Loss of Macrophage mTORC2 Drives Atherosclerosis via FoxO1 and IL-1β Signaling

Author:

Zhang Xiangyu12,Evans Trent D.2,Chen Sunny2,Sergin Ismail2ORCID,Stitham Jeremiah3,Jeong Se-Jin2ORCID,Rodriguez-Velez Astrid2ORCID,Yeh Yu-Sheng12ORCID,Park Arick2ORCID,Jung In-Hyuk2ORCID,Diwan Abhinav24ORCID,Schilling Joel D.2ORCID,Rom Oren5ORCID,Yurdagul Arif5ORCID,Epelman Slava6ORCID,Cho Jaehyung78ORCID,Lodhi Irfan J.3ORCID,Mittendorfer Bettina9,Razani Babak110284ORCID

Affiliation:

1. Department of Medicine and Vascular Medicine Institute, University of Pittsburgh School of Medicine and UPMC, PA (X.Z., Y.-S.Y., B.R.).

2. Cardiovascular Division (X.Z., T.D.E., S.C., I.S., S.J.J., A.R.-V., Y.-S.Y., A.P., I.-H.J., A.D., J.D.S., B.R.), St Louis, MO.

3. Division of Endocrinology, Metabolism, and Lipid Research (J.S., I.J.L.), St Louis, MO.

4. John Cochran VA Medical Center, St. Louis, MO (A.D., B.R.).

5. Department of Pathology and Translational Pathobiology and Department of Molecular and Cellular Physiology, Louisiana State University, Shreveport (O.R., A.Y.).

6. Ted Rogers Centre for Heart Research, Peter Munk Cardiac Center, Toronto General Hospital Research Institute, University Health Network and University of Toronto, Canada (S.E.).

7. Division of Hematology, Department of Medicine (J.C.), St Louis, MO.

8. Department of Pathology & Immunology, Washington University School of Medicine (J.C., B.R.), St Louis, MO.

9. Division of Geriatrics and Nutritional Science (B.M.), St Louis, MO.

10. Pittsburgh VA Medical Center, PA (B.R.).

Abstract

BACKGROUND: The mTOR (mechanistic target of rapamycin) pathway is a complex signaling cascade that regulates cellular growth, proliferation, metabolism, and survival. Although activation of mTOR signaling has been linked to atherosclerosis, its direct role in lesion progression and in plaque macrophages remains poorly understood. We previously demonstrated that mTORC1 (mTOR complex 1) activation promotes atherogenesis through inhibition of autophagy and increased apoptosis in macrophages. METHODS: Using macrophage-specific Rictor- and mTOR-deficient mice, we now dissect the distinct functions of mTORC2 pathways in atherogenesis. RESULTS: In contrast to the atheroprotective effect seen with blockade of macrophage mTORC1, macrophage-specific mTORC2-deficient mice exhibit an atherogenic phenotype, with larger, more complex lesions and increased cell death. In cultured macrophages, we show that mTORC2 signaling inhibits the FoxO1 (forkhead box protein O1) transcription factor, leading to suppression of proinflammatory pathways, especially the inflammasome/IL (interleukin)-1β response, a key mediator of vascular inflammation and atherosclerosis. In addition, administration of FoxO1 inhibitors efficiently rescued the proinflammatory response caused by mTORC2 deficiency both in vitro and in vivo. Interestingly, collective deletion of macrophage mTOR, which ablates mTORC1- and mTORC2-dependent pathways, leads to minimal change in plaque size or complexity, reflecting the balanced yet opposing roles of these signaling arms. CONCLUSIONS: Our data provide the first mechanistic details of macrophage mTOR signaling in atherosclerosis and suggest that therapeutic measures aimed at modulating mTOR need to account for its dichotomous functions.

Publisher

Ovid Technologies (Wolters Kluwer Health)

Subject

Cardiology and Cardiovascular Medicine,Physiology

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