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May 20, 2026American Journal of Respiratory and Critical Care Medicine0 citations

B29-11 Mechanical Stretch and Iron Dysregulation in Asthmatic Human Airway Smooth Muscle

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DPD Pfeffer-KleemannNBN A BorkarMNM Koloko Ngassie

Key Points

  • This study investigates the impact of mechanical stretch on iron dysregulation in asthmatic airway smooth muscle cells.
  • Used human airway smooth muscle cells (hASMs) from asthmatic and healthy patients.
  • Cells were treated with mechanosensitive Piezo channel inhibitors or agonists before mechanical stretching.
  • Mechanical stretch was applied using a FlexCell System at 5% and 10% strain for 24 hours.
  • PZ inhibition decreased iron uptake in healthy airways, while activation increased uptake.
  • Asthmatic cells showed no increase in cysteine transporter expression under mechanical stretch, in contrast to healthy cells.
  • Ferritin expression increased in response to stretch in asthmatic cells but not in healthy cells.

Abstract

Abstract Rationale Bronchial airways are exposed to continual mechanical forces such as normal breathing, sighs, and clinically applied pressures such as CPAP that influence airway smooth muscle mechanics. Asthmatic airways experience exaggerated mechanical stress due to bronchoconstriction and airway wall thickening (remodeling) which contributes to lung injury. Mechanical stress is known to alter redox balance and ion channel signaling, yet its impact on iron homeostasis in asthmatic human airway smooth muscle cells (hASMs) remain unclear. Ferroptosis and iron dysregulation have emerged as significant factors in epithelial damage and airway inflammation in asthmatic models. In addition, recently discovered mechanosensitive Piezo (PZ) channels play a critical role in calcium influx upon mechanical stimulation and have been shown to contribute to iron dysregulation. In this study, we used hASMs to test the hypothesis that asthmatic patients experience iron dysregulation in the presence of mechanical stimulation. Methods hASMs and lung tissues from adult male and female patients with/without asthma were used (approved by Mayo IRB). Cells were pretreated with either PZ inhibitor GsMTx4 1 µM or PZ1 agonist Yoda1 10 µM 45 minutes before stretch. Cells were exposed to normal breathing stretch conditions on a FlexCell System at a 5% cyclic strain (15 cycles/minute) or 10% static stretch superimposed onto normal breathing for 24 hours. Cell lysates were examined for iron accumulation and antioxidant and lipid peroxidation markers (FTH1, TfR1, GPX4, and SLC7A11). Levels of intracellular ferrous iron (Fe2+) were determined using the fluorescent dye FerroOrange in non-stretched samples. Results In healthy airways PZ inhibition decreased iron uptake while activation increased intracellular iron uptake. In healthy airways, mechanical stretch upregulated SLC7A11 expression in a PZ1 independent manner, while mechanical stretch in asthmatic patients displayed no increase in the cysteine transporter. Transferrin levels remained unchanged under mechanical stimulation but displayed upregulation in asthmatic cells. In healthy cells, ferritin showed no changes in response to stretch, however, asthmatic cells showed lower baseline expression and increased its expression in response to stretch in a PZ1 independent manner. GPX4 showed no changes in expression between healthy and asthmatic groups or in response to stretch. Conclusions Our findings suggest that PZ and mechanical stretch play a role in iron regulation in hASMs. Additionally, iron regulation is impaired in asthmatic populations, suggesting a resultant increased iron import, decreased capacity to sequester iron, and decreased defensive cysteine import. This abstract is funded by: NIH R01HL171915 (CMP), R01HL056470 (YSP) 24POST1241979 (NAB)

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Cite This Study

Pfeffer-Kleemann et al. (2026) studied this question.

synapsesocial.com/papers/6a0d4f34f03e14405aa9a672https://doi.org/10.1093/ajrccm/aamag162.429
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