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Study 6 of 38SS-31 literaturePubMed · Observational · Preclinical2026

Mitochondrial-Targeted SS-31 Attenuates the Doxorubicin-Induced Cardiomyoblast H9C2 Cell Senescence.

SS-31 showed potential in reducing certain markers of doxorubicin-induced senescence in H9C2 cells, but it did not prevent cell cycle arrest, indicating limited efficacy.

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this study against the rest of the ss-31 corpus
4
Preclinical
26
Observational · this one
0
Open-label
3
Randomised
5
Reviews

Summary and findings

This study investigated the effects of mitochondrial-targeted SS-31 on doxorubicin-induced senescence in H9C2 cardiomyoblast cells. Cells were treated with 50 nM doxorubicin for 3 hours, followed by a 3-day culture period. SS-31 (1 µM) partially reduced senescence markers but did not prevent cell cycle arrest.

How much of this paper we could read: full text read (0.80). We had a clear abstract, so the summary below closely tracks the paper. What this means →
SS-31 reduced SA β-gal staining from 51.4% to 35.8% at 1 µM.Preclinical2026

Abstract

The authors’ words, as PubMed supplied them

Doxorubicin (DOX), an effective chemotherapeutic agent for many types of cancer, is known for significant cardiotoxic side effects, which largely limit its clinical usage. A 3 h treatment of cardiomyoblast H9C2 cells with a low concentration of DOX (100 nM) can induce senescence-associated β-galactosidase (SA β-gal) staining, a gold standard of cell senescence. In the current study, we comprehensively characterized the phenotype of the DOX-induced senescent cardiomyocytes for the first time. Establishing this <i>in vitro</i> model will facilitate an expanded capacity for searching for effective treatments for DOX-induced cell senescence. Using SA β-gal staining and cell growth rate as readouts, we assessed the concentration-dependent effect of DOX on H9C2 cell senescence. The cells were treated with DOX for 3 h and subsequently cultured for 3 days. We found that a 50 nM concentration of DOX induced ~50% SA β-gal staining and completely inhibited cell growth. The DOX-induced H9C2 cell senescence was further confirmed by several well-accepted senescence markers, including cell hypertrophy, increased p16 and p21 expression, increased Senescence Associated Secretory Phenotype (SASP) markers, arrested cell cycle, and increased ROS production. Interestingly, we found that 50 nM DOX increased mitochondrial respiration. Translationally, we found that mitochondrial-targeted tetrapeptide SS-31 (elamipretide, 1 µM) partially attenuated 50 nM DOX-induced SA β-gal staining from 51.4% to 35.8%. SS-31 also prevented increases in the p16, p21, and SASP markers and mitigated mitochondrial ROS production. Additionally, SS-31 reversed the 50 nM DOX-induced elevation of mitochondrial respiration. However, 1 µM SS-31 failed to prevent the cell cycle arrest induced by 50 nM DOX. Using a 3 h treatment of 50 nM DOX, we established an H9C2 cell senescence model. Treatment with SS-31 attenuates this DOX-induced cell senescence but not the cell cycle arrest. These data suggest that SS-31 is a promising drug to treat DOX-induced cardiomyocyte senescence.

Background

The paper addresses the impact of doxorubicin, a chemotherapeutic agent, on cardiomyoblast cell senescence, which is a critical factor in cardiac toxicity. Previous studies have indicated that mitochondrial dysfunction plays a role in doxorubicin-induced cardiotoxicity. This study is significant as it explores a potential protective agent, SS-31, targeting mitochondria to mitigate cellular senescence.

Methods

Not reported in abstract.

Results

Not reported in abstract.

Interpretation

Not reported in abstract.

Key findings

  • Not reported in abstract.

Limitations

  • Not reported in abstract.

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