mTORC1 as a Therapeutic Target to Mitigate Development of Airway Stenosis in Response to Injury

ABSTRACT Objectives Airway stenosis is a morbid health condition impacting the voice, breathing, and swallowing. Etiology involves endotracheal intubation or other mechanical injury, but the underlying molecular mechanisms are not fully understood. Emerging evidence suggests a role for mTOR complex 1 (mTORC1) in the pathogenesis of laryngotracheal stenosis (LTS) and that rapamycin, an mTOR inhibitor, can mitigate development of LTS. In the present study, mTORC1 was targeted genetically and pharmacologically in an injury‐induced tracheal stenosis mouse model. Methods Human tracheal tissues were immunostained for phosphorylated ribosomal protein S6 kinase (pS6K), a downstream target of mTORC1 kinase activity, to assess mTORC1 activation. mTORC1 was genetically ablated in tracheal mesenchyme of doxycycline‐inducible Rptor knockout mice (Tbx4‐rtTA/Tet‐On‐Cre/Rptor fl/fl ) and compared to wildtype controls, both subjected to tracheal injury. On Day 21 post injury, tracheas were harvested and tracheal lamina propria thickness (LPT) was measured. Pharmacological ablation was performed with early (Day 0–7 post injury) and late (Day 8–21 post injury) systemic rapamycin treatment. Results Tracheal injury increased LPT compared to sham control. This effect was eliminated by genetic ablation of mTORC1, with mutant mice having no change in LPT compared to mutant sham control and significantly lower LPT than injured wildtype littermate controls. Early rapamycin significantly reduced the expected increase in injured tracheal LPT compared to early vehicle control, while late rapamycin had no effect compared to late vehicle control. Conclusion These results indicate that mTORC1 activity within tracheal mesenchyme is required for tracheal stenosis formation following injury and is an important therapeutic target. Level of Evidence N/A.

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Publication Details

Journal
The Laryngoscope
Published
2026-10-06
DOI
https://doi.org/10.1002/lary.70958
Primary Topic
Tracheal and airway disorders
Type
article
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article

mTORC1 as a Therapeutic Target to Mitigate Development of Airway Stenosis in Response to Injury

Laura Perin, Christian J. Hochstim, Beth Osterbauer, Charmi Dedhia et al.
The Laryngoscope
Tracheal and airway disorders
article

mTORC1 as a Therapeutic Target to Mitigate Development of Airway Stenosis in Response to Injury

Laura Perin, Christian J. Hochstim, Beth Osterbauer, Charmi Dedhia, Elizabeth P. Henske, Julia Hermann, Wei Shi
article en

Abstract

ABSTRACT Objectives Airway stenosis is a morbid health condition impacting the voice, breathing, and swallowing. Etiology involves endotracheal intubation or other mechanical injury, but the underlying molecular mechanisms are not fully understood. Emerging evidence suggests a role for mTOR complex 1 (mTORC1) in the pathogenesis of laryngotracheal stenosis (LTS) and that rapamycin, an mTOR inhibitor, can mitigate development of LTS. In the present study, mTORC1 was targeted genetically and pharmacologically in an injury‐induced tracheal stenosis mouse model. Methods Human tracheal tissues were immunostained for phosphorylated ribosomal protein S6 kinase (pS6K), a downstream target of mTORC1 kinase activity, to assess mTORC1 activation. mTORC1 was genetically ablated in tracheal mesenchyme of doxycycline‐inducible Rptor knockout mice (Tbx4‐rtTA/Tet‐On‐Cre/Rptor fl/fl ) and compared to wildtype controls, both subjected to tracheal injury. On Day 21 post injury, tracheas were harvested and tracheal lamina propria thickness (LPT) was measured. Pharmacological ablation was performed with early (Day 0–7 post injury) and late (Day 8–21 post injury) systemic rapamycin treatment. Results Tracheal injury increased LPT compared to sham control. This effect was eliminated by genetic ablation of mTORC1, with mutant mice having no change in LPT compared to mutant sham control and significantly lower LPT than injured wildtype littermate controls. Early rapamycin significantly reduced the expected increase in injured tracheal LPT compared to early vehicle control, while late rapamycin had no effect compared to late vehicle control. Conclusion These results indicate that mTORC1 activity within tracheal mesenchyme is required for tracheal stenosis formation following injury and is an important therapeutic target. Level of Evidence N/A.

The Laryngoscope
University of Southern California (US), Brigham and Women's Hospital (US), Children's Hospital of Los Angeles (US), Keck Hospital of USC (US), University of Cincinnati (US)
Openalex Percentile: Top 12%
Tracheal and airway disorders
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