyte adhesion in HAECs.
- These nutrients reduced AMPK activity and ULK1 phosphorylation at Ser555.
- AMPK activation did not restore ULK1 phosphorylation or autophagosome formation.
- Overexpression of acid ceramidase ameliorated nutrient-induced effects on ULK1 phosphorylation.
Conclusions:
- AMPK becomes uncoupled from autophagy in HAECs under nutrient-rich conditions, unlike in low-nutrient environments.
- This uncoupling occurs in conditions mimicking those found in patients at increased cardiovascular risk.
- Combined AMPK-dependent and -independent therapies may be more effective for treating nutrient-induced cellular dysfunction.
Abstract:
Dysregulated autophagy and decreased AMP-activated protein kinase (AMPK) activity are each associated with atherogenesis. Atherogenesis is preceded by high circulating concentrations of glucose and fatty acids, yet the mechanism by which these nutrients regulate autophagy in human aortic endothelial cells (HAECs) is not known. Furthermore, whereas AMPK is recognized as an activator of autophagy in cells with few nutrients, its effects on autophagy in nutrient-rich HAECs has not been investigated. We maintained and passaged primary HAECs in media containing 25 mM glucose and incubated them subsequently with 0.4 mM palmitate. These conditions impaired basal autophagy and rendered HAECs more susceptible to apoptosis and adhesion of monocytes, outcomes attenuated by the autophagy activator rapamycin. Glucose and palmitate diminished AMPK activity and phosphorylation of the uncoordinated-51-like kinase 1 (ULK1) at Ser555, an autophagy-activating site targeted by AMPK. 5-Aminoimidazole-4-carboxamide-1-β-d-ribofuranoside (AICAR)-mediated activation of AMPK phosphorylated acetyl-CoA carboxylase, but treatment with AICAR or other AMPK activators (A769662, phenformin) did not restore ULK1 phosphorylation or autophagosome formation. To determine whether palmitate-induced ceramide accumulation contributed to this finding, we overexpressed a ceramide-metabolizing enzyme, acid ceramidase. The increase in acid ceramidase expression ameliorated the effects of excess nutrients on ULK1 phosphorylation, without altering the effects of the AMPK activators. Thus, unlike low nutrient conditions, AMPK becomes uncoupled from autophagy in HAECs in a nutrient-rich environment, such as that found in patients with increased cardiovascular risk. These findings suggest that combinations of AMPK-independent and AMPK-dependent therapies may be more effective alternatives than either therapy alone for treating nutrient-induced cellular dysfunction.
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