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Mitochondrial metabolic dysfunction in airway epithelial cells promotes goblet cell metaplasia and more severe asthma
Xiuxia Zhou, Krithika S. Rao, Sruti Shiva, Catharina van Heusden, Qi Wei, Nobuhiko Fukuda, Mayoko Tsuji, Angelina Kendi, Laura R. Bradley, Jinming Zhao, John B. Trudeau, Anuradha Ray, Richard C. Boucher, Sally E. Wenzel
Xiuxia Zhou, Krithika S. Rao, Sruti Shiva, Catharina van Heusden, Qi Wei, Nobuhiko Fukuda, Mayoko Tsuji, Angelina Kendi, Laura R. Bradley, Jinming Zhao, John B. Trudeau, Anuradha Ray, Richard C. Boucher, Sally E. Wenzel
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Research In-Press Preview Inflammation Metabolism

Mitochondrial metabolic dysfunction in airway epithelial cells promotes goblet cell metaplasia and more severe asthma

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Abstract

Type 2 (T2) inflammation is a defining feature of asthma and associated with epithelial dysfunction, including goblet cell metaplasia and ciliary loss. Here, we investigated whether T2 inflammation and associated 15 lipoxygenase-1 (15LO1) activity alters mitochondrial metabolism in airway epithelial cells (AECs) and contributes to disease pathophysiology. Freshly isolated AECs from T2-high asthmatic participants exhibited increased oxygen consumption rates (OCR), including elevated basal respiration and proton leak, alongside reduced coupling efficiency compared to T2-low participants. These functional changes were accompanied by increased expression of electron transport chain (ETC) proteins, worse lung function and epithelial phenotypic changes. In vitro, IL-13 stimulation of differentiated AECs recapitulated these findings, inducing higher OCR, increased ETC protein levels, and enhanced proton leak while paradoxically reducing intracellular ATP. These metabolic alterations are associated with increased uncoupling protein 2 (UCP2) expression and goblet cell differentiation. Mechanistically, 15LO1 emerged as a key regulator, as ALOX15 knockdown or pharmacologic inhibition reduced OCR parameters, ETC protein expression, UCP2, and goblet cell markers, without effect on ATP levels, suggesting additional regulatory mechanisms. Collectively, these findings identify a metabolic axis linking T2 inflammation, mitochondrial dysfunction, and airway epithelial metabolism, while highlighting 15LO1-driven mitochondrial uncoupling as a potential therapeutic target in asthma.

Authors

Xiuxia Zhou, Krithika S. Rao, Sruti Shiva, Catharina van Heusden, Qi Wei, Nobuhiko Fukuda, Mayoko Tsuji, Angelina Kendi, Laura R. Bradley, Jinming Zhao, John B. Trudeau, Anuradha Ray, Richard C. Boucher, Sally E. Wenzel

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ISSN: 0021-9738 (print), 1558-8238 (online)

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