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1.
Cell ; 187(10): 2428-2445.e20, 2024 May 09.
Article in English | MEDLINE | ID: mdl-38579712

ABSTRACT

Alveolar type 2 (AT2) cells are stem cells of the alveolar epithelia. Previous genetic lineage tracing studies reported multiple cellular origins for AT2 cells after injury. However, conventional lineage tracing based on Cre-loxP has the limitation of non-specific labeling. Here, we introduced a dual recombinase-mediated intersectional genetic lineage tracing approach, enabling precise investigation of AT2 cellular origins during lung homeostasis, injury, and repair. We found AT1 cells, being terminally differentiated, did not contribute to AT2 cells after lung injury and repair. Distinctive yet simultaneous labeling of club cells, bronchioalveolar stem cells (BASCs), and existing AT2 cells revealed the exact contribution of each to AT2 cells post-injury. Mechanistically, Notch signaling inhibition promotes BASCs but impairs club cells' ability to generate AT2 cells during lung repair. This intersectional genetic lineage tracing strategy with enhanced precision allowed us to elucidate the physiological role of various epithelial cell types in alveolar regeneration following injury.


Subject(s)
Alveolar Epithelial Cells , Lung , Stem Cells , Animals , Mice , Alveolar Epithelial Cells/metabolism , Alveolar Epithelial Cells/cytology , Cell Differentiation , Cell Lineage , Lung/cytology , Lung/metabolism , Lung/physiology , Lung Injury/pathology , Mice, Inbred C57BL , Pulmonary Alveoli/cytology , Pulmonary Alveoli/metabolism , Receptors, Notch/metabolism , Regeneration , Signal Transduction , Stem Cells/metabolism , Stem Cells/cytology
2.
Cell ; 180(1): 107-121.e17, 2020 01 09.
Article in English | MEDLINE | ID: mdl-31866069

ABSTRACT

Fibrosis can develop in most organs and causes organ failure. The most common type of lung fibrosis is known as idiopathic pulmonary fibrosis, in which fibrosis starts at the lung periphery and then progresses toward the lung center, eventually causing respiratory failure. Little is known about the mechanisms underlying the pathogenesis and periphery-to-center progression of the disease. Here we discovered that loss of Cdc42 function in alveolar stem cells (AT2 cells) causes periphery-to-center progressive lung fibrosis. We further show that Cdc42-null AT2 cells in both post-pneumonectomy and untreated aged mice cannot regenerate new alveoli, resulting in sustained exposure of AT2 cells to elevated mechanical tension. We demonstrate that elevated mechanical tension activates a TGF-ß signaling loop in AT2 cells, which drives the periphery-to-center progression of lung fibrosis. Our study establishes a direct mechanistic link between impaired alveolar regeneration, mechanical tension, and progressive lung fibrosis.


Subject(s)
Adult Stem Cells/metabolism , Idiopathic Pulmonary Fibrosis/etiology , Pulmonary Alveoli/metabolism , Adult Stem Cells/pathology , Aged , Alveolar Epithelial Cells/pathology , Animals , Biomechanical Phenomena/physiology , Female , Fibrosis/pathology , Humans , Idiopathic Pulmonary Fibrosis/metabolism , Idiopathic Pulmonary Fibrosis/pathology , Lung/pathology , Male , Mice , Middle Aged , Pulmonary Alveoli/pathology , Regeneration , Signal Transduction , Stem Cells/pathology , Stress, Mechanical , Stress, Physiological/physiology , Transforming Growth Factor beta/metabolism , cdc42 GTP-Binding Protein/genetics , cdc42 GTP-Binding Protein/metabolism
3.
Cell ; 156(3): 440-55, 2014 Jan 30.
Article in English | MEDLINE | ID: mdl-24485453

ABSTRACT

Lung stem cells are instructed to produce lineage-specific progeny through unknown factors in their microenvironment. We used clonal 3D cocultures of endothelial cells and distal lung stem cells, bronchioalveolar stem cells (BASCs), to probe the instructive mechanisms. Single BASCs had bronchiolar and alveolar differentiation potential in lung endothelial cell cocultures. Gain- and loss-of-function experiments showed that BMP4-Bmpr1a signaling triggers calcineurin/NFATc1-dependent expression of thrombospondin-1 (Tsp1) in lung endothelial cells to drive alveolar lineage-specific BASC differentiation. Tsp1 null mice exhibited defective alveolar injury repair, confirming a crucial role for the BMP4-NFATc1-TSP1 axis in lung epithelial differentiation and regeneration in vivo. Discovery of this pathway points to methods to direct the derivation of specific lung epithelial lineages from multipotent cells. These findings elucidate a pathway that may be a critical target in lung diseases and provide tools to understand the mechanisms of respiratory diseases at the single-cell level.


Subject(s)
Bronchioles/cytology , Cell Differentiation , Endothelial Cells/metabolism , Pulmonary Alveoli/cytology , Signal Transduction , Stem Cells/metabolism , Animals , Bone Morphogenetic Protein 4/metabolism , Bone Morphogenetic Protein Receptors, Type I/metabolism , Bronchioles/metabolism , Cells, Cultured , Coculture Techniques , Mice , NFATC Transcription Factors/metabolism , Pulmonary Alveoli/metabolism , Stem Cells/cytology , Thrombospondin 1/genetics , Thrombospondin 1/metabolism
4.
Nature ; 621(7980): 813-820, 2023 Sep.
Article in English | MEDLINE | ID: mdl-37587341

