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1.
Am J Respir Crit Care Med ; 209(1): 37-47, 2024 Jan 01.
Artículo en Inglés | MEDLINE | ID: mdl-37487152

RESUMEN

Background: Since publication of the 2012 Berlin definition of acute respiratory distress syndrome (ARDS), several developments have supported the need for an expansion of the definition, including the use of high-flow nasal oxygen, the expansion of the use of pulse oximetry in place of arterial blood gases, the use of ultrasound for chest imaging, and the need for applicability in resource-limited settings. Methods: A consensus conference of 32 critical care ARDS experts was convened, had six virtual meetings (June 2021 to March 2022), and subsequently obtained input from members of several critical care societies. The goal was to develop a definition that would 1) identify patients with the currently accepted conceptual framework for ARDS, 2) facilitate rapid ARDS diagnosis for clinical care and research, 3) be applicable in resource-limited settings, 4) be useful for testing specific therapies, and 5) be practical for communication to patients and caregivers. Results: The committee made four main recommendations: 1) include high-flow nasal oxygen with a minimum flow rate of ⩾30 L/min; 2) use PaO2:FiO2 ⩽ 300 mm Hg or oxygen saturation as measured by pulse oximetry SpO2:FiO2 ⩽ 315 (if oxygen saturation as measured by pulse oximetry is ⩽97%) to identify hypoxemia; 3) retain bilateral opacities for imaging criteria but add ultrasound as an imaging modality, especially in resource-limited areas; and 4) in resource-limited settings, do not require positive end-expiratory pressure, oxygen flow rate, or specific respiratory support devices. Conclusions: We propose a new global definition of ARDS that builds on the Berlin definition. The recommendations also identify areas for future research, including the need for prospective assessments of the feasibility, reliability, and prognostic validity of the proposed global definition.


Asunto(s)
Síndrome de Dificultad Respiratoria , Humanos , Estudios Prospectivos , Reproducibilidad de los Resultados , Síndrome de Dificultad Respiratoria/diagnóstico , Síndrome de Dificultad Respiratoria/terapia , Oximetría , Oxígeno
2.
Artículo en Inglés | MEDLINE | ID: mdl-38772909

RESUMEN

Neutrophils are the first leukocytes to be recruited to sites of inflammation in response to chemotactic factors released by activated macrophages and pulmonary epithelial and endothelial cells in bacterial pneumonia, a common cause of acute respiratory distress syndrome (ARDS). Although neutrophilic inflammation facilitates the elimination of pathogens, neutrophils also may cause bystander tissue injury. Even though neutrophils in alveolar spaces is a key feature of acute lung injury and ARDS especially from pneumonia, their contribution to the pathogenesis of lung injury is uncertain. The goal of this study was to elucidate the role of neutrophils in a clinically relevant model of bacterial pneumonia. We investigated the effect of reducing neutrophils in a mouse model of pneumococcal pneumonia treated with antibiotics. Neutrophils were reduced with anti-Ly6G monoclonal antibody 24 hours before and immediately preceding infection. Mice were inoculated intranasally with Streptococcus pneumoniae and received ceftriaxone 12 hours after bacterial inoculation. Neutrophil reduction in mice treated with ceftriaxone attenuated hypoxemia, alveolar permeability, epithelial injury, pulmonary edema, and inflammatory biomarker release induced by bacterial pneumonia, even though bacterial loads in the distal air spaces of the lung were modestly increased as compared to antibiotic treatment alone. Thus, when appropriate antibiotics are administered, lung injury in the early phase of bacterial pneumonia is mediated in part by neutrophils. In the early phase of bacterial pneumonia, neutrophils contribute to the severity of lung injury, although they also participate in host defense.

