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June 24, 2026European Heart Journal2 citationsOpen Access

HS135, a novel activin and GDF trap, is highly efficacious in preclinical models of pulmonary hypertension and obesity-associated heart failure with preserved ejection fraction

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GSGauthier SchangMMM P M Poujol De MolliensEBE. Brûlé

Key Result

In preclinical models of pulmonary hypertension and HFpEF, HS135 improved right and left ventricular phenotypes, reduced inflammation, and increased lean mass compared to ActRIIA-Fc.

Key Points

  • To evaluate the efficacy of HS135, a novel ActRII-based fusion protein, in preclinical models of pulmonary hypertension (PH) and obesity-associated heart failure with preserved ejection fraction (HFpEF).
  • Assessed HS135 efficacy in rat MCT and mouse TAC models for PH.
  • Evaluated HS135 in murine High Fat Diet (HFD) and L-NAME model for obesity-associated HFpEF.
  • Utilized RNA sequencing and IHC to analyze heart and lung tissue changes post-treatment.
  • HS135 treatment nearly normalized gene expression profiles in right ventricles compared to naïve mice.
  • HS135 significantly improved inflammation markers and Activin/BMP signaling in lung tissues.
  • HS135 demonstrated enhanced lean mass and reduced fat mass in obesity models, indicating favorable metabolic effects.

Structured PICO

Does HS135 improve tissue remodeling and metabolic profiles in preclinical models of pulmonary hypertension and obesity-associated HFpEF compared to ActRIIA-Fc or empagliflozin?

P
Population
Preclinical study using rat monocrotaline, mouse transaortic constriction, and murine high fat diet/L-NAME models of pulmonary hypertension and HFpEF.
I
Intervention
HS135 (ActRII-based fusion protein) injected twice weekly for 3 to 4 weeks
C
Comparator
ActRIIA-Fc (in MCT and TAC models) or empagliflozin (in HFD/L-NAME model)
O
Outcome
Tissue remodeling in heart and lungs (assessed by IHC and RNA-seq), changes in body composition, and markers of adipositysurrogate

HS135 demonstrates superior efficacy to ActRIIA-Fc in preclinical models of pulmonary hypertension and obesity-associated HFpEF, improving cardiopulmonary remodeling and metabolic profiles.

Abstract

Abstract Introduction Activins and growth differentiation factors (GDFs) signal via the Activin Type II receptor (ActRII) and are genetically and clinically validated drivers of heart failure (HF), pulmonary hypertension (PH) and obesity. Despite initial clinical success in PH, current inhibitors of Activin mediated signalling (eg, sotatercept, an ActRIIA receptor ectodomain Fc-fusion protein) cannot be dosed to full biological activity. HS135 is a rationally designed ActRII-based fusion protein that acts as a ligand trap for pathological Activins and GDFs while sparing BMP-9 to treat PH and obesity-associated HF. We previously demonstrated that HS135 achieves best-in-class in vitro potency against Activin and GDF targets, which translated into full in vivo target engagement (not observed with ActRIIA-Fc). Here, the differentiated efficacy profile of HS135 was explored in preclinical models of PH and HF with preserved Ejection Fraction (HFpEF). Methods HS135 PH efficacy was assessed using the rat monocrotaline (MCT) and the mouse transaortic constriction (TAC) models, while the murine High Fat Diet (HFD) and L-NAME model was utilized to explore the potential of HS135 in obesity-associated HFpEF. In the MCT model, rats were injected twice weekly for four weeks with HS135 or ActRIIA-Fc starting the day following MCT induction. In the TAC model, mice were injected twice weekly for four weeks with HS135 or ActRIIA-Fc two weeks following surgical intervention to establish TAC. HFpEF was established by feeding mice HFD in combination with L-NAME supplied in drinking water ad libitum for 5 weeks before commencing twice weekly treatment with HS135 or empagliflozin for three weeks. In each case, tissue remodelling in the heart and lungs was assessed by IHC and RNA-seq. In addition, changes in body composition as well as markers of adiposity were evaluated. Results Right ventricles (RV) of MCT treated animals showed a distinct gene expression profile by RNAseq particularly related to pathways of inflammation and energy balance. This profile was only modestly improved by ActRIIA-Fc whereas RVs of HS135-treated animals were nearly indistinguishable by RNAseq from naïve mice. Similarly, in the lung, HS135 was more efficacious than ActRIIA-Fc at improving inflammation markers and rebalancing Activin and BMP signalling. In the TAC and HFD/L-NAME models, HS135 was efficacious at modulating the left ventricle phenotype. Across all models of PH and HF, HS135 led to profound increases in lean mass and a more metabolically favourable muscle gene expression profile. Furthermore, in the HFD / L-NAME model, HS135 was able to improve fat mass and markers of adiposity. Conclusion HS135 best-in-class target engagement profile uniquely improves PH, HF, and metabolism across in vivo models. Collectively, these data support the development of HS135 as a novel agent in cardiopulmonary and cardiometabolic disease, including PH and obesity-associated HF.

Expert Takes1 quote

“I am particularly encouraged by HS135's pronounced effect on protecting the right ventricle and improving metabolic dysfunction, both of which are established risk factors in cardiopulmonary disease”

Maureen O'Connor, Chief Scientific Officer, 35Pharma35Pharmaauto_pipelineSupportiveView source
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Cite This Study

Schang et al. (2023) studied Pulmonary hypertension and obesity-associated HFpEF. HS135 vs. ActRIIA-Fc or empagliflozin was evaluated on Tissue remodelling in heart and lungs, body composition, and markers of adiposity. In preclinical models of pulmonary hypertension and HFpEF, HS135 improved right and left ventricular phenotypes, reduced inflammation, and increased lean mass compared to ActRIIA-Fc.

synapsesocial.com/papers/6a3bf57b26afd49fccf5e179https://doi.org/10.1093/eurheartj/ehad655.3249
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