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March 14, 2026Cells0 citationsOpen Access

Differential Cytokine and DNA Damage Response of Human Lung Tissue Models to Broad-Beam and Microbeam Radiotherapy

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AČAleksandra ČolićMFMarina Santiago FrancoNSNarayani Subramanian

Key Points

  • The aim is to explore the responses of human lung tissue to different types of radiotherapy and identify damage repair mechanisms.
  • Utilized three-dimensional EpiAlveolar™ models of ex vivo human lung tissue.
  • Irradiated models with broad-beam and microbeam radiation therapy using specific dose metrics.
  • Measured cytokine levels and DNA damage responses at 21 days post irradiation.
  • Lung tissue tolerated peak doses of 36 Gy from MRT-EUD without significant damage.
  • Detected significant repair of DNA double-strand break damage in MRT-EUD regions after 21 days.
  • Persistent unresolved DNA double-strand breaks found in MRT-valley-irradiated models.
  • Increased levels of IL6 cytokine observed in both BB and MRT-EUD models.
  • Fibrotic collagen deposition noted in one model from BB-irradiated tissue.

Abstract

Radiotherapy (RT) is a standard treatment for lung cancer; however, radiation-induced toxicities such as pneumonitis and fibrosis limit dose escalation and tumor control. Therefore, improved RT approaches are needed. This study investigated the radiation response of human ex vivo normal lung tissue using the three-dimensional EpiAlveolar™ model. Tissue models were irradiated with broad-beam (BB) and two spatially fractionated microbeam radiation therapy (MRT) dose metrics: equivalent uniform dose (MRT-EUD) and valley dose (MRT-valley). Our findings show that ex vivo lung tissue is able to tolerate peak doses of 36 Gy following MRT-EUD. On day 21, models effectively repaired significant DNA double-strand break (DSB) damage seen in the MRT-EUD-irradiated peak regions. In contrast, persistent unresolved DSBs were detected in MRT-valley-irradiated models 21 days post irradiation. Prolonged culture time resulted in cell loss and a reduction in epithelial cell layers. A significant upregulation of the pro-inflammatory cytokine IL6 was observed in both BB and MRT-EUD groups at 21 days. Fibrotic collagen deposition was detected in one BB-irradiated model but was absent in remaining BB- and MRT-treated tissues. Further investigation is required to clarify the potential and suitability of EpiAlveolar™ models for studying radiation-induced lung injury.

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Cite This Study

Čolić et al. (2026) studied this question.

synapsesocial.com/papers/69b4fbb1b39f7826a300c01dhttps://doi.org/10.3390/cells15060500
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