Related Experiment Video
Updated: Jan 26, 2026

Author Spotlight: Enhancing Graft Viability Assessment Through Quantitative Metrics and Innovative Reservoir Systems
Published on: August 2, 2024
Sacubitril/Valsartan Decreases Cardiac Fibrosis in Left Ventricle Pressure Overload by Restoring PKG Signaling in
Ryan M Burke1, Janet K Lighthouse1, Deanne M Mickelsen1
1Department of Medicine, Aab Cardiovascular Research Institute (R.M.B., J.K.L., D.M.M., E.M.S.), University of Rochester, NY.
Insights
Sacubitril/valsartan (SAC/VAL) directly inhibits cardiac fibroblast activation, reducing pathological cardiac fibrosis and improving function in heart failure models. This suggests SAC/VAL as a potential direct antifibrotic therapy.
Area of Science:
- Cardiovascular Research
- Fibrosis Mechanisms
- Pharmacology
Background:
- Heart failure (HF) is linked to cardiac fibrosis, increasing tissue rigidity and decreasing contractility.
- Current treatments to reverse fibrosis are limited.
- Neprilysin inhibition, as part of SAC/VAL, reduces hypertension and maladaptive cardiac remodeling.
Purpose of the Study:
- To investigate if sacubitril/valsartan (SAC/VAL) directly inhibits cardiac fibroblast activation and pathological fibrosis.
- To explore the antifibrotic effects of SAC/VAL in a mouse model and human cardiac fibroblasts.
Main Methods:
- Utilized a mouse model of left ventricle pressure overload.
- Conducted in vitro studies using primary mouse and human cardiac fibroblasts (CFs).
- Assessed the impact of SAC/VAL on CF activation, proliferation, and fibrosis development.
Main Results:
- SAC/VAL significantly reduced pressure overload-induced cardiac fibrosis.
- The treatment blocked cardiac fibroblast activation and proliferation, leading to functional improvement.
- SAC/VAL restored protein kinase G (PKG) signaling in CFs, inhibiting Rho activation and myofibroblast transition.
Conclusions:
- SAC/VAL directly targets cardiac fibroblasts to prevent maladaptive fibrosis and dysfunction.
- The findings support evaluating SAC/VAL as a direct antifibrotic agent for conditions like heart failure with preserved ejection fraction.
Abstract:
Background Heart failure (HF) is invariably accompanied by development of cardiac fibrosis, a form of scarring that increases muscular tissue rigidity and decreases cardiac contractility. Cardiac fibrosis arises from a pathological attempt to repair tissue damaged during maladaptive remodeling. Treatment options to block or reverse fibrosis have proven elusive. Neprilysin is an endopeptidase that degrades vasoactive peptides, including atrial natriuretic peptide. Thus, neprilysin inhibition reduces hypertension, ultimately limiting maladaptive cardiac remodeling. LCZ696, which consists of an angiotensin receptor blocker (valsartan [VAL]) and a neprilysin inhibitor (sacubitril [SAC]), was shown to be well tolerated and significantly reduced the risk of death and hospitalization in HF patients with reduced ejection fraction. We hypothesized that SAC/VAL directly inhibits fibroblast activation and development of pathological fibrosis. Methods and Results We used a mouse model of left ventricle pressure overload coupled to in vitro studies in primary mouse and human cardiac fibroblasts (CFs) to study the impact of SAC/VAL on CF activation and cardiac fibrosis. SAC/VAL significantly ameliorated pressure overload-induced cardiac fibrosis by blocking CF activation and proliferation, leading to functional improvement. Mechanistically, the beneficial impact of SAC/VAL at least partially stemmed from restoration of PKG (protein kinase G) signaling in HF patient-derived CF, which inhibited Rho activation associated with myofibroblast transition. Conclusions This study reveals that SAC/VAL acts directly on CF to prevent maladaptive cardiac fibrosis and dysfunction during pressure overload-induced hypertrophy and suggests that SAC/VAL should be evaluated as a direct antifibrotic therapeutic for conditions such as HF with preserved ejection fraction.
Related Concept Videos
Cardiac Catheterization III: Left Heart Catheterization
Cardiac Output II: Effect of Stroke Volume on Cardiac Output
Preload
Preload refers to the initial elongation of the cardiac myocytes before contraction and is related to the volume of blood filling the heart at the end of diastole, or end-diastolic volume. The...
Cardiac Output I:Effect of Heart Rate on Cardiac Output
Cardiac output (CO) refers to the total amount of blood ejected by one of the ventricles in liters per minute (L/min). In a resting adult, CO ranges from 5 to 6 L/min, adjusting according to the body's metabolic requirements.
Effect of Heart Rate on Cardiac Output
Cardiac output adapts to metabolic demands during stress, physical activity, or illness. The autonomic nervous system regulates heart rate via the sinoatrial node. The parasympathetic nervous system decreases heart...
Cardiac Cycle
During the cardiac cycle, blood flow through the heart is regulated entirely by changing pressure gradients. This sequence of events begins with the heart in a state of total relaxation, known as mid-to-late diastole, during which blood passively flows from...
The Cardiac Cycle
The Process
Electrical signals—sent from the sinoatrial (SA) node in the right atrial wall to the atrioventricular (AV) node between the right atrium and right ventricle—cause both atria to simultaneously contract. When the signal reaches the AV node, it pauses for approximately a tenth of a second, allowing the atria to contract and...
Exercise and Cardiac Output
Sustained exercise increases the muscles' oxygen demand, which can be...

