Idiopathic pulmonary fibrosis (IPF) is a fatal interstitial lung disease characterized by progressive scarring and respiratory failure. While T cells are elevated in IPF lungs, their contributions to fibrosis beyond inflammation remain poorly understood. Here, we performed multiplex imaging and single-cell RNA and protein profiling on about 90,000 CD3+ T cells from control and fibrotic lungs, revealing 11 distinct subsets of CD4+ and CD8+ T cells, including a rare CD56+ regulatory T cell. In addition to increased T cell numbers in severely fibrotic lungs compared with non-diseased controls, we observed CD4+ and CD8+ T cells localized near epithelial cells and in niches of abnormal epithelium. CXCR4/MIF signaling emerged as a central axis mediating T cell–epithelial interactions, while epidermal growth factor receptor (EGFR) and TGF-β pathways dominated in multiple T cell subsets. Our findings support the concept that T cells in IPF adopt nonclassical activation patterns that are driven by epithelial interactions within the fibrotic microenvironment. These studies provide a foundation for exploring alternative therapeutic strategies in IPF lungs by modulating T cell behavior and communication networks.
Ana P.M. Serezani, Julia M.R. Bazzano, Bruno D. Pascoalino, Ludmilla da Silva, Abigail J. Dietrich, Chase J. Taylor, Taylor Sherrill, Annika Vannan, Carla L. Calvi, Paula I. Gonzalez-Ericsson, Erin M. Wilfong, Matthew Bacchetta, Ciara M. Shaver, Lorraine B. Ware, Margaret L. Salisbury, Luc Van Kaer, Nicholas E. Banovich, Jonathan A. Kropski, Timothy S. Blackwell
The cholinergic antiinflammatory pathway attenuates lung inflammation via the α7 nicotinic acetylcholine receptor (α7 nAChR) on immune cells. However, the role of α7 nAChR on lung megakaryocytes (Mks) in allergic airway inflammation remains unknown. In this study, allergen-challenged mouse models were used with conditional Mk-specific Chrna7 knockout, pharmacological activation (GTS-21), and Mk reconstitution. IL-33 expression and p38 MAPK signaling were assessed. We found that allergen challenge upregulated α7 nAChR specifically in lung Mks. Mk-specific Chrna7 deletion significantly alleviated allergic airway inflammation, whereas GTS-21 exacerbated inflammation via an Mk-dependent mechanism. Reconstitution with α7 nAChR+ Mks restored airway inflammatory responses. Mechanistically, α7 nAChR activation promoted Mk IL-33 synthesis and secretion through p38 MAPK signaling. Taken together, our results show that α7 nAChR on lung Mks plays a proinflammatory role in allergic airway inflammation, challenging its classical antiinflammatory paradigm and revealing pathogenic mechanisms.
Hang Wu, Rujia Tao, Shitao Xie, Yao Zhou, Jin-Fu Xu, Zhenwei Xia, Xiao Su
Lori Asarian, Jianlong Jia, Dmytro Sirokha, Lara Paulini, Daniela Dietel, Mircea Gabriel Stoleriu, Marion Frankenberger, Ali Önder Yildirim, Katharina S. Götze, Juergen Behr, Gary M. Hunninghake, Isis E. Fernandez
Allen Duong, Sajad Moshkelgosha, Tereza Martinu, Stephen Juvet
Kadambari Vijaykumar, Liang Ma, Kevin Chen, Liping Tang, Nikoleta Pavelkova, Elex Harris, Kajal Jadhav, Qian Li, Mohamed Hanafy, Hinnerk Schulz-Hildebrandt, Guillermo J. Tearney, Finn Hawkins, Darrell N. Kotton, Steven M. Rowe
CFTR in the lung epithelium contributes to the secretion of a surface liquid layer that is essential to lung homeostasis and defense. The understanding of how liquid is secreted in the lung is derived largely from studies of the airway epithelium. Comparatively little is known about liquid secretion mechanisms in the alveolar epithelium, including its cellular source. To define which cell type drives alveolar liquid secretion, we generated transgenic mice that expressed a Cftr null allele in alveolar type 1 (AT1) cells, type 2 (AT2) cells, or both, then viewed liquid secretion in live alveoli using confocal microscopy of isolated, perfused lungs. Our findings show liquid secretion was blocked in alveoli of all three transgenic mice, indicating that both AT1 and AT2 cells contribute to alveolar liquid secretion. Cftr null expression in AT1 cells also blocked the secretion-mediated clearance of small particle and bacterial clusters from alveolar walls, indicating that AT1 cell CFTR contributes to alveolar defense. Together, these findings show alveolar liquid secretion depends on both AT1 and AT2 cell CFTR, and that CFTR in AT1 cells – a cell type not traditionally considered in liquid secretion mechanisms or CFTR-related lung diseases – contributes to lung liquid dynamics and host defense.
