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Quantification of Monocyte Chemotactic Activity In Vivo and Characterization of Blood Monocyte Derived Macrophages
Published on: August 12, 2019
Myeloid GPSM1 regulates atherosclerosis progression by governing monocyte and macrophage activation and chemotaxis
Yuemei Zhang1, Yuxin Cao1, Yongxin Sun2
1Department of Endocrinology and Metabolism, Shanghai Sixth People's Hospital Affiliated to Shanghai Jiao Tong University School of Medicine, Shanghai Diabetes Institute, Shanghai Key Laboratory of Diabetes Mellitus, Shanghai Clinical Centre for Diabetes, Shanghai 200233, China.
Insights
G-protein signaling modulator 1 (GPSM1) drives atherosclerosis by promoting monocyte activation and inflammation. Inhibiting GPSM1 in preclinical models reduced disease progression, suggesting GPSM1 as a potential therapeutic target for atherosclerosis.
Area of Science:
- Cardiovascular Biology
- Molecular Medicine
- Immunology
Background:
- Atherosclerosis involves monocyte activation and macrophage infiltration into vessel walls.
- Mechanisms regulating these processes in atherogenesis are not fully understood.
Purpose of the Study:
- To investigate the role of G-protein signaling modulator 1 (GPSM1) in the development of atherosclerosis.
- To elucidate the molecular mechanisms by which GPSM1 influences atherogenesis.
Main Methods:
- Assessed GPSM1 expression in mouse and human atherosclerotic lesions.
- Utilized myeloid-specific GPSM1 knockout and overexpression mouse models.
- Investigated signaling pathways including p38/ERK MAPK and cAMP/PKA/KLF4/PMP22 axis.
- Evaluated therapeutic interventions targeting GPSM1 and PMP22.
Main Results:
- GPSM1 expression is upregulated in lesional macrophages during atherosclerosis.
- Myeloid GPSM1 ablation protected against atherosclerosis and aortic inflammation.
- GPSM1 deficiency inhibited monocyte activation via the cAMP/PKA/KLF4/PMP22-regulated p38/ERK MAPK pathway.
- Targeting GPSM1 or PMP22 ameliorated atherosclerosis in mouse models.
Conclusions:
- GPSM1 is a critical regulator of atherosclerosis development.
- GPSM1 promotes monocyte activation and inflammatory responses in atherosclerotic plaques.
- Targeting GPSM1 represents a potential therapeutic strategy for atherosclerosis.
Abstract:
The activation of blood monocytes and the infiltration of monocyte-derived macrophages into the vessel walls are the central part of atherosclerosis. However, the mechanisms underlying the processes remain unclear. Here, we report that G-protein signaling modulator 1 (GPSM1) plays a critical role in atherogenesis. We found that GPSM1 expression in lesional macrophages was increased during atherosclerosis development both in mice and humans. Myeloid-specific GPSM1 ablation protects mice against atherosclerosis and reduces aortic inflammation in both Apoe-/- mice and an AAV-PCSK9 injection model. Conversely, myeloid-restricted overexpression of GPSM1 accelerates aortic inflammation and promotes atherosclerosis development in mice. Mechanistically, GPSM1 deficiency suppressed monocyte activation including chemotaxis and adhesion through inhibition of the p38/ERK MAPK pathway regulated by the cAMP/PKA/KLF4/PMP22 axis, thereby alleviating proinflammatory responses within atherosclerotic plaques. Blockade of PMP22 using siRNA-loaded liposomes protected GPSM1 overexpression mice from atherosclerosis. Furthermore, a small-molecule compound inhibiting GPSM1 function could suppress atherosclerosis in vivo. In conclusion, our findings establish that GPSM1 is a regulator of atherosclerosis development and targeting GPSM1 might be a promising therapy against atherosclerosis.
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