3.
Crit Care ; 28(1): 185, 2024 05 29.
Artículo en Inglés | MEDLINE | ID: mdl-38807178

RESUMEN

BACKGROUND: Streptococcus pneumoniae is the most common bacterial cause of community acquired pneumonia and the acute respiratory distress syndrome (ARDS). Some clinical trials have demonstrated a beneficial effect of corticosteroid therapy in community acquired pneumonia, COVID-19, and ARDS, but the mechanisms of this benefit remain unclear. The primary objective of this study was to investigate the effects of corticosteroids on the pulmonary biology of pneumococcal pneumonia in a mouse model. A secondary objective was to identify shared transcriptomic features of pneumococcal pneumonia and steroid treatment in the mouse model and clinical samples. METHODS: We carried out comprehensive physiologic, biochemical, and histological analyses in mice to identify the mechanisms of lung injury in Streptococcus pneumoniae with and without adjunctive steroid therapy. We also studied lower respiratory tract gene expression from a cohort of 15 mechanically ventilated patients (10 with Streptococcus pneumoniae and 5 controls) to compare with the transcriptional studies in the mice. RESULTS: In mice with pneumonia, dexamethasone in combination with ceftriaxone reduced (1) pulmonary edema formation, (2) alveolar protein permeability, (3) proinflammatory cytokine release, (4) histopathologic lung injury score, and (5) hypoxemia but did not increase bacterial burden. Transcriptomic analyses identified effects of steroid therapy in mice that were also observed in the clinical samples. CONCLUSIONS: In combination with appropriate antibiotic therapy in mice, treatment of pneumococcal pneumonia with steroid therapy reduced hypoxemia, pulmonary edema, lung permeability, and histologic criteria of lung injury, and also altered inflammatory responses at the protein and gene expression level. The transcriptional studies in patients suggest that the mouse model replicates some of the features of pneumonia in patients with Streptococcus pneumoniae and steroid treatment. Overall, these studies provide evidence for the mechanisms that may explain the beneficial effects of glucocorticoid therapy in patients with community acquired pneumonia from Streptococcus Pneumoniae.


Asunto(s)
Corticoesteroides , Modelos Animales de Enfermedad , Neumonía Neumocócica , Animales , Neumonía Neumocócica/tratamiento farmacológico , Ratones , Corticoesteroides/uso terapéutico , Corticoesteroides/farmacología , Humanos , Dexametasona/farmacología , Dexametasona/uso terapéutico , Femenino , Masculino , Streptococcus pneumoniae/efectos de los fármacos , Streptococcus pneumoniae/patogenicidad
4.
Am J Physiol Lung Cell Mol Physiol ; 323(2): L152-L164, 2022 08 01.
Artículo en Inglés | MEDLINE | ID: mdl-35670478

RESUMEN

Electronic cigarettes (e-cigarettes) are designed to simulate combustible cigarette smoking and to aid in smoking cessation. Although the number of e-cigarette users has been increasing, the potential health impacts and biological effects of e-cigarettes are still not fully understood. Previous research has focused on the biological effects of e-cigarettes on lung cancer cell lines and distal airway epithelial cells; however, there have been few published studies on the effect of e-cigarettes on primary lung alveolar epithelial cells. The primary purpose of this study was to investigate the direct effect of e-cigarette aerosol on primary human lung alveolar epithelial type 2 (AT2) cells, both alone and in the presence of viral infection. The Melo-3 atomizer caused direct AT2 cell toxicity, whereas the more popular Juul pod's aerosol did not have a detectable cytotoxic effect on AT2 cells. Juul nicotine aerosol also did not increase short-term susceptibility to viral infection. However, 3 days of exposure upregulated genes central to the generation of reactive oxygen species, lipid peroxidation, and carcinogen metabolism and downregulated key innate immune system genes related to cytokine and chemokine signaling. These findings have implications for the potentially injurious impact of long-term use of popular low-power e-cigarette pods on the human alveolar epithelium. Gene expression data might be an important endpoint for evaluating the potential harmful effects of vaping devices that do not cause overt toxicity.