ABSTRACT

Disruption of the lung endothelial-epithelial cell barrier following respiratory virus infection causes cell and fluid accumulation in the air spaces and compromises vital gas exchange function1. Endothelial dysfunction can exacerbate tissue damage2,3, yet it is unclear whether the lung endothelium promotes host resistance against viral pathogens. Here we show that the environmental sensor aryl hydrocarbon receptor (AHR) is highly active in lung endothelial cells and protects against influenza-induced lung vascular leakage. Loss of AHR in endothelia exacerbates lung damage and promotes the infiltration of red blood cells and leukocytes into alveolar air spaces. Moreover, barrier protection is compromised and host susceptibility to secondary bacterial infections is increased when endothelial AHR is missing. AHR engages tissue-protective transcriptional networks in endothelia, including the vasoactive apelin-APJ peptide system4, to prevent a dysplastic and apoptotic response in airway epithelial cells. Finally, we show that protective AHR signalling in lung endothelial cells is dampened by the infection itself. Maintenance of protective AHR function requires a diet enriched in naturally occurring AHR ligands, which activate disease tolerance pathways in lung endothelia to prevent tissue damage. Our findings demonstrate the importance of endothelial function in lung barrier immunity. We identify a gut-lung axis that affects lung damage following encounters with viral pathogens, linking dietary composition and intake to host fitness and inter-individual variations in disease outcome.


Subject(s)
Endothelial Cells , Lung , Orthomyxoviridae Infections , Receptors, Aryl Hydrocarbon , Animals , Humans , Mice , Apelin/metabolism , Diet , Endothelial Cells/metabolism , Endothelium/cytology , Endothelium/metabolism , Epithelial Cells/metabolism , Erythrocytes/metabolism , Influenza, Human/immunology , Influenza, Human/metabolism , Intestines/metabolism , Leukocytes/metabolism , Ligands , Lung/immunology , Lung/metabolism , Orthomyxoviridae Infections/immunology , Orthomyxoviridae Infections/metabolism , Pulmonary Alveoli/immunology , Pulmonary Alveoli/metabolism , Receptors, Aryl Hydrocarbon/metabolism
5.
Development ; 151(8)2024 Apr 15.
Article in English | MEDLINE | ID: mdl-38602485

ABSTRACT

Alveologenesis, the final stage in lung development, substantially remodels the distal lung, expanding the alveolar surface area for efficient gas exchange. Secondary crest myofibroblasts (SCMF) exist transiently in the neonatal distal lung and are crucial for alveologenesis. However, the pathways that regulate SCMF function, proliferation and temporal identity remain poorly understood. To address this, we purified SCMFs from reporter mice, performed bulk RNA-seq and found dynamic changes in Hippo-signaling components during alveologenesis. We deleted the Hippo effectors Yap/Taz from Acta2-expressing cells at the onset of alveologenesis, causing a significant arrest in alveolar development. Using single cell RNA-seq, we identified a distinct cluster of cells in mutant lungs with altered expression of marker genes associated with proximal mesenchymal cell types, airway smooth muscle and alveolar duct myofibroblasts. In vitro studies confirmed that Yap/Taz regulates myofibroblast-associated gene signature and contractility. Together, our findings show that Yap/Taz is essential for maintaining functional myofibroblast identity during postnatal alveologenesis.


Subject(s)
Cell Differentiation , Hippo Signaling Pathway , Morphogenesis , Myofibroblasts , Protein Serine-Threonine Kinases , Pulmonary Alveoli , Signal Transduction , YAP-Signaling Proteins , Animals , Mice , Myofibroblasts/metabolism , Myofibroblasts/cytology , YAP-Signaling Proteins/metabolism , YAP-Signaling Proteins/genetics , Pulmonary Alveoli/metabolism , Pulmonary Alveoli/cytology , Protein Serine-Threonine Kinases/metabolism , Protein Serine-Threonine Kinases/genetics , Morphogenesis/genetics , Mesoderm/metabolism , Adaptor Proteins, Signal Transducing/metabolism , Adaptor Proteins, Signal Transducing/genetics , Lung/metabolism , Organogenesis/genetics , Gene Expression Regulation, Developmental
6.
Nature ; 586(7831): 785-789, 2020 10.
Article in English | MEDLINE | ID: mdl-33057196

ABSTRACT

In the mammalian lung, an apparently homogenous mesh of capillary vessels surrounds each alveolus, forming the vast respiratory surface across which oxygen transfers to the blood1. Here we use single-cell analysis to elucidate the cell types, development, renewal and evolution of the alveolar capillary endothelium. We show that alveolar capillaries are mosaics; similar to the epithelium that lines the alveolus, the alveolar endothelium is made up of two intermingled cell types, with complex 'Swiss-cheese'-like morphologies and distinct functions. The first cell type, which we term the 'aerocyte', is specialized for gas exchange and the trafficking of leukocytes, and is unique to the lung. The other cell type, termed gCap ('general' capillary), is specialized to regulate vasomotor tone, and functions as a stem/progenitor cell in capillary homeostasis and repair. The two cell types develop from bipotent progenitors, mature gradually and are affected differently in disease and during ageing. This cell-type specialization is conserved between mouse and human lungs but is not found in alligator or turtle lungs, suggesting it arose during the evolution of the mammalian lung. The discovery of cell type specialization in alveolar capillaries transforms our understanding of the structure, function, regulation and maintenance of the air-blood barrier and gas exchange in health, disease and evolution.


