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Targeting macrophage necroptosis for therapeutic and diagnostic interventions in atherosclerosis
Denuja Karunakaran1, Michele Geoffrion1, Lihui Wei2
1University of Ottawa Heart Institute, Ottawa, Ontario K1Y4W7, Canada.
Abstract:
Atherosclerosis results from maladaptive inflammation driven primarily by macrophages, whose recruitment and proliferation drive plaque progression. In advanced plaques, macrophage death contributes centrally to the formation of plaque necrosis, which underlies the instability that promotes plaque rupture and myocardial infarction. Hence, targeting macrophage cell death pathways may offer promise for the stabilization of vulnerable plaques. Necroptosis is a recently discovered pathway of programmed cell necrosis regulated by RIP3 and MLKL kinases that, in contrast to apoptosis, induces a proinflammatory state. We show herein that necroptotic cell death is activated in human advanced atherosclerotic plaques and can be targeted in experimental atherosclerosis for both therapeutic and diagnostic interventions. In humans with unstable carotid atherosclerosis, expression of RIP3 and MLKL is increased, and MLKL phosphorylation, a key step in the commitment to necroptosis, is detected in advanced atheromas. Investigation of the molecular mechanisms underlying necroptosis showed that atherogenic forms of low-density lipoprotein increase RIP3 and MLKL transcription and phosphorylation-two critical steps in the execution of necroptosis. Using a radiotracer developed with the necroptosis inhibitor necrostatin-1 (Nec-1), we show that (123)I-Nec-1 localizes specifically to atherosclerotic plaques in Apoe (-/-) mice, and its uptake is tightly correlated to lesion areas by ex vivo nuclear imaging. Furthermore, treatment of Apoe (-/-) mice with established atherosclerosis with Nec-1 reduced lesion size and markers of plaque instability, including necrotic core formation. Collectively, our findings offer molecular insight into the mechanisms of macrophage cell death that drive necrotic core formation in atherosclerosis and suggest that this pathway can be used as both a diagnostic and therapeutic tool for the treatment of unstable atherosclerosis.
Insights
Targeting necroptosis, a programmed cell death pathway, in macrophages may stabilize vulnerable atherosclerotic plaques. This study shows necroptosis is active in human plaques and can be targeted for diagnosis and therapy.
Area of Science:
- Cardiovascular Biology
- Inflammation Research
- Molecular Medicine
Background:
- Atherosclerosis progression is driven by macrophage inflammation and death, leading to plaque necrosis and rupture.
- Macrophage cell death pathways, particularly necroptosis, are implicated in plaque instability.
- Necroptosis, regulated by RIP3 and MLKL kinases, promotes inflammation.
Purpose of the Study:
- To investigate the role of necroptosis in human atherosclerotic plaques.
- To explore necroptosis as a therapeutic target for atherosclerosis.
- To develop necroptosis-based diagnostic tools for unstable atherosclerosis.
Main Methods:
- Analysis of RIP3 and MLKL expression and MLKL phosphorylation in human carotid atherosclerosis samples.
- Investigating the effect of atherogenic lipoproteins on RIP3 and MLKL.
- Developing and utilizing a radiotracer ((123)I-Nec-1) for plaque imaging in Apoe (-/-) mice.
- Treating Apoe (-/-) mice with necrostatin-1 (Nec-1) to assess therapeutic effects.
Main Results:
- Increased RIP3 and MLKL expression and MLKL phosphorylation in human advanced atherosclerotic plaques.
- Atherogenic LDL increased RIP3 and MLKL transcription and phosphorylation.
- (123)I-Nec-1 specifically localized to atherosclerotic plaques in mice, correlating with lesion size.
- Nec-1 treatment reduced lesion size and plaque instability markers in mice.
Conclusions:
- Necroptotic cell death is activated in human atherosclerotic plaques and contributes to necrotic core formation.
- Targeting necroptosis offers a promising strategy for stabilizing vulnerable plaques.
- Necroptosis-based approaches hold potential for both diagnostic and therapeutic interventions in atherosclerosis.
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