Asunto(s)
Sistemas Electrónicos de Liberación de Nicotina , Vapeo , Células Epiteliales Alveolares , Humanos , Nicotina/efectos adversos , Aerosoles y Gotitas Respiratorias , Vapeo/efectos adversos
5.
Am J Physiol Lung Cell Mol Physiol ; 322(6): L771-L783, 2022 06 01.
Artículo en Inglés | MEDLINE | ID: mdl-35318859

RESUMEN

Although vitamin E acetate (VEA) is suspected to play a causal role in the development of electronic-cigarette, or vaping, product use-associated lung injury (EVALI), the underlying biological mechanisms of pulmonary injury are yet to be determined. In addition, no study has replicated the systemic inflammation observed in humans in a murine EVALI model, nor investigated potential additive toxicity of viral infection in the setting of exposure to vaping products. To identify the mechanisms driving VEA-related lung injury and test the hypothesis that viral infection causes additive lung injury in the presence of aerosolized VEA, we exposed mice to aerosolized VEA for extended times, followed by influenza infection in some experiments. We used mass spectrometry to evaluate the composition of aerosolized VEA condensate and the VEA deposition in murine or human alveolar macrophages. Extended vaping for 28 days versus 15 days did not worsen lung injury but caused systemic inflammation in the murine EVALI model. Vaping plus influenza increased lung water compared with virus alone. Murine alveolar macrophages exposed to vaped VEA hydrolyzed the VEA to vitamin E with evidence of oxidative stress in the alveolar space and systemic circulation. Aerosolized VEA also induced cell death and chemokine release and reduced efferocytotic function in human alveolar macrophages in vitro. These findings provide new insights into the biological mechanisms of VEA toxicity.


Asunto(s)
Sistemas Electrónicos de Liberación de Nicotina , Gripe Humana , Lesión Pulmonar , Vapeo , Acetatos/química , Animales , Humanos , Inflamación/inducido químicamente , Lesión Pulmonar/inducido químicamente , Macrófagos Alveolares/metabolismo , Ratones , Estrés Oxidativo , Vapeo/efectos adversos , Vitamina E/farmacología
6.
Am J Physiol Lung Cell Mol Physiol ; 320(6): L1085-L1092, 2021 06 01.
Artículo en Inglés | MEDLINE | ID: mdl-33822656

RESUMEN

Resolution of the acute respiratory distress syndrome (ARDS) from pneumonia requires repair of the injured lung endothelium and alveolar epithelium, removal of neutrophils from the distal airspaces of the lung, and clearance of the pathogen. Previous studies have demonstrated the importance of specialized proresolving mediators (SPMs) in the regulation of host responses during inflammation. Although ARDS is commonly caused by Streptococcus pneumoniae, the role of lipoxin A4 (LXA4) and resolvin D1 (RvD1) in pneumococcal pneumonia is not well understood. In the present experimental study, we tested the hypothesis that endogenous SPMs play a role in the resolution of lung injury in a clinically relevant model of bacterial pneumonia. Blockade of formyl peptide receptor 2 (ALX/FPR2), the receptor for LXA4 and RvD1, with the peptide WRW4 resulted in more pulmonary edema, greater protein accumulation in the air spaces, and increased bacteria accumulation in the air spaces and the blood. Inhibition of this receptor was also associated with decreased levels of proinflammatory cytokines. Even in the presence of antibiotic treatment, WRW4 inhibited the resolution of lung injury. In summary, these experiments demonstrated two novel findings: LXA4 and RvD1 contribute to the resolution of lung injury due to pneumococcal pneumonia, and the mechanism of their benefit likely includes augmenting bacterial clearance and reducing pulmonary edema via the restoration of lung alveolar-capillary barrier permeability.


Asunto(s)
Lesión Pulmonar Aguda/tratamiento farmacológico , Ácidos Docosahexaenoicos/antagonistas & inhibidores , Lipoxinas/antagonistas & inhibidores , Neumonía Neumocócica/tratamiento farmacológico , Receptores de Lipoxina/efectos de los fármacos , Lesión Pulmonar Aguda/complicaciones , Lesión Pulmonar Aguda/inmunología , Animales , Humanos , Inflamación/tratamiento farmacológico , Inflamación/metabolismo , Pulmón/efectos de los fármacos , Pulmón/inmunología , Pulmón/metabolismo , Ratones , Permeabilidad/efectos de los fármacos , Neumonía Neumocócica/complicaciones , Neumonía Neumocócica/inmunología , Receptores de Lipoxina/metabolismo , Síndrome de Dificultad Respiratoria/tratamiento farmacológico , Síndrome de Dificultad Respiratoria/inmunología
7.
Nature ; 517(7536): 621-5, 2015 Jan 29.
Artículo en Inglés | MEDLINE | ID: mdl-25533958