Subject(s)
Capillaries/cytology , Pulmonary Alveoli/blood supply , Pulmonary Alveoli/cytology , Pulmonary Gas Exchange , Aging , Alligators and Crocodiles/anatomy & histology , Animals , Biological Evolution , Capillaries/metabolism , Cell Division , Cell Self Renewal , Cellular Senescence , Humans , Male , Mice , Pulmonary Alveoli/metabolism , Stem Cells/classification , Stem Cells/cytology , Turtles/anatomy & histology
7.
FASEB J ; 38(8): e23612, 2024 Apr 30.
Article in English | MEDLINE | ID: mdl-38648494

ABSTRACT

Considerable progress has been made in understanding the function of alveolar epithelial cells in a quiescent state and regeneration mechanism after lung injury. Lung injury occurs commonly from severe viral and bacterial infections, inhalation lung injury, and indirect injury sepsis. A series of pathological mechanisms caused by excessive injury, such as apoptosis, autophagy, senescence, and ferroptosis, have been studied. Recovery from lung injury requires the integrity of the alveolar epithelial cell barrier and the realization of gas exchange function. Regeneration mechanisms include the participation of epithelial progenitor cells and various niche cells involving several signaling pathways and proteins. While alveoli are damaged, alveolar type II (AT2) cells proliferate and differentiate into alveolar type I (AT1) cells to repair the damaged alveolar epithelial layer. Alveolar epithelial cells are surrounded by various cells, such as fibroblasts, endothelial cells, and various immune cells, which affect the proliferation and differentiation of AT2 cells through paracrine during alveolar regeneration. Besides, airway epithelial cells also contribute to the repair and regeneration process of alveolar epithelium. In this review, we mainly discuss the participation of epithelial progenitor cells and various niche cells involving several signaling pathways and transcription factors.


Subject(s)
Alveolar Epithelial Cells , Lung Injury , Regeneration , Humans , Regeneration/physiology , Animals , Lung Injury/metabolism , Lung Injury/pathology , Alveolar Epithelial Cells/metabolism , Alveolar Epithelial Cells/pathology , Stem Cells/metabolism , Stem Cells/physiology , Pulmonary Alveoli/pathology , Pulmonary Alveoli/metabolism , Signal Transduction , Cell Differentiation
8.
Am J Respir Cell Mol Biol ; 70(5): 339-350, 2024 May.
Article in English | MEDLINE | ID: mdl-38207121

ABSTRACT

In vitro lung research requires appropriate cell culture models that adequately mimic in vivo structure and function. Previously, researchers extensively used commercially available and easily expandable A549 and NCI-H441 cells, which replicate some but not all features of alveolar epithelial cells. Specifically, these cells are often restricted by terminally altered expression while lacking important alveolar epithelial characteristics. Of late, human primary alveolar epithelial cells (hPAEpCs) have become commercially available but are so far poorly specified. Here, we applied a comprehensive set of technologies to characterize their morphology, surface marker expression, transcriptomic profile, and functional properties. At optimized seeding numbers of 7,500 cells per square centimeter and growth at a gas-liquid interface, hPAEpCs formed regular monolayers with tight junctions and amiloride-sensitive transepithelial ion transport. Electron microscopy revealed lamellar body and microvilli formation characteristic for alveolar type II cells. Protein and single-cell transcriptomic analyses revealed expression of alveolar type I and type II cell markers; yet, transcriptomic data failed to detect NKX2-1, an important transcriptional regulator of alveolar cell differentiation. With increasing passage number, hPAEpCs transdifferentiated toward alveolar-basal intermediates characterized as SFTPC-, KRT8high, and KRT5- cells. In spite of marked changes in the transcriptome as a function of passaging, Uniform Manifold Approximation and Projection plots did not reveal major shifts in cell clusters, and epithelial permeability was unaffected. The present work delineates optimized culture conditions, cellular characteristics, and functional properties of commercially available hPAEpCs. hPAEpCs may provide a useful model system for studies on drug delivery, barrier function, and transepithelial ion transport in vitro.


Subject(s)
Alveolar Epithelial Cells , Humans , Alveolar Epithelial Cells/metabolism , Alveolar Epithelial Cells/cytology , Alveolar Epithelial Cells/ultrastructure , Cell Differentiation , Transcriptome , Cells, Cultured , Pulmonary Alveoli/metabolism , Pulmonary Alveoli/cytology , Tight Junctions/metabolism
9.
Pflugers Arch ; 476(7): 1155-1168, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38740599

ABSTRACT

Chronic obstructive pulmonary disease (COPD) is considered a severe disease mitigating lung physiological functions with high mortality outcomes, insufficient therapy, and pathophysiology pathways which is still not fully understood. Mesenchymal stem cells (MSCs) derived from bone marrow play an important role in improving the function of organs suffering inflammation, oxidative stress, and immune reaction. It might also play a role in regenerative medicine, but that is still questionable. Additionally, Melatonin with its known antioxidative and anti-inflammatory impact is attracting attention nowadays as a useful treatment. We hypothesized that Melatonin may augment the effect of MSCs at the level of angiogenesis in COPD. In our study, the COPD model was established using cigarette smoking and lipopolysaccharide. The COPD rats were divided into four groups: COPD group, Melatonin-treated group, MSC-treated group, and combined treated group (Melatonin-MSCs). We found that COPD was accompanied by deterioration of pulmonary function tests in response to expiratory parameter affection more than inspiratory ones. This was associated with increased Hypoxia inducible factor-1α expression and vascular endothelial growth factor level. Consequently, there was increased CD31 expression indicating increased angiogenesis with massive enlargement of airspaces and thinning of alveolar septa with decreased mean radial alveolar count, in addition to, inflammatory cell infiltration and disruption of the bronchiolar epithelial wall with loss of cilia and blood vessel wall thickening. These findings were improved significantly when Melatonin and bone marrow-derived MSCs were used as a combined treatment proving the hypothesized target that Melatonin might augment MSCs aiming at vascular changes.


