Related Experiment Video
Updated: Jan 28, 2026

Author Spotlight: Investigating HR-Dependent Cardiac Function in Mouse Models Through a Novel Atrial-Pacing Approach
Published on: July 21, 2023
Activin type II receptor signaling in cardiac aging and heart failure
Jason D Roh1, Ryan Hobson1, Vinita Chaudhari1
1Corrigan Minehan Heart Center, Massachusetts General Hospital, Harvard Medical School, Boston, MA 02114, USA.
Abstract:
Activin type II receptor (ActRII) ligands have been implicated in muscle wasting in aging and disease. However, the role of these ligands and ActRII signaling in the heart remains unclear. Here, we investigated this catabolic pathway in human aging and heart failure (HF) using circulating follistatin-like 3 (FSTL3) as a potential indicator of systemic ActRII activity. FSTL3 is a downstream regulator of ActRII signaling, whose expression is up-regulated by the major ActRII ligands, activin A, circulating growth differentiation factor-8 (GDF8), and GDF11. In humans, we found that circulating FSTL3 increased with aging, frailty, and HF severity, correlating with an increase in circulating activins. In mice, increasing circulating activin A increased cardiac ActRII signaling and FSTL3 expression, as well as impaired cardiac function. Conversely, ActRII blockade with either clinical-stage inhibitors or genetic ablation reduced cardiac ActRII signaling while restoring or preserving cardiac function in multiple models of HF induced by aging, sarcomere mutation, or pressure overload. Using unbiased RNA sequencing, we show that activin A, GDF8, and GDF11 all induce a similar pathologic profile associated with up-regulation of the proteasome pathway in mammalian cardiomyocytes. The E3 ubiquitin ligase, Smurf1, was identified as a key downstream effector of activin-mediated ActRII signaling, which increased proteasome-dependent degradation of sarcoplasmic reticulum Ca2+ ATPase (SERCA2a), a critical determinant of cardiomyocyte function. Together, our findings suggest that increased activin/ActRII signaling links aging and HF pathobiology and that targeted inhibition of this catabolic pathway holds promise as a therapeutic strategy for multiple forms of HF.
Insights
Increased activin type II receptor (ActRII) signaling contributes to heart failure (HF) and aging. Blocking this pathway with inhibitors shows promise for treating HF by preserving cardiac function.
Area of Science:
- Cardiovascular Biology
- Molecular Medicine
- Aging Research
Background:
- Activin type II receptor (ActRII) ligands are linked to muscle wasting.
- The role of ActRII signaling in cardiac pathology, particularly in aging and heart failure (HF), is not well understood.
Purpose of the Study:
- To investigate the role of ActRII signaling in human aging and HF.
- To explore circulating follistatin-like 3 (FSTL3) as a biomarker for systemic ActRII activity.
- To assess the therapeutic potential of ActRII blockade in HF.
Main Methods:
- Measurement of circulating FSTL3 and activins in human aging and HF cohorts.
- Studies in mouse models involving administration of activin A and ActRII blockade (inhibitors and genetic ablation).
- RNA sequencing of cardiomyocytes to identify molecular pathways affected by ActRII ligands.
- Investigation of Smurf1 and SERCA2a in the context of ActRII signaling.
Main Results:
- Circulating FSTL3 levels correlated with aging, frailty, and HF severity, and increased with circulating activins.
- Elevated activin A in mice increased cardiac ActRII signaling, FSTL3 expression, and impaired cardiac function.
- ActRII blockade preserved or restored cardiac function in multiple HF models.
- Activin ligands induced a pathologic profile in cardiomyocytes, upregulating the proteasome pathway.
- Smurf1 mediated activin-induced proteasome-dependent degradation of SERCA2a.
Conclusions:
- Increased activin/ActRII signaling is a key factor linking aging and HF.
- Targeted inhibition of the ActRII pathway represents a promising therapeutic strategy for various forms of HF.
Related Concept Videos
Pathophysiology of Heart Failure
Heart Failure I: Introduction
Heart Failure II: Pathophysiology
Types of Receptors: Internal Receptors
Similar to membrane-bound receptors, the binding of a ligand to the intracellular receptor of causes a conformational change in the...
Heart Failure Drugs: Diuretics
Heart Failure V: Medical Management