RESUMEN

Broadly, tissue regeneration is achieved in two ways: by proliferation of common differentiated cells and/or by deployment of specialized stem/progenitor cells. Which of these pathways applies is both organ- and injury-specific. Current models in the lung posit that epithelial repair can be attributed to cells expressing mature lineage markers. By contrast, here we define the regenerative role of previously uncharacterized, rare lineage-negative epithelial stem/progenitor (LNEP) cells present within normal distal lung. Quiescent LNEPs activate a ΔNp63 (a p63 splice variant) and cytokeratin 5 remodelling program after influenza or bleomycin injury in mice. Activated cells proliferate and migrate widely to occupy heavily injured areas depleted of mature lineages, at which point they differentiate towards mature epithelium. Lineage tracing revealed scant contribution of pre-existing mature epithelial cells in such repair, whereas orthotopic transplantation of LNEPs, isolated by a definitive surface profile identified through single-cell sequencing, directly demonstrated the proliferative capacity and multipotency of this population. LNEPs require Notch signalling to activate the ΔNp63 and cytokeratin 5 program, and subsequent Notch blockade promotes an alveolar cell fate. Persistent Notch signalling after injury led to parenchymal 'micro-honeycombing' (alveolar cysts), indicative of failed regeneration. Lungs from patients with fibrosis show analogous honeycomb cysts with evidence of hyperactive Notch signalling. Our findings indicate that distinct stem/progenitor cell pools repopulate injured tissue depending on the extent of the injury, and the outcomes of regeneration or fibrosis may depend in part on the dynamics of LNEP Notch signalling.


Asunto(s)
Células Epiteliales/citología , Células Epiteliales/patología , Lesión Pulmonar/patología , Pulmón/citología , Pulmón/patología , Repitelización , Células Madre/citología , Animales , Bleomicina , Linaje de la Célula , Proliferación Celular , Separación Celular , Quistes/metabolismo , Quistes/patología , Células Epiteliales/metabolismo , Femenino , Humanos , Queratina-5/metabolismo , Pulmón/fisiología , Lesión Pulmonar/inducido químicamente , Lesión Pulmonar/virología , Masculino , Ratones , Infecciones por Orthomyxoviridae/patología , Infecciones por Orthomyxoviridae/virología , Fosfoproteínas/genética , Fosfoproteínas/metabolismo , Receptores Notch/metabolismo , Transducción de Señal , Trasplante de Células Madre , Células Madre/metabolismo , Transactivadores/genética , Transactivadores/metabolismo
8.
Am J Respir Cell Mol Biol ; 63(6): 748-757, 2020 12.
Artículo en Inglés | MEDLINE | ID: mdl-32822237

RESUMEN

Electronic-cigarette, or vaping, product use-associated lung injury (EVALI) is a syndrome of acute respiratory failure characterized by monocytic and neutrophilic alveolar inflammation. Epidemiological and clinical evidence suggests a role of vitamin E acetate (VEA) in the development of EVALI, yet it remains unclear whether VEA has direct pulmonary toxicity. To test the hypotheses that aerosolized VEA causes lung injury in mice and directly injures human alveolar epithelial cells, we exposed adult mice and primary human alveolar epithelial type II (AT II) cells to an aerosol of VEA generated by a device designed for vaping oils. Outcome measures in mice included lung edema, BAL analysis, histology, and inflammatory cytokines; in vitro outcomes included cell death, cytokine release, cellular uptake of VEA, and gene-expression analysis. Comparison exposures in both models included the popular nicotine-containing JUUL aerosol. We discovered that VEA caused dose-dependent increases in lung water and BAL protein compared with control and JUUL-exposed mice in association with increased BAL neutrophils, oil-laden macrophages, multinucleated giant cells, and inflammatory cytokines. VEA aerosol was also toxic to AT II cells, causing increased cell death and the release of monocyte and neutrophil chemokines. VEA was directly absorbed by AT II cells, resulting in the differential gene expression of several inflammatory biological pathways. Given the epidemiological and clinical characteristics of the EVALI outbreak, these results suggest that VEA plays an important causal role.