Subject(s)
Melatonin , Mesenchymal Stem Cell Transplantation , Pulmonary Disease, Chronic Obstructive , Melatonin/pharmacology , Melatonin/administration & dosage , Animals , Pulmonary Disease, Chronic Obstructive/therapy , Pulmonary Disease, Chronic Obstructive/physiopathology , Pulmonary Disease, Chronic Obstructive/metabolism , Mesenchymal Stem Cell Transplantation/methods , Rats , Male , Mesenchymal Stem Cells/metabolism , Vascular Endothelial Growth Factor A/metabolism , Neovascularization, Physiologic/drug effects , Rats, Sprague-Dawley , Pulmonary Alveoli/metabolism , Pulmonary Alveoli/drug effects , Hypoxia-Inducible Factor 1, alpha Subunit/metabolism , Lung/metabolism , Lung/drug effects , Angiogenesis
10.
Am J Physiol Lung Cell Mol Physiol ; 326(4): L409-L418, 2024 Apr 01.
Article in English | MEDLINE | ID: mdl-38349124

ABSTRACT

Alveolar type I (ATI) cells cover >95% of the lung's distal surface and facilitate gas exchange through their exceptionally thin shape. ATI cells in vivo are replenished by alveolar type II cell division and differentiation, but a detailed understanding of ATI biology has been hampered by the challenges in direct isolation of these cells due to their fragility and incomplete understanding of the signaling interactions that promote differentiation of ATII to ATI cells. Here, we explored the signals that maintain ATII versus promote ATI fates in three-dimensional (3-D) organoid cultures and developed a human alveolar type I differentiation medium (hATIDM) suitable for generating ATI cells from either mixed distal human lung cells or purified ATII cells. This media adds bone morphogenetic protein 4 (BMP4) and removes epidermal growth factor (EGF), Wnt agonist CHIR99021, and transforming growth factor-beta (TGF-ß) inhibitor SB431542 from previously developed alveolar organoid culture media. We demonstrate that BMP4 promotes expression of the ATI marker gene AGER and HOPX, whereas CHIR99021 and SB431542 maintain expression of the ATII marker gene SFTPC. The human ATI spheroids generated with hATIDM express multiple molecular and morphological features reminiscent of human ATI cells. Our results demonstrate that signaling interactions among BMP, TGF-ß, and Wnt signaling pathways in alveolar spheroids and distal lung organoids including IPF-organoids coordinate human ATII to ATI differentiation.NEW & NOTEWORTHY Alveolar type I (ATI) epithelial cells perform essential roles in maintaining lung function but have been challenging to study. We explored the signals that promote ATI fate in 3-D organoid cultures generated from either mixed distal human lung cells or purified alveolar type II (ATII) cells. This work fills an important void in our experimental repertoire for studying alveolar epithelial cells and identifies signals that promote human ATII to ATI cell differentiation.


Subject(s)
Alveolar Epithelial Cells , Benzamides , Dioxoles , Pulmonary Alveoli , Humans , Pulmonary Alveoli/metabolism , Cells, Cultured , Alveolar Epithelial Cells/metabolism , Lung , Cell Differentiation , Transforming Growth Factor beta/metabolism
11.
Am J Physiol Lung Cell Mol Physiol ; 326(5): L524-L538, 2024 May 01.
Article in English | MEDLINE | ID: mdl-38375572

ABSTRACT

Lung surfactant collectins, surfactant protein A (SP-A) and D (SP-D), are oligomeric C-type lectins involved in lung immunity. Through their carbohydrate recognition domain, they recognize carbohydrates at pathogen surfaces and initiate lung innate immune response. Here, we propose that they may also be able to bind to other carbohydrates present in typical cell surfaces, such as the alveolar epithelial glycocalyx. To test this hypothesis, we analyzed and quantified the binding affinity of SP-A and SP-D to different sugars and glycosaminoglycans (GAGs) by microscale thermophoresis (MST). In addition, by changing the calcium concentration, we aimed to characterize any consequences on the binding behavior. Our results show that both oligomeric proteins bind with high affinity (in nanomolar range) to GAGs, such as hyaluronan (HA), heparan sulfate (HS) and chondroitin sulfate (CS). Binding to HS and CS was calcium-independent, as it was not affected by changing calcium concentration in the buffer. Quantification of GAGs in bronchoalveolar lavage (BAL) fluid from animals deficient in either SP-A or SP-D showed changes in GAG composition, and electron micrographs showed differences in alveolar glycocalyx ultrastructure in vivo. Taken together, SP-A and SP-D bind to model sulfated glycosaminoglycans of the alveolar epithelial glycocalyx in a multivalent and calcium-independent way. These findings provide a potential mechanism for SP-A and SP-D as an integral part of the alveolar epithelial glycocalyx binding and interconnecting free GAGs, proteoglycans, and other glycans in glycoproteins, which may influence glycocalyx composition and structure.NEW & NOTEWORTHY SP-A and SP-D function has been related to innate immunity of the lung based on their binding to sugar residues at pathogen surfaces. However, their function in the healthy alveolus was considered as limited to interaction with surfactant lipids. Here, we demonstrated that these proteins bind to glycosaminoglycans present at typical cell surfaces like the alveolar epithelial glycocalyx. We propose a model where these proteins play an important role in interconnecting alveolar epithelial glycocalyx components.


