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Biology subjects

Bossen, J. M.

Publications and source records attributed to Bossen, J. M..

3 recordsLinked to original sources

JAK/STAT Signaling Governs Airway Epithelial Homeostasis and Stress Resilience in Drosophila

Airway epithelia must maintain barrier integrity while continuously adapting to changing environmental conditions. This requires key signaling pathways in airway epithelia to operate within a tightly controlled functional range. Here, we show that airway epithelial homeostasis in Drosophila depends on balanced JAK/STAT signaling. Basal pathway activity is constitutively present in differentiated epithelial cells and is necessary for cell survival, epithelial integrity and stress resistance. In accordance with this role as a stress responsive regulator in epithelial biology, environmental stressors, including hypoxia, cigarette smoke, and cold exposure, induce JAK/STAT signaling. In contrast, sustained pathway activation is associated with airway remodeling characterized by epithelial thickening, luminal narrowing, and altered cellular organization. Transcriptomic analysis reveals that sustained activation is associated with a coordinated epithelial stress program integrating immune signaling, proteostasis, and metabolic adaptation. Cross-species comparisons with murine and human datasets suggest that key aspects of this response are conserved. Pharmacological inhibition demonstrates that remodeling depends on continued pathway activity and can be partially reversed in vivo. Together, our findings support a model in which airway epithelial homeostasis depends on maintaining JAK/STAT signaling within a defined functional range. This "Goldilocks" principle provides a conceptual framework for understanding how epithelial stress responses are balanced under physiological and pathological conditions. Graphical abstract

cell biology↗

Terminal tracheal cells of Drosophila are immune privileged to maintain their Foxo-dependent structural plasticity

Respiratory organs must balance their primary function of gas exchange with the constant threat of inhaled pathogens. In the Drosophila tracheal system, gas exchange occurs at the tracheal terminal cells (TTCs), the functional equivalents of mammalian alveoli. While bacterial infection triggers a robust innate immune response throughout the broader airway epithelium, we reveal that TTCs are uniquely exempt from this reaction. Mechanistically, TTCs lack expression of the membrane-associated peptidoglycan recognition receptor PGRP-LC. This absence protects these highly susceptible cells from Immune deficiency (Imd) pathway activation and subsequent JNK-mediated cell death, establishing TTCs as a distinct, immune-privileged niche. Ectopic immune activation via targeted PGRP-LCx overexpression in TTCs caused a severe reduction in branching, cellular damage, and ultimately cell death, phenotypes that were fully rescued by the depletion of AP-1 or foxo. Because both structural plasticity (in response to nutritional cues and hypoxia) and innate immune responses strictly require the transcription factor FoxO, we demonstrate that potent immune signaling is fundamentally incompatible with dynamic TTC remodeling. Ultimately, the immune-privileged status of TTCs represents an essential evolutionary trade-off, restricting local inflammation to preserve foxo-dependent structural plasticity and vital respiratory function.

immunology↗

FoxO factors are essential for maintaining organ homeostasis by acting as stress sensors in airway epithelial cells

Airway epithelia must maintain functional and structural homeostasis despite exposure to diverse environmental stressors. FoxO transcription factors are well suited to this task, acting as integration hubs that translate extrinsic and intrinsic signals into appropriate physiological responses. We show that FoxO factors in Drosophila, mouse, and human airway epithelial cells (AECs) undergo nuclear translocation in response to stressors including hypoxia, temperature, and oxidative stress. In human airway epithelial cell lines, individual hFOXO factors show distinct, cell-type-specific activation patterns. In Drosophila, hypoxia was the only stressor among those tested that triggered a dfoxo-dependent innate immune response. Because Drosophila possesses a single FoxO ortholog, loss-of-function analysis directly demonstrated that dfoxo is required for stress resistance in the airway epithelium. Reduced FoxO expression was similarly observed in mouse models of asthma and in airway samples from asthma patients, paralleling the increased stress sensitivity seen upon FoxO loss in flies. While our data do not establish that reduced FOXO levels cause asthma, they indicate that FoxO-dependent stress pathways are altered in diseased airways across species. Together, these findings support a model in which FoxO coordinates adaptive epithelial stress responses that maintain airway homeostasis under environmental challenge.

physiology↗