Asunto(s)
Acetatos/farmacología , Lesión Pulmonar/tratamiento farmacológico , Pulmón/efectos de los fármacos , Vitamina E/farmacología , Animales , Sistemas Electrónicos de Liberación de Nicotina , Humanos , Pulmón/patología , Lesión Pulmonar/inducido químicamente , Lesión Pulmonar/patología , Ratones Endogámicos C57BL , Nicotina/farmacología , Vapeo , Vitamina E/análisis
9.
Am J Physiol Lung Cell Mol Physiol ; 319(2): L218-L227, 2020 08 01.
Artículo en Inglés | MEDLINE | ID: mdl-32519893

RESUMEN

Few patients with bacteremia from a nonpulmonary source develop acute respiratory distress syndrome (ARDS). However, the mechanisms that protect the lung from injury in bacteremia have not been identified. We simulated bacteremia by adding Streptococcus pneumoniae to the perfusate of the ex vivo perfused human lung model. In contrast to a pneumonia model in which bacteria were instilled into the distal air spaces of one lobe, injection of high doses of S. pneumoniae into the perfusate was not associated with alveolar epithelial injury as demonstrated by low protein permeability of the alveolar epithelium, intact alveolar fluid clearance, and the absence of alveolar edema. Unexpectedly, the ex vivo human lung rapidly cleared large quantities of S. pneumoniae even though the perfusate had very few intravascular phagocytes and lacked immunoglobulins or complement. The bacteria were cleared in part by the small number of neutrophils in the perfusate, alveolar macrophages in the airspaces, and probably by interstitial pathways. Together, these findings identify one mechanism by which the lung and the alveolar epithelium are protected from injury in bacteremia.


Asunto(s)
Lesión Pulmonar Aguda/microbiología , Lesión Pulmonar Aguda/patología , Bacteriemia/patología , Pulmón/patología , Streptococcus pneumoniae/patogenicidad , Adulto , Bacteriemia/microbiología , Epitelio/microbiología , Epitelio/patología , Femenino , Humanos , Pulmón/microbiología , Macrófagos/microbiología , Macrófagos/patología , Masculino , Persona de Mediana Edad , Neutrófilos/microbiología , Neutrófilos/patología , Permeabilidad , Infecciones Neumocócicas/microbiología , Infecciones Neumocócicas/patología , Alveolos Pulmonares/microbiología , Alveolos Pulmonares/patología , Síndrome de Dificultad Respiratoria/microbiología , Síndrome de Dificultad Respiratoria/patología , Mucosa Respiratoria/microbiología , Mucosa Respiratoria/parasitología
10.
Am J Physiol Lung Cell Mol Physiol ; 317(5): L717-L736, 2019 11 01.
Artículo en Inglés | MEDLINE | ID: mdl-31509438

RESUMEN

Pneumonia is responsible for more deaths in the United States than any other infectious disease. Severe pneumonia is a common cause of acute respiratory failure and acute respiratory distress syndrome (ARDS). Despite the introduction of effective antibiotics and intensive supportive care in the 20th century, death rates from community-acquired pneumonia among patients in the intensive care unit remain as high as 35%. Beyond antimicrobial treatment, no targeted molecular therapies have yet proven effective, highlighting the need for additional research. Despite some limitations, small animal models of pneumonia and the mechanistic insights they produce are likely to continue to play an important role in generating new therapeutic targets. Here we describe the development of an innovative mouse model of pneumococcal pneumonia developed for enhanced clinical relevance. We first reviewed the literature of small animal models of bacterial pneumonia that incorporated antibiotics. We then did a series of experiments in mice in which we systematically varied the pneumococcal inoculum and the timing of antibiotics while measuring systemic and lung-specific end points, producing a range of models that mirrors the spectrum of pneumococcal lung disease in patients, from mild self-resolving infection to severe pneumonia refractory to antibiotics. A delay in antibiotic treatment resulted in ongoing inflammation and renal and hepatic dysfunction despite effective bacterial killing. The addition of fluid resuscitation to the model improved renal function but worsened the severity of lung injury based on direct measurements of pulmonary edema and lung compliance, analogous to patients with pneumonia and sepsis who develop ARDS following fluid administration.


