Mode
Text Size
Log in / Sign up

Disulfidptosis may drive cardiomyocyte injury and cytoskeletal collapse under conditions of disulfide stressNew research explores a specific cell death path in heart failure

AI-generated summary of the cited source, checked by automated accuracy review. How we work

Key Takeaway
Note that disulfidptosis may drive cardiomyocyte injury, but direct evidence in failing myocardium is currently limited.

This narrative review examines the mechanism of disulfidptosis, a form of cell death triggered by disulfide stress, and its potential role in heart failure. The review focuses on how specific metabolic conditions, such as glucose restriction, can lead to insufficient NADPH production and subsequent cytoskeletal collapse.

Key findings indicate that in tumor cell models, high SLC7A11 expression under glucose-restricted conditions may lead to impaired pentose phosphate pathway activity. This results in disulfide stress, aberrant disulfide cross-linking of filamentous actin (F-actin), and cell death. These mechanisms are hypothesized to contribute to cardiomyocyte injury and ventricular remodeling.

A primary limitation noted by the authors is the lack of direct experimental evidence demonstrating disulfidptosis specifically within cardiomyocytes or the failing myocardium. While transcriptomic associations exist, they do not currently constitute evidence of a defined cell-death program. Clinical application is currently limited by these foundational research gaps.

How this fits prior evidence

This narrative review addresses a gap in the understanding of cellular death mechanisms in heart failure. While prior coverage has focused on clinical management strategies, such as semaglutide for HFpEF and obesity or conduction system pacing to reduce hospitalization, this review explores the underlying molecular mechanisms of cardiomyocyte injury. It does not directly relate to the findings on culturally tailored meal programs, Tai Chi, or sarcopenia markers.

When the heart fails, the muscle cells often suffer severe damage. Researchers are currently investigating a specific type of cell death called disulfidptosis. This process happens when cells experience extreme stress and can no longer maintain their internal balance, leading to a collapse of their internal structure.

In laboratory models, researchers found that when certain cells face a lack of glucose, they may struggle to produce the necessary components to stay healthy. This leads to a buildup of disulfide stress, which causes the cell's internal framework to break down and the cell to die. This mechanism has been observed in specific cell models under these stressful conditions.

While these findings are important for understanding the biology of heart failure, there is a major catch. Currently, there is very little direct evidence showing that this specific death process happens in actual human heart tissue or in patients with heart failure. Most of what we know comes from laboratory models, so more research is needed to see how this applies to real patients.

What this means for you:
Disulfidptosis is a potential pathway for heart cell death, but more research is needed in human patients.

Common questions

What is disulfidptosis?

Disulfidptosis is a type of cell death that happens when cells experience disulfide stress. In these cases, the cell's internal structure, like its cytoskeleton, collapses. This can happen in certain cell models when they are under stress and cannot produce enough of the molecules they need to stay healthy.

Is this a proven cause of heart failure in humans?

Not yet. While researchers have seen this process happen in laboratory cell models, there is currently limited direct experimental evidence showing that disulfidptosis happens in actual human heart tissue or in the hearts of people suffering from heart failure.

Study Details

Study typeSystematic review
EvidenceLevel 1
PublishedSep 2026
View Original Abstract ↓
Heart failure (HF) is a major cardiovascular syndrome with increasing global incidence and mortality rates. Cardiomyocyte injury and ventricular remodeling are central pathological processes driving HF progression. Although several forms of regulated cell death have been implicated in HF, the mechanisms underlying cardiomyocyte injury remain poorly understood. Disulfidptosis, proposed in 2023, is a metabolism-related form of regulated cell death triggered by the depletion of the cellular reducing capacity. Evidence from tumor cell models indicates that under glucose-restricted conditions, cells with high SLC7A11 expression may exhibit insufficient NADPH production due to impaired pentose phosphate pathway (PPP) activity, resulting in disulfide stress, aberrant disulfide cross-linking of filamentous actin (F-actin), cytoskeletal collapse, and cell death. During HF progression, cardiomyocytes commonly undergo glucose metabolic remodeling, redox imbalance, and cytoskeletal abnormalities, which may create a permissive context for disulfidptosis-like injuries. However, direct experimental evidence demonstrating disulfidptosis in cardiomyocytes or the failing myocardium remains limited. Rather than treating transcriptomic associations as evidence of a defined cell-death programme, this review integrates HF-associated metabolic remodelling, impaired redox buffering, and cytoskeletal vulnerability within a testable mechanistic framework. It further defines a staged validation strategy for determining whether disulfidptosis occurs in cardiomyocytes or other myocardial cell populations.
Free Newsletter

Clinical research that matters. Delivered to your inbox.

Join thousands of clinicians and researchers. No spam, unsubscribe anytime.