Subject(s)
Calcium , Glycocalyx , Glycosaminoglycans , Pulmonary Alveoli , Pulmonary Surfactant-Associated Protein A , Pulmonary Surfactant-Associated Protein D , Animals , Humans , Mice , Alveolar Epithelial Cells/metabolism , Bronchoalveolar Lavage Fluid , Calcium/metabolism , Glycocalyx/metabolism , Glycosaminoglycans/metabolism , Heparitin Sulfate/metabolism , Mice, Inbred C57BL , Protein Binding , Pulmonary Alveoli/metabolism , Pulmonary Surfactant-Associated Protein A/metabolism , Pulmonary Surfactant-Associated Protein D/metabolism
12.
Am J Physiol Lung Cell Mol Physiol ; 326(6): L713-L726, 2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38469649

ABSTRACT

Mucopolysaccharidosis type IIIA (MPS IIIA) is characterized by neurological and skeletal pathologies caused by reduced activity of the lysosomal hydrolase, sulfamidase, and the subsequent primary accumulation of undegraded heparan sulfate (HS). Respiratory pathology is considered secondary in MPS IIIA and the mechanisms are not well understood. Changes in the amount, metabolism, and function of pulmonary surfactant, the substance that regulates alveolar interfacial surface tension and modulates lung compliance and elastance, have been reported in MPS IIIA mice. Here we investigated changes in lung function in 20-wk-old control and MPS IIIA mice with a closed and open thoracic cage, diaphragm contractile properties, and potential parenchymal remodeling. MPS IIIA mice had increased compliance and airway resistance and reduced tissue damping and elastance compared with control mice. The chest wall impacted lung function as observed by an increase in airway resistance and a decrease in peripheral energy dissipation in the open compared with the closed thoracic cage state in MPS IIIA mice. Diaphragm contractile forces showed a decrease in peak twitch force, maximum specific force, and the force-frequency relationship but no change in muscle fiber cross-sectional area in MPS IIIA mice compared with control mice. Design-based stereology did not reveal any parenchymal remodeling or destruction of alveolar septa in the MPS IIIA mouse lung. In conclusion, the increased storage of HS which leads to biochemical and biophysical changes in pulmonary surfactant also affects lung and diaphragm function, but has no impact on lung or diaphragm structure at this stage of the disease.NEW & NOTEWORTHY Heparan sulfate storage in the lungs of mucopolysaccharidosis type IIIA (MPS IIIA) mice leads to changes in lung function consistent with those of an obstructive lung disease and includes an increase in lung compliance and airway resistance and a decrease in tissue elastance. In addition, diaphragm muscle contractile strength is reduced, potentially further contributing to lung function impairment. However, no changes in parenchymal lung structure were observed in mice at 20 wk of age.


Subject(s)
Airway Resistance , Diaphragm , Mucopolysaccharidosis III , Pulmonary Alveoli , Animals , Diaphragm/physiopathology , Diaphragm/pathology , Diaphragm/metabolism , Lung Compliance , Mice , Pulmonary Alveoli/pathology , Pulmonary Alveoli/physiopathology , Pulmonary Alveoli/metabolism , Mucopolysaccharidosis III/pathology , Mucopolysaccharidosis III/physiopathology , Mucopolysaccharidosis III/metabolism , Mucopolysaccharidosis III/genetics , Muscle Contraction/physiology , Mice, Inbred C57BL , Disease Models, Animal , Muscle Strength , Lung/pathology , Lung/physiopathology , Lung/metabolism , Male
13.
Part Fibre Toxicol ; 21(1): 25, 2024 May 17.
Article in English | MEDLINE | ID: mdl-38760786

ABSTRACT

Exposure to indoor air pollutants (IAP) has increased recently, with people spending more time indoors (i.e. homes, offices, schools and transportation). Increased exposures of IAP on a healthy population are poorly understood, and those with allergic respiratory conditions even less so. The objective of this study, therefore, was to implement a well-characterised in vitro model of the human alveolar epithelial barrier (A549 + PMA differentiated THP-1 incubated with and without IL-13, IL-5 and IL-4) to determine the effects of a standardised indoor particulate (NIST 2583) on both a healthy lung model and one modelling a type-II (stimulated with IL-13, IL-5 and IL-4) inflammatory response (such as asthma).Using concentrations from the literature, and an environmentally appropriate exposure we investigated 232, 464 and 608ng/cm2 of NIST 2583 respectively. Membrane integrity (blue dextran), viability (trypan blue), genotoxicity (micronucleus (Mn) assay) and (pro-)/(anti-)inflammatory effects (IL-6, IL-8, IL-33, IL-10) were then assessed 24 h post exposure to both models. Models were exposed using a physiologically relevant aerosolisation method (VitroCell Cloud 12 exposure system).No changes in Mn frequency or membrane integrity in either model were noted when exposed to any of the tested concentrations of NIST 2583. A significant decrease (p < 0.05) in cell viability at the highest concentration was observed in the healthy model. Whilst cell viability in the "inflamed" model was decreased at the lower concentrations (significantly (p < 0.05) after 464ng/cm2). A significant reduction (p < 0.05) in IL-10 and a significant increase in IL-33 was seen after 24 h exposure to NIST 2583 (464, 608ng/cm2) in the "inflamed" model.Collectively, the results indicate the potential for IAP to cause the onset of a type II response as well as exacerbating pre-existing allergic conditions. Furthermore, the data imposes the importance of considering unhealthy individuals when investigating the potential health effects of IAP. It also highlights that even in a healthy population these particles have the potential to induce this type II response and initiate an immune response following exposure to IAP.