Asunto(s)
Inflamación/etiología , Lesión Pulmonar/etiología , Insuficiencia Multiorgánica/etiología , Neumonía Neumocócica/complicaciones , Síndrome de Dificultad Respiratoria/etiología , Streptococcus pneumoniae/aislamiento & purificación , Animales , Antibacterianos/administración & dosificación , Modelos Animales de Enfermedad , Femenino , Fluidoterapia , Inflamación/patología , Inflamación/terapia , Lesión Pulmonar/patología , Lesión Pulmonar/terapia , Ratones , Ratones Endogámicos C57BL , Insuficiencia Multiorgánica/patología , Insuficiencia Multiorgánica/terapia , Neumonía Neumocócica/microbiología , Síndrome de Dificultad Respiratoria/patología , Síndrome de Dificultad Respiratoria/terapia
11.
Am J Physiol Lung Cell Mol Physiol ; 315(1): L25-L40, 2018 07 01.
Artículo en Inglés | MEDLINE | ID: mdl-29543040

RESUMEN

Evidence is accumulating that exposure to cigarette smoke (CS) increases the risk of developing acute respiratory distress syndrome (ARDS). Streptococcus pneumoniae is the most common cause of bacterial pneumonia, which in turn is the leading cause of ARDS. Chronic smokers have increased rates of pneumococcal colonization and develop more severe pneumococcal pneumonia than nonsmokers; yet mechanistic connections between CS exposure, bacterial pneumonia, and ARDS pathogenesis remain relatively unexplored. We exposed mice to 3 wk of moderate whole body CS or air, followed by intranasal inoculation with an invasive serotype of S. pneumoniae. CS exposure alone caused no detectable lung injury or bronchoalveolar lavage (BAL) inflammation. During pneumococcal infection, CS-exposed mice had greater survival than air-exposed mice, in association with reduced systemic spread of bacteria from the lungs. However, when mice were treated with antibiotics after infection to improve clinical relevance, the survival benefit was lost, and CS-exposed mice had more pulmonary edema, increased numbers of BAL monocytes, and elevated monocyte and lymphocyte chemokines. CS-exposed antibiotic-treated mice also had higher serum surfactant protein D and angiopoietin-2, consistent with more severe lung epithelial and endothelial injury. The results indicate that acute CS exposure enhances the recruitment of immune cells to the lung during bacterial pneumonia, an effect that may provide microbiological benefit but simultaneously exposes the mice to more severe inflammatory lung injury. The inclusion of antibiotic treatment in preclinical studies of acute lung injury in bacterial pneumonia may enhance clinical relevance, particularly for future studies of current or emerging tobacco products.


Asunto(s)
Lesión Pulmonar Aguda , Antibacterianos/farmacología , Neumonía Bacteriana , Neumonía Neumocócica , Streptococcus pneumoniae/metabolismo , Contaminación por Humo de Tabaco/efectos adversos , Lesión Pulmonar Aguda/tratamiento farmacológico , Lesión Pulmonar Aguda/metabolismo , Lesión Pulmonar Aguda/patología , Animales , Femenino , Ratones , Neumonía Bacteriana/tratamiento farmacológico , Neumonía Bacteriana/metabolismo , Neumonía Bacteriana/patología , Neumonía Neumocócica/tratamiento farmacológico , Neumonía Neumocócica/metabolismo , Neumonía Neumocócica/patología , Edema Pulmonar/tratamiento farmacológico , Edema Pulmonar/metabolismo , Edema Pulmonar/patología
12.
Am J Physiol Lung Cell Mol Physiol ; 313(2): L193-L206, 2017 08 01.
Artículo en Inglés | MEDLINE | ID: mdl-28522559

