Related Experiment Video
Updated: Jun 21, 2026

Quantification of Atherosclerosis in Mice
Published on: June 12, 2019
Circulating Markers Reflect Both Anti- and Pro-Atherogenic Drug Effects in ApoE-Deficient Mice
Birong Liao1, Eileen McCall, Karen Cox
1Integrative Biology.
Abstract:
BACKGROUND: Current drug therapy of atherosclerosis is focused on treatment of major risk factors, e.g. hypercholesterolemia while in the future direct disease modification might provide additional benefits. However, development of medicines targeting vascular wall disease is complicated by the lack of reliable biomarkers. In this study, we took a novel approach to identify circulating biomarkers indicative of drug efficacy by reducing the complexity of the in vivo system to the level where neither disease progression nor drug treatment was associated with the changes in plasma cholesterol. RESULTS: ApoE-/- mice were treated with an ACE inhibitor ramipril and HMG-CoA reductase inhibitor simvastatin. Ramipril significantly reduced the size of atherosclerotic plaques in brachiocephalic arteries, however simvastatin paradoxically stimulated atherogenesis. Both effects occurred without changes in plasma cholesterol. Blood and vascular samples were obtained from the same animals. In the whole blood RNA samples, expression of MMP9, CD14 and IL-1RN reflected pro-and anti-atherogenic drug effects. In the plasma, several proteins, e.g. IL-1beta, IL-18 and MMP9 followed similar trends while protein readout was less sensitive than RNA analysis. CONCLUSION: In this study, we have identified inflammation-related whole blood RNA and plasma protein markers reflecting anti-atherogenic effects of ramipril and pro-atherogenic effects of simwastatin in a mouse model of atherosclerosis. This opens an opportunity for early, non-invasive detection of direct drug effects on atherosclerotic plaques in complex in vivo systems.
Insights
Researchers identified novel inflammation-related biomarkers in blood RNA and plasma. These markers detect drug effects on atherosclerosis, even without cholesterol changes, aiding early, non-invasive drug efficacy detection.
Area of Science:
- Biomarker discovery for cardiovascular diseases
- Pharmacodynamics of atherosclerosis treatments
- Molecular mechanisms of atherogenesis
Background:
- Current atherosclerosis drug therapy targets risk factors like hypercholesterolemia.
- Direct disease modification offers future therapeutic benefits.
- Lack of reliable biomarkers complicates the development of vascular wall-targeting drugs.
Purpose of the Study:
- To identify circulating biomarkers indicating drug efficacy in atherosclerosis.
- To explore biomarkers independent of plasma cholesterol changes.
- To investigate drug effects on vascular wall disease progression.
Main Methods:
- Utilized ApoE-/- mice treated with ramipril (ACE inhibitor) and simvastatin (HMG-CoA reductase inhibitor).
- Analyzed atherosclerotic plaque size in brachiocephalic arteries.
- Examined whole blood RNA expression (MMP9, CD14, IL-1RN) and plasma protein levels (IL-1beta, IL-18, MMP9).
Main Results:
- Ramipril reduced atherosclerotic plaque size; simvastatin paradoxically stimulated atherogenesis, independent of plasma cholesterol.
- Whole blood RNA expression of MMP9, CD14, and IL-1RN reflected drug effects on atherogenesis.
- Plasma protein analysis showed similar trends but was less sensitive than RNA analysis.
Conclusions:
- Identified inflammation-related whole blood RNA and plasma protein markers.
- These markers reflect anti-atherogenic (ramipril) and pro-atherogenic (simvastatin) effects.
- Enables early, non-invasive detection of direct drug effects on atherosclerotic plaques in vivo.