Subject(s)
Air Pollution, Indoor , Cell Survival , Particulate Matter , Humans , Air Pollution, Indoor/adverse effects , Particulate Matter/toxicity , Cell Survival/drug effects , A549 Cells , Cytokines/metabolism , THP-1 Cells , Alveolar Epithelial Cells/drug effects , Alveolar Epithelial Cells/metabolism , Air Pollutants/toxicity , Inflammation/chemically induced , Pulmonary Alveoli/drug effects , Pulmonary Alveoli/metabolism , Pulmonary Alveoli/pathology
14.
Part Fibre Toxicol ; 21(1): 26, 2024 May 22.
Article in English | MEDLINE | ID: mdl-38778339

ABSTRACT

BACKGROUND: During inhalation, airborne particles such as particulate matter ≤ 2.5 µm (PM2.5), can deposit and accumulate on the alveolar epithelial tissue. In vivo studies have shown that fractions of PM2.5 can cross the alveolar epithelium to blood circulation, reaching secondary organs beyond the lungs. However, approaches to quantify the translocation of particles across the alveolar epithelium in vivo and in vitro are still not well established. In this study, methods to assess the translocation of standard diesel exhaust particles (DEPs) across permeable polyethylene terephthalate (PET) inserts at 0.4, 1, and 3 µm pore sizes were first optimized with transmission electron microscopy (TEM), ultraviolet-visible spectroscopy (UV-VIS), and lock-in thermography (LIT), which were then applied to study the translocation of DEPs across human alveolar epithelial type II (A549) cells. A549 cells that grew on the membrane (pore size: 3 µm) in inserts were exposed to DEPs at different concentrations from 0 to 80 µg.mL- 1 ( 0 to 44 µg.cm- 2) for 24 h. After exposure, the basal fraction was collected and then analyzed by combining qualitative (TEM) and quantitative (UV-VIS and LIT) techniques to assess the translocated fraction of the DEPs across the alveolar epithelium in vitro. RESULTS: We could detect the translocated fraction of DEPs across the PET membranes with 3 µm pore sizes and without cells by TEM analysis, and determine the percentage of translocation at approximatively 37% by UV-VIS (LOD: 1.92 µg.mL- 1) and 75% by LIT (LOD: 0.20 µg.cm- 2). In the presence of cells, the percentage of DEPs translocation across the alveolar tissue was determined around 1% at 20 and 40 µg.mL- 1 (11 and 22 µg.cm- 2), and no particles were detected at higher and lower concentrations. Interestingly, simultaneous exposure of A549 cells to DEPs and EDTA can increase the translocation of DEPs in the basal fraction. CONCLUSION: We propose a combination of analytical techniques to assess the translocation of DEPs across lung tissues. Our results reveal a low percentage of translocation of DEPs across alveolar epithelial tissue in vitro and they correspond to in vivo findings. The combination approach can be applied to any traffic-generated particles, thus enabling us to understand their involvement in public health.


Subject(s)
Particulate Matter , Pulmonary Alveoli , Vehicle Emissions , Humans , Vehicle Emissions/toxicity , Vehicle Emissions/analysis , A549 Cells , Particulate Matter/toxicity , Particulate Matter/analysis , Pulmonary Alveoli/drug effects , Pulmonary Alveoli/metabolism , Particle Size , Microscopy, Electron, Transmission , Polyethylene Terephthalates/chemistry , Polyethylene Terephthalates/toxicity , Alveolar Epithelial Cells/drug effects , Alveolar Epithelial Cells/metabolism , Air Pollutants/toxicity , Air Pollutants/analysis
15.
Cell Mol Life Sci ; 80(6): 145, 2023 May 11.
Article in English | MEDLINE | ID: mdl-37166489

ABSTRACT

Alveolar epithelial type II cells (AT2s) together with AT1s constitute the epithelial lining of lung alveoli. In contrast to the large flat AT1s, AT2s are cuboidal and smaller. In addition to surfactant production, AT2s also serve as prime alveolar progenitors in homeostasis and play an important role during regeneration/repair. Based on different lineage tracing strategies in mice and single-cell transcriptomic analysis, recent reports highlight the heterogeneous nature of AT2s. These studies present compelling evidence for the presence of stable or transitory AT2 subpopulations with distinct marker expression, signaling pathway activation and functional properties. Despite demonstrated progenitor potentials of AT2s in maintaining homeostasis, through self-renewal and differentiation to AT1s, the exact identity, full progenitor potential and regulation of these progenitor cells, especially in the context of human diseases remain unclear. We recently identified a novel subset of AT2 progenitors named "Injury-Activated Alveolar Progenitors" (IAAPs), which express low levels of Sftpc, Sftpb, Sftpa1, Fgfr2b and Etv5, but are highly enriched for the expression of the surface receptor programmed cell death-ligand 1 (Pd-l1). IAAPs are quiescent during lung homeostasis but activated upon injury with the potential to proliferate and differentiate into AT2s. Significantly, a similar population of PD-L1 positive cells expressing intermediate levels of SFTPC are found to be expanded in human IPF lungs. We summarize here the current understanding of this newly discovered AT2 progenitor subpopulation and also try to reconcile the relationship between different AT2 stem cell subpopulations regarding their progenitor potential, regulation, and relevance to disease pathogenesis and therapeutic interventions.