RESUMEN

Electronic cigarettes (e-cigarettes or e-cigs) are designed to heat and aerosolize mixtures of vegetable glycerin, propylene glycol, nicotine, and flavoring additives, thus delivering nicotine by inhalation in the absence of combustion. These devices were originally developed to facilitate smoking cessation and have been available in the United States for over a decade. Since 2010, e-cig use has expanded rapidly, especially among adolescents, despite a paucity of short- and long-term safety data. Patterns of use have shifted to include never smokers and many dual users of e-cigs and combustible tobacco products. Over the last several years, research into the potential toxicities of e-cig aerosols has grown exponentially. In the interim, regulatory policymakers across the world have struggled with how to regulate an increasingly diverse array of suppliers and products, against a backdrop of strong advocacy from users, manufacturers, and tobacco control experts. Herein we provide an updated review of the pulmonary toxicity profile of these devices, summarizing evidence from cell culture, animal models, and human subjects. We highlight the major gaps in our current understanding, emphasize the challenges confronting the scientific and regulatory communities, and identify areas that require more research in this important and rapidly evolving field.


Asunto(s)
Sistemas Electrónicos de Liberación de Nicotina/efectos adversos , Lesión Pulmonar/inducido químicamente , Animales , Humanos , Nicotina/efectos adversos , Fumar/efectos adversos , Nicotiana/efectos adversos
13.
Nicotine Tob Res ; 19(9): 1033-1039, 2017 Sep 01.
Artículo en Inglés | MEDLINE | ID: mdl-28340238

RESUMEN

INTRODUCTION: Cigarette smoking (CS) remains a major public health concern and has recently been associated with an increased risk of developing acute respiratory distress syndrome (ARDS). Bronchoalveolar lavage (BAL) experiments in human volunteers have demonstrated that active smokers develop increased alveolar-epithelial barrier permeability to protein after inhaling lipopolysaccharide (LPS). Here we tested the hypothesis that short-term whole-body CS exposure would increase LPS-induced lung edema in mice. METHODS: Adult mice were exposed in a Teague TE-10 machine to CS from 3R4F cigarettes at 100 mg/m3 total suspended particulates for 12 days, then given LPS or saline intratracheally. Control mice were housed in the same room without CS exposure. Post-mortem measurements included gravimetric lung water and BAL protein, cell counts, and lung histology. Cytokines were measured in lung homogenate by ELISA and in plasma by Luminex and ELISA. RESULTS: In CS-exposed mice, intratracheal LPS caused greater increases in pulmonary edema by gravimetric measurement and histologic scoring. CS-exposed mice also had an increase in BAL neutrophilia, lung IL-6, and plasma CXCL9, a T-cell chemoattractant. Intratracheal LPS concentrated blood hemoglobin to a greater degree in CS-exposed mice, consistent with an increase in systemic vascular permeability. CONCLUSIONS: These results demonstrate that CS exposure in endotoxin injured mice increases the severity of acute lung injury. The increased lung IL-6 in CS-exposed LPS-injured mice indicates that this potent cytokine, previously shown to predict mortality in patients with ARDS, may play a role in exacerbating lung injury in smokers and may have utility as a biomarker of tobacco-related lung injury. IMPLICATIONS: Our results suggest that short-term CS exposure at levels that cause no overt lung injury may still prime the lung for acute inflammatory damage from a "second hit", a finding that mirrors the increased risk of developing ARDS in patients who smoke. This model may be useful for evaluating the acute pulmonary toxicity of existing and/or novel tobacco products and identifying biomarkers of tobacco-related lung injury.


