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Published on: December 23, 2014
Macrophage (Drp1) Dynamin-Related Protein 1 Accelerates Intimal Thickening After Vascular Injury
Ryuta Umezu1, Jun-Ichiro Koga1,2, Tetsuya Matoba1
1From the Department of Cardiovascular Medicine, Graduate School of Medical Sciences (R.U., J.K., T.M., S.K., H.T.), Kyushu University, Fukuoka, Japan.
Objective:
Mitochondria consistently change their morphology in a process regulated by proteins, including Drp1 (dynamin-related protein 1), a protein promoting mitochondrial fission. Drp1 is involved in the mechanisms underlying various cardiovascular diseases, such as myocardial ischemia/reperfusion injury, heart failure, and pulmonary arterial hypertension. However, its role in macrophages, which promote various vascular diseases, is poorly understood. We therefore tested our hypothesis that macrophage Drp1 promotes vascular remodeling after injury.
Method And Results:
To explore the selective role of macrophage Drp1, we created macrophage-selective Drp1-deficient mice and performed femoral arterial wire injury. In these mice, intimal thickening and negative remodeling were attenuated at 4 weeks after injury when compared with control mice. Deletion of macrophage Drp1 also attenuated the macrophage accumulation and cell proliferation in the injured arteries. Gain- and loss-of-function experiments using cultured macrophages indicated that Drp1 induces the expression of molecules associated with inflammatory macrophages. Morphologically, mitochondrial fission was induced in inflammatory macrophages, whereas mitochondrial fusion was induced in less inflammatory/reparative macrophages. Pharmacological inhibition or knockdown of Drp1 decreased the mitochondrial reactive oxygen species and chemotactic activity in cultured macrophages. Co-culture experiments of macrophages with vascular smooth muscle cells indicated that deletion of macrophage Drp1 suppresses growth and migration of vascular smooth muscle cells induced by macrophage-derived soluble factors.
Conclusions:
Macrophage Drp1 accelerates intimal thickening after vascular injury by promoting macrophage-mediated inflammation. Macrophage Drp1 may be a potential therapeutic target of vascular diseases.
Insights
Macrophage dynamin-related protein 1 (Drp1) drives vascular remodeling and intimal thickening after injury by promoting inflammation. Inhibiting macrophage Drp1 may offer a therapeutic strategy for vascular diseases.
Area of Science:
- Mitochondrial dynamics and cellular regulation
- Cardiovascular disease mechanisms
- Macrophage biology
Background:
- Mitochondrial morphology is regulated by proteins like dynamin-related protein 1 (Drp1), crucial for mitochondrial fission.
- Drp1 is implicated in cardiovascular diseases, but its role in macrophages, key players in vascular pathology, remains unclear.
- This study investigates the hypothesis that macrophage Drp1 contributes to vascular remodeling post-injury.
Purpose of the Study:
- To determine the specific role of macrophage Drp1 in vascular remodeling after injury.
- To elucidate the mechanisms by which macrophage Drp1 influences vascular disease progression.
Main Methods:
- Generated macrophage-selective Drp1-deficient mice and subjected them to femoral arterial wire injury.
- Conducted in vitro studies using cultured macrophages for gain- and loss-of-function experiments.
- Performed co-culture experiments with macrophages and vascular smooth muscle cells.
Main Results:
- Macrophage-selective Drp1 deficiency attenuated intimal thickening and negative remodeling post-injury.
- Deletion of macrophage Drp1 reduced macrophage accumulation and proliferation in injured arteries.
- Drp1 promoted inflammatory macrophage phenotypes, mitochondrial fission, and increased mitochondrial reactive oxygen species and chemotactic activity, suppressing vascular smooth muscle cell growth and migration.
Conclusions:
- Macrophage Drp1 accelerates intimal thickening following vascular injury by enhancing macrophage-driven inflammation.
- Targeting macrophage Drp1 presents a potential therapeutic avenue for vascular diseases.
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