Subject(s)
B7-H1 Antigen , Lung , Mice , Humans , Animals , B7-H1 Antigen/metabolism , Lung/metabolism , Alveolar Epithelial Cells , Pulmonary Alveoli/metabolism , Pulmonary Alveoli/pathology , Cell Differentiation/physiology
16.
Int J Clin Oncol ; 29(6): 771-779, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38600426

ABSTRACT

BACKGROUND: Adenocarcinomas show a stepwise progression from atypical adenomatous hyperplasia (AAH) through adenocarcinoma in situ (AIS) to invasive adenocarcinoma (IA). Immunoglobulin superfamily containing leucine-rich repeat (ISLR) is a marker of tumor-restraining cancer-associated fibroblasts (CAFs), which are distinct from conventional, strongly α-smooth muscle actin (αSMA)-positive CAFs. Fibroblast activation protein (FAP) has been focused on as a potential therapeutic and diagnostic target of CAFs. METHODS: We investigated the changes in protein expression during adenocarcinoma progression in the pre-existing alveolar septa by assessing ISLR, αSMA, and FAP expression in normal lung, AAH, AIS, and IA. Fourteen AAH, seventeen AIS, and twenty IA lesions were identified and randomly sampled. Immunohistochemical analysis was performed to evaluate cancer-associated changes and FAP expression in the pre-existing alveolar structures. RESULTS: Normal alveolar septa expressed ISLR. The ISLR level in the alveolar septa decreased in AAH and AIS tissues when compared with that in normal lung tissue. The αSMA-positive area gradually increased from the adjacent lung tissue (13.3% ± 15%) to AIS (87.7% ± 14%), through AAH (70.2% ± 21%). Moreover, the FAP-positive area gradually increased from AAH (1.69% ± 1.4%) to IA (11.8% ± 7.1%), through AIS (6.11% ± 5.3%). Protein expression changes are a feature of CAFs in the pre-existing alveolar septa that begin in AAH. These changes gradually progressed from AAH to IA through AIS. CONCLUSIONS: FAP-positive fibroblasts may contribute to tumor stroma formation in early-stage lung adenocarcinoma, and this could influence the development of therapeutic strategies targeting FAP-positive CAFs for disrupting extracellular matrix formation.


Subject(s)
Adenocarcinoma of Lung , Disease Progression , Endopeptidases , Lung Neoplasms , Membrane Proteins , Humans , Adenocarcinoma of Lung/pathology , Adenocarcinoma of Lung/metabolism , Lung Neoplasms/pathology , Lung Neoplasms/metabolism , Male , Female , Middle Aged , Membrane Proteins/metabolism , Aged , Gelatinases/metabolism , Serine Endopeptidases/metabolism , Serine Endopeptidases/genetics , Actins/metabolism , Cancer-Associated Fibroblasts/metabolism , Cancer-Associated Fibroblasts/pathology , Biomarkers, Tumor/metabolism , Pulmonary Alveoli/pathology , Pulmonary Alveoli/metabolism , Adenocarcinoma/metabolism , Adenocarcinoma/pathology , Neoplasm Staging , Adenocarcinoma in Situ/pathology , Adenocarcinoma in Situ/metabolism , Adult
17.
PLoS Genet ; 17(6): e1009619, 2021 06.
Article in English | MEDLINE | ID: mdl-34161347

ABSTRACT

Lysosome-associated membrane glycoprotein 3 (LAMP3) is a type I transmembrane protein of the LAMP protein family with a cell-type-specific expression in alveolar type II cells in mice and hitherto unknown function. In type II pneumocytes, LAMP3 is localized in lamellar bodies, secretory organelles releasing pulmonary surfactant into the extracellular space to lower surface tension at the air/liquid interface. The physiological function of LAMP3, however, remains enigmatic. We generated Lamp3 knockout mice by CRISPR/Cas9. LAMP3 deficient mice are viable with an average life span and display regular lung function under basal conditions. The levels of a major hydrophobic protein component of pulmonary surfactant, SP-C, are strongly increased in the lung of Lamp3 knockout mice, and the lipid composition of the bronchoalveolar lavage shows mild but significant changes, resulting in alterations in surfactant functionality. In ovalbumin-induced experimental allergic asthma, the changes in lipid composition are aggravated, and LAMP3-deficient mice exert an increased airway resistance. Our data suggest a critical role of LAMP3 in the regulation of pulmonary surfactant homeostasis and normal lung function.


Subject(s)
Alveolar Epithelial Cells/metabolism , Asthma/genetics , Homeostasis/genetics , Lysosomal-Associated Membrane Protein 3/genetics , Pulmonary Surfactant-Associated Protein C/genetics , Pulmonary Surfactants/metabolism , Airway Resistance , Alveolar Epithelial Cells/pathology , Animals , Asthma/chemically induced , Asthma/metabolism , Asthma/pathology , Bronchoalveolar Lavage Fluid , Disease Models, Animal , Female , Gene Editing/methods , Gene Expression Regulation , Lipidomics , Lung/metabolism , Lung/pathology , Lysosomal-Associated Membrane Protein 3/deficiency , Mice , Mice, Knockout , Ovalbumin/administration & dosage , Protein Isoforms/genetics , Protein Isoforms/metabolism , Pulmonary Alveoli/metabolism , Pulmonary Alveoli/pathology , Pulmonary Surfactant-Associated Protein C/metabolism , Respiratory Function Tests , Signal Transduction
18.
Vet Anaesth Analg ; 51(4): 391-398, 2024.
Article in English | MEDLINE | ID: mdl-38719760