Sayahi Suthakaran, Sonya Homami, Deebly Chavez, Stephanie Tang, Sarah K.L. Moore, Chaya Sussman, Jimmy Zhang, Clemente J. Britto, Alice Prince, Alison J. May, Jaymin J. Kathiriya, Jaime L. Hook
The mechanisms by which e-cigarette vaping (EV) affects lung health remain unclear. Clinical data from clusters of EV-associated lung injury indicate that EV damages distal lung parenchyma and increases vulnerability to second-hit injury, including respiratory viral infections. Using human lung endothelial and epithelial cells and precision-cut lung slices, we investigated the mechanisms underlying distal lung cell injury and repair triggered by brief (24-hour) EV exposure. Using RNA sequencing of lung tissue from Golden Syrian hamsters, we evaluated the persistence of lung stress responses (10 days after 5 days of EV exposure and determined the impact of EV on host defense against influenza A virus (IAV) and severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) infections. EV disrupted the barrier function of human distal lung cells through JNK stress-response signaling, triggered autophagy with impaired autophagolysosomal degradation, suppressed mTOR signaling and cell proliferation, and culminated in apoptosis. Analysis of transcriptional responses in EV-exposed hamster lungs revealed persistent activation of pathways involving JNK signaling, autophagy, barrier dysfunction, tissue remodeling, and impaired Th1 immunity. EV pre-exposure increased the viral burden of SARS-CoV-2, downregulated antiviral genes (Ifit1, Isg15, Nfkbia), and altered Stat1 and Irf7 immune signaling, while amplifying oxidative stress and IL-12 signaling. These findings show that short-term EV exposure triggered stress-induced distal lung cell injury with persistent changes in antiviral immunity and molecular pathways associated with tissue remodeling. When sustained, as with habitual EV use, these alterations may increase susceptibility to respiratory viral infections and contribute to the development of chronic lung disease.
Tanner C. Rivera, Kelly S. Schweitzer, Christina F. Cornell, Jordan M. Nall, Nicholas Egersdorf, Courtney Moeder, Riley A. Cooney, Eszter K. Vladar, Steve D. Groshong, Gregory P. Downey, James P. Bridges, Richard Bowen, Hong Wei Chu, Irina Petrache
Yudai Miyashita, Taisuke Kaiho, Yuriko Yagi, Taichi Nagano, Xin Wu, Yuanqing Yan, Haiying Sun, Carl Atkinson, GR Scott Budinger, Ankit Bharat, Chitaru Kurihara
In α-1 antitrypsin (AAT) deficiency (AATD), emphysema is classically linked to protease-antiprotease imbalance caused by decreased antiprotease AAT due levels and function. This decrease is secondary to the impaired release of Z-AAT polymers from hepatocytes carrying Pi*Z, E342K mutation in SERPENA1 gene. Whether the accumulation of Z-AAT polymers in distal lungs contributes directly to emphysema pathogenesis has remained unexplored due to the lack of suitable model systems. We characterized lung injury and airspace enlargement in a Z-AAT–overexpressing murine model. We generated Z-AAT Serpina1Null mice overexpressing human (E342K) SERPENA1 in Serpina1Null mice and analyzed pulmonary phenotypes in young and aged animals, complemented by translational studies using primary cells, bronchoalveolar lavage fluid (BALf), and lung tissue from individuals who have never smoked and individuals with AATD. Young Z-AAT Serpina1Null mice accumulated Z-AAT polymers in hepatocytes, plasma, and BALf, exhibited spontaneous neutrophilic lung inflammation, increased alveolo-capillary permeability, and premature airspace enlargement, which was worse in older Z-AAT Serpina1Null mice. Moreover, Z-AAT polymers accumulated in alveolar type-2 epithelial (AT2) cells and lung macrophages, associated with endoplasmic reticulum (ER) stress, mitochondria dysfunction, and incomplete autophago-lysosomal fusion, which we recapitulated in lung samples from individuals with AATD. These findings support the pathogenic role of Z-AAT polymer accumulation in distal lung epithelium as a driver of epithelial, endothelial, and macrophage dysfunction linked to AATD emphysema.
Maria Magallón Serrano, Nazli Khodayari, William Bowers, Edward P. Manning, Xinran Liu, Jungnam Lee, Tammy O. Flagg, Regina Oshins, Aidan Griffin, Sahil Patel, Jorge E. Lascano, Divay Chandra, Susan M. Majka, Irina Petrache, Mark L. Brantly, Karina A. Serban
Type 2 (T2) immune cells dominate the airways of mild-moderate asthma (MMA) patients with a more complex Type 1 (T1)-T2 mixed immune response evident in treatment-refractory severe asthma (SA). We hypothesized that comparing the transcriptomes of the airway epithelium of SA and MMA patients would reveal molecular signatures associated with more severe disease in the context of a complex immune response. Using our novel interpretable machine learning tool, SLIDE, meaningful latent factors (context-specific gene co-expression networks) were revealed that distinguished SA from MMA. Unexpectedly, an aberrant high expression of normally host-protective, membrane-tethered and IFN-inducible mucins, MUC1 and MUC4, was identified in SA. Gene networks in the significant latent factors discriminating SA from MMA corresponded to enrichment of a keratinization program in SA airways. Keratinization was marked by increased expression of the stress keratin KRT16, signifying squamous metaplasia suggesting adaptive reprogramming of the airway epithelium in response to chronic stress. These mucins and KRT16 were inversely associated with lung function in two separate asthma cohorts. Imaging of endobronchial biopsies revealed significantly higher KRT16 protein expression in SA compared to MMA that strongly correlated with MUC1 protein expression. Our study identifies dysregulated host-protective and maladaptive repair responses in SA distinguishing from MMA.
Sagar L. Kale, Augusta M. Vincent, Mark A. Ross, Isha Mehta, Michael J. Calderon, Richard P. Ramonell, Himanshu Setya, Jessica C. McCreary-Partyka, Huijuan Yuan, Stephanie A. Christenson, Prescott G. Woodruff, Mario Castro, Kaharu Sumino, Nizar N. Jarjour, Loren C. Denlinger, Benjamin Gaston, Eugene R. Bleecker, Deborah A. Meyers, Wendy C. Moore, Elliot Israel, Bruce D. Levy, David Mauger, Serpil Erzurum, Anthony Newbrough, Taylor J. Nee, Prabir Ray, Claudette M. St. Croix, Sally E. Wenzel, Jishnu Das, Anuradha Ray, Marc C. Gauthier
No posts were found with this tag.