Key Takeaways & Executive Findings
- •• Fndc5 modification enhances MSC retention, proliferation, and migration in sepsis-induced ALI models. • MSCs-Fndc5 treatment attenuates lung inflammation, edema, fibrosis, and preserves vascular integrity in vivo. • In vitro, Fndc5 modification mitigates LPS-induced endothelial injury via PI3K/AKT pathway activation. • This study provides a novel genetic modification strategy to optimize MSC-based therapy for ARDS.
Abstract
Background Acute lung injury/Acute respiratory distress syndrome (ALI/ARDS) is a life-threatening inflammatory lung disorder characterized by high mortality rates and a lack of effective treatment options. Although mesenchymal stem cell (MSC)-based therapies have emerged as a promising approach for ARDS management, optimizing their therapeutic efficacy remains a significant challenge. Recent advances in gene modification techniques have opened new avenues for enhancing MSC functionality. Among these, Fibronectin type III domain-containing protein 5 (Fndc5)/irisin has attracted considerable attention due to its ability to improve endothelial function. This study aims to evaluate the therapeutic potential of Fndc5-modified MSCs in sepsis-induced ALI/ARDS and to elucidate the underlying molecular mechanisms driving their protective effects. Methods To comprehensively evaluate the therapeutic potential of Fndc5-modified MSCs (MSCs-Fndc5) in ARDS, we employed both in vivo and in vitro experimental models. In vivo, a mouse model of sepsis-induced ALI was established through intraperitoneal injection of lipopolysaccharide (LPS), and the protective effects of MSCs-Fndc5 were systematically assessed by analyzing lung histopathology, inflammatory cytokine levels, vascular endothelial integrity, lung wet-to-dry weight ratio, and MSC retention in lung tissue. In parallel, in vitro studies were conducted to investigate the role of MSCs-Fndc5 in mitigating LPS-induced endothelial cell (EC) injury, with a focus on EC proliferation, angiogenesis, barrier permeability, apoptosis, and the regulation of key signaling pathways. Results Fndc5 modification significantly increased the retention rate of MSCs in sepsis-induced ALI murine model while augmenting their in vitro proliferation and migration potential. In vivo, treatment with Fndc5-modified MSCs markedly attenuated lung inflammation, as evidenced by reduced levels of pro-inflammatory cytokines, decreased neutrophil infiltration, and improved lung histopathology. Additionally, MSCs-Fndc5 alleviated pulmonary edema, reduced fibrosis, lowered the lung wet-to-dry weight ratio, and preserved vascular endothelial integrity. In vitro, Fndc5 modification optimizes the therapeutic effect of rat MSCs on sepsis-induced ALI/ARDS via activating the PI3K/AKT signaling pathway.
1. Introduction
Acute Respiratory Distress Syndrome (ARDS) is a critical condition characterized by rapid, widespread lung inflammation, leading to severe respiratory failure [1], whereas acute lung injury (ALI) was previously used to describe a milder form of this condition prior to the 2012 Berlin definition reclassification [2]. ARDS, a heterogeneous syndrome with various underlying pathologies, is most commonly a complication of pneumonia or sepsis [3]. This syndrome poses a significant challenge to healthcare systems due to its high mortality rates and the limited therapeutic options beyond supportive care [4]. Despite significant advancements in supportive care, effective therapeutic options for ARDS remain scarce, highlighting the urgent need for innovative treatments [5]. Mesenchymal stromal cells (MSCs) have emerged as a promising therapeutic option for ARDS, owing to their immunomodulatory, anti-inflammatory, and tissue regenerative properties [6–9].
MSC therapy has shown potential in preclinical models and early-phase clinical trials for ARDS, but challenges such as inconsistent outcomes and suboptimal efficacy limit its widespread application [10, 11]. This variability is believed to stem from the complex interplay of factors, including the severity of lung injury, the timing of MSC administration, and the patient’s immunological state [12]. Certain published studies indicate that the documented survival rates of transplanted cells are exceedingly minimal, thereby rendering the entire endeavor of cellular therapy ineffective [13]. Therefore, enhancing the in vivo survival of MSCs represents a pivotal challenge in advancing cellular therapy. Recent studies suggest that enhancing the therapeutic capabilities of MSCs through genetic modification may improve their effectiveness.
Fibronectin type III domain containing 5 (Fndc5), the precursor to the exercise-induced myokine irisin, is recognized for its role in improving endothelial function and has attracted considerable attention as a potential candidate for MSC modification. This study aims to evaluate the therapeutic potential of Fndc5-modified MSCs in sepsis-induced ALI/ARDS and to elucidate the underlying molecular mechanisms driving their protective effects.
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Yuling Luo, Minhua Li, Shan Lin, Zheng Gong, Sumei Wang, Ziqing Zhou, Shiyue Li (2026). Fndc5 modification optimizes the therapeutic effect of rat MSCs on sepsis-induced ALI/ARDS via activating the PI3K/AKT signaling pathway. Stem Cell Research & Therapy. https://doi.org/10.1186/s13287-026-04903-y
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Frequently Asked Questions
What is the role of Fndc5 in mesenchymal stem cell therapy for ARDS?
Fndc5 modification enhances the therapeutic efficacy of MSCs by increasing their retention, proliferation, and migration, and by activating the PI3K/AKT signaling pathway, which mitigates endothelial injury and inflammation in sepsis-induced ALI/ARDS.
How does Fndc5-modified MSC treatment improve lung injury in sepsis-induced ARDS?
In vivo, MSCs-Fndc5 treatment attenuates lung inflammation, reduces pulmonary edema and fibrosis, lowers the lung wet-to-dry weight ratio, and preserves vascular endothelial integrity, leading to improved lung histopathology.
What are the key molecular mechanisms underlying the protective effects of Fndc5-modified MSCs?
The protective effects are mediated through the activation of the PI3K/AKT signaling pathway, which promotes endothelial cell proliferation, angiogenesis, and barrier function while reducing apoptosis and permeability.
What is the significance of this study for ARDS treatment?
This study provides a novel genetic modification strategy to optimize MSC-based therapy for ARDS, potentially improving clinical outcomes by enhancing MSC survival and therapeutic efficacy.
What experimental models were used in this study?
The study employed both in vivo (mouse model of sepsis-induced ALI via LPS injection) and in vitro (LPS-induced endothelial cell injury) models to comprehensively evaluate the therapeutic potential of MSCs-Fndc5.
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