ABSTRACT

OBJECTIVE: To investigate the effect of three different doses of oral pregabalin on minimum alveolar concentration of isoflurane (MACISO) in cats. STUDY DESIGN: Prospective, randomized, placebo-controlled, blinded, crossover trial. ANIMALS: A group of eight healthy adult cats aged 24-48 months. METHODS: Cats were randomly assigned to three oral doses of pregabalin (low dose: 2.5 mg kg-1, medium dose: 5 mg kg-1, high dose: 10 mg kg-1) or placebo 2 hours before MACISO determination, with the multiple treatments administered with a minimum 7 day washout period. Anesthesia was induced and maintained with isoflurane in oxygen until endotracheal intubation was achieved, and maintained with isoflurane with volume-controlled ventilation. MACISO was determined in triplicate using the bracketing technique and tail clamp method 120 minutes after pregabalin or placebo administration. Physiologic variables (including heart rate and blood pressure) recorded during MACISO determination were averaged and compared between the pregabalin and placebo treatments. One-way analysis of variance and the Friedman test were used to assess the difference for normally and non-normally distributed data, respectively. The Tukey test was used as a post hoc analysis. Values of p < 0.05 were considered significant. RESULTS: The MACISO with the medium- and high-dose pregabalin treatments were 1.33 ± 0.21% and 1.23 ± 0.17%, respectively. These were significantly lower than MACISO after placebo treatment (1.62 ± 0.13%; p = 0.014, p < 0.001, respectively), representing a decrease of 18 ± 9% and 24 ± 6%. The mean plasma pregabalin concentration was negatively correlated with MACISO values. Physiologic variables did not differ significantly between treatments. CONCLUSIONS AND CLINICAL RELEVANCE: Doses of 5 or 10 mg kg-1 pregabalin, administered orally 2 hours before determining MACISO, had a significant isoflurane-sparing effect in cats.


Subject(s)
Anesthetics, Inhalation , Cross-Over Studies , Isoflurane , Pregabalin , Pulmonary Alveoli , Animals , Pregabalin/administration & dosage , Pregabalin/pharmacology , Isoflurane/administration & dosage , Isoflurane/pharmacokinetics , Cats , Anesthetics, Inhalation/administration & dosage , Anesthetics, Inhalation/pharmacokinetics , Anesthetics, Inhalation/pharmacology , Pulmonary Alveoli/metabolism , Male , Female , Administration, Oral , Drug Interactions , Dose-Response Relationship, Drug , Analgesics/administration & dosage , Analgesics/pharmacology , Analgesics/pharmacokinetics , Anesthesia, Inhalation/veterinary
19.
Am J Physiol Lung Cell Mol Physiol ; 324(6): L747-L755, 2023 06 01.
Article in English | MEDLINE | ID: mdl-37014816

ABSTRACT

To better define the role of mechanical forces in pulmonary emphysema, we employed methods recently developed in our laboratory to identify microscopic level relationships between airspace size and elastin-specific desmosine and isodesmosine (DID) cross links in normal and emphysematous human lungs. Free DID in wet tissue (a biomarker for elastin degradation) and total DID in formalin-fixed, paraffin-embedded (FFPE) tissue sections were measured using liquid chromatography-tandem mass spectrometry and correlated with alveolar diameter, as determined by the mean linear intercept (MLI) method. There was a positive correlation between free lung DID and MLI (P < 0.0001) in formalin-fixed lungs, and elastin breakdown was greatly accelerated when airspace diameter exceeded 400 µm. In FFPE tissue, DID density was markedly increased beyond 300 µm (P < 0.0001) and leveled off around 400 µm. Elastic fiber surface area similarly peaked at around 400 µm, but to a much lesser extent than DID density, indicating that elastin cross linking is markedly increased in response to early changes in airspace size. These findings support the hypothesis that airspace enlargement is an emergent phenomenon in which initial proliferation of DID cross links to counteract alveolar wall distention is followed by a phase transition involving rapid acceleration of elastin breakdown, alveolar wall rupture, and progression to an active disease state that is less amenable to therapeutic intervention.NEW & NOTEWORTHY The current findings support the hypothesis that airspace enlargement is an emergent phenomenon in which initial proliferation of DID cross links to counteract alveolar wall distention is followed by a phase transition involving rapid acceleration of elastin breakdown, alveolar wall rupture, and progression to an active disease state that is less amenable to therapeutic intervention.


Subject(s)
Emphysema , Pulmonary Emphysema , Humans , Pulmonary Emphysema/metabolism , Elastin/metabolism , Lung/metabolism , Pulmonary Alveoli/metabolism
20.
Am J Physiol Lung Cell Mol Physiol ; 324(2): L89-L101, 2023 02 01.
Article in English | MEDLINE | ID: mdl-36472329

ABSTRACT

Clinical observation indicates that exercise capacity, an important determinant of survival in patients with congenital heart disease (CHD), is most decreased in children with reduced pulmonary blood flow (RPF). However, the underlying mechanism remains unclear. Here, we obtained human RPF lung samples from children with tetralogy of Fallot as well as piglet and rat RPF lung samples from animals with pulmonary artery banding surgery. We observed impaired alveolarization and vascularization, the main characteristics of pulmonary dysplasia, in the lungs of RPF infants, piglets, and rats. RPF caused smaller lungs, cyanosis, and body weight loss in neonatal rats and reduced the number of alveolar type 2 cells. RNA sequencing demonstrated that RPF induced the downregulation of metabolism and migration, a key biological process of late alveolar development, and the upregulation of immune response, which was confirmed by flow cytometry and cytokine detection. In addition, the immunosuppressant cyclosporine A rescued pulmonary dysplasia and increased the expression of the Wnt signaling pathway, which is the driver of postnatal lung development. We concluded that RPF results in pulmonary dysplasia, which may account for the reduced exercise capacity of patients with CHD with RPF. The underlying mechanism is associated with immune response activation, and immunosuppressants have a therapeutic effect in CHD-associated pulmonary dysplasia.


Subject(s)
Heart Defects, Congenital , Pulmonary Alveoli , Infant , Child , Animals , Humans , Rats , Swine , Pulmonary Alveoli/metabolism , Lung/metabolism , Heart Defects, Congenital/complications , Heart Defects, Congenital/metabolism , Heart Defects, Congenital/pathology , Pulmonary Circulation , Hyperplasia/metabolism , Hyperplasia/pathology , Animals, Newborn
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