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February 8, 20260 citationsOpen Access

Versatile hiPSC Models and Bioengineering Platforms for Investigation of Atrial Fibrosis and Fibrillation

BPBehnam PanahiSDSaif DababnehSFSaba Shokat Fadaei

Key Result

The review identifies that current atrial fibrillation models fail to replicate complex human atrial fibrosis and proposes a hiPSC-derived 3D bioengineered tissue roadmap to enable human-specific mechanistic studies and improved preclinical therapeutic testing.

Key Points

  • The aim is to explore the mechanisms of atrial fibrosis and its contribution to atrial fibrillation.
  • Utilized hiPSC (human induced pluripotent stem cell) models to analyze heart tissue interactions.
  • Examined the effects of activated fibroblasts on extracellular matrix disruption.
  • Investigated the relationship between AF and atrial fibrosis through bioengineering platforms.
  • Atrial fibrillation significantly correlates with increased fibrosis in heart tissue.
  • Fibrosis was shown to impair electrical conduction, enhancing AF maintenance.
  • Activated fibroblasts contribute to the formation of fibrotic areas, disrupting normal heart function.

Structured PICO

P
Population
human-induced pluripotent stem cell (hiPSC)-derived atrial cardiomyocytes and fibroblasts

Bioengineered 3D hiPSC models address the limitations of current animal and 2D models, enabling mechanistic studies of atrial fibrosis and patient-specific drug testing for atrial fibrillation.

Limitations

  • This article is a review and does not report original clinical trial data.
  • Current AF models including animal and 2D cell cultures have significant limitations in replicating human atrial fibrosis complexity.
  • There is a lack of long-term viable human atrial tissue models for functional studies.
  • Clinical imaging modalities such as LGE-MRI have limited accuracy in detecting atrial fibrosis for guiding therapy.
  • Current therapies largely address arrhythmia but do not target underlying atrial fibrosis leading to suboptimal long-term outcomes.

Abstract

Atrial fibrillation (AF) is the most common sustained heart rhythm disorder. It is estimated that AF affects over 52 million people worldwide, with its prevalence expected to double in the next four decades. AF significantly increases the risk of stroke and heart failure, contributing to 340,000 excess deaths annually. Beyond these life-threatening complications, AF results in limitations in physical, emotional, and social well-being causing significant reductions in quality of life and resulting in 8.4 million disability-adjusted life-years per year, highlighting the wide-ranging impact of AF on public health. Moreover, AF is increasingly recognized for its association with cognitive decline and dementia. AF is a chronic and progressive disease characterized by rapid and erratic electrical activity in the atria, often in association with structural changes in the heart tissue. AF is often initiated by triggered activity, often from ectopic foci in the pulmonary veins. These triggered impulses may initiate AF via: (1) sustained rapid firing with secondary disorganization into fibrillatory waves, or (2) by triggering micro re-entrant circuits around the pulmonary venous-LA junction and within the atrial body. In each instance, AF perpetuation necessitates the presence of a vulnerable atrial substrate, which perpetuates and stabilizes re-entrant circuits through a combination of slowed and heterogeneous conduction, as well as functional conduction abnormalities (e.g., fibrosis disrupting tissue integrity, and abnormalities in the intercalated disks disrupting effective cell-to-cell coupling). The re-entry wavelength, determined by conduction velocity and refractory period, is shortened by slowed conduction, favoring AF maintenance. One major factor contributing to these changes is the disruption of the extracellular matrix (ECM), which is induced by atrial fibrosis. Fibrosis-driven disruption of the ECM, especially in the heart and blood vessels, is commonly caused by conditions such as aging, hypertension, diabetes, smoking, and chronic inflammatory or autoimmune diseases. These factors lead to excessive collagen and protein deposition by activated fibroblasts (i.e., myofibroblasts), resulting in increased tissue stiffness, maladaptive remodeling, and impaired organ function. Fibrosis typically occurs when cardiac fibroblasts are activated to myofibroblasts, resulting in the deposition of excessive collagen and other proteins. This change in ECM interferes with the normal electrical function of the heart by creating irregular, fibrotic regions. AF and atrial fibrosis have a reciprocal relationship: AF promotes fibrosis through fibroblast activation and extracellular matrix buildup, while atrial fibrosis can sustain and perpetuate AF, contributing to higher rates of AF recurrence after treatments such as catheter ablation or cardioversion.

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Cite This Study

Panahi et al. (2026) conducted a review in Patients with atrial fibrillation (AF) including diverse phenotypes with atrial fibrosis and associated risk factors. The review identifies that current atrial fibrillation models fail to replicate complex human atrial fibrosis and proposes a hiPSC-derived 3D bioengineered tissue roadmap to enable human-specific mechanistic studies and improved preclinical therapeutic testing.

synapsesocial.com/papers/698829410fc35cd7a8849633https://doi.org/10.14288/1.0451427
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