Asunto(s)
Lipopolisacáridos/efectos adversos , Lesión Pulmonar , Pulmón , Edema Pulmonar , Contaminación por Humo de Tabaco/efectos adversos , Animales , Pulmón/efectos de los fármacos , Pulmón/inmunología , Pulmón/fisiopatología , Lesión Pulmonar/inducido químicamente , Lesión Pulmonar/inmunología , Lesión Pulmonar/fisiopatología , Ratones , Edema Pulmonar/inducido químicamente , Edema Pulmonar/inmunología , Edema Pulmonar/fisiopatología , Síndrome de Dificultad Respiratoria
15.
Am J Physiol Lung Cell Mol Physiol ; 307(5): L395-406, 2014 Sep 01.
Artículo en Inglés | MEDLINE | ID: mdl-25038188

RESUMEN

Viral pneumonia is a major cause of acute respiratory distress syndrome (ARDS). Anti-inflammatory therapies for viral-induced lung injury show promise in preclinical models. Mesenchymal stem/stromal cells (MSCs) are multipotent, self-renewing cells that secrete anti-inflammatory cytokines and epithelial and endothelial growth factors. We inoculated mice intranasally with influenza A (murine-adapted Puerto Rico/8/34) or PBS, and the mice were killed at multiple time points after infection for measures of lung injury and viral load. We report that influenza induces marked, long-lasting dysfunction of the alveolar-capillary barrier peaking at 1 wk but lasting longer than 3 wk postinfection. Weight loss, commonly employed as a criterion for euthanasia (and hence "survival"), was found to be poorly predictive of the severity of lung injury at its peak; rather, persistent weight loss 11 days postinfection identified mice with impaired injury resolution. Murine and human bone marrow-derived MSCs (obtained from the National Institutes of Health repository) were then administered intravenously during the rapid phase of injury progression. Murine MSCs (mMSCs) given two times 24 h apart failed to improve weight loss, lung water, bronchoalveolar lavage inflammation, or histology. However, mMSCs prevented influenza-induced thrombocytosis and caused a modest reduction in lung viral load at day 7. Human MSCs administered intravenously showed a similar lack of efficacy. The results demonstrate that the influenza murine model bears important similarities to the slow resolution of ARDS in patients. Despite their potent therapeutic effects in many models of acute inflammation and lung injury, MSCs do not improve influenza-mediated lung injury in mice.


Asunto(s)
Lesión Pulmonar Aguda/etiología , Barrera Alveolocapilar/fisiopatología , Capilares/fisiopatología , Gripe Humana/complicaciones , Trasplante de Células Madre Mesenquimatosas/efectos adversos , Infecciones por Orthomyxoviridae/complicaciones , Alveolos Pulmonares/fisiopatología , Lesión Pulmonar Aguda/patología , Animales , Lavado Broncoalveolar , Permeabilidad Capilar , Tratamiento Basado en Trasplante de Células y Tejidos/efectos adversos , Células Cultivadas , Femenino , Humanos , Gripe Humana/patología , Gripe Humana/terapia , Gripe Humana/virología , Células Madre Mesenquimatosas/citología , Ratones , Ratones Endogámicos C57BL , Infecciones por Orthomyxoviridae/patología , Infecciones por Orthomyxoviridae/terapia , Infecciones por Orthomyxoviridae/virología
17.
Res Sq ; 2024 Feb 21.
Artículo en Inglés | MEDLINE | ID: mdl-38464245

RESUMEN

Background: Streptococcus pneumoniae is the most common bacterial cause of community acquired pneumonia and the acute respiratory distress syndrome (ARDS). Some clinical trials have demonstrated a beneficial effect of corticosteroid therapy in community acquired pneumonia, COVID-19, and ARDS, but the mechanisms of this benefit remain unclear. The objective of this study was to investigate the effects of corticosteroids on the pulmonary biology of pneumococcal pneumonia in an observational cohort of mechanically ventilated patients and in a mouse model of bacterial pneumonia with Streptococcus pneumoniae. Methods: We studied gene expression with lower respiratory tract transcriptomes from a cohort of mechanically ventilated patients and in mice. We also carried out comprehensive physiologic, biochemical, and histological analyses in mice to identify the mechanisms of lung injury in Streptococcus pneumoniae with and without adjunctive steroid therapy. Results: Transcriptomic analysis identified pleiotropic effects of steroid therapy on the lower respiratory tract in critically ill patients with pneumococcal pneumonia, findings that were reproducible in mice. In mice with pneumonia, dexamethasone in combination with ceftriaxone reduced (1) pulmonary edema formation, (2) alveolar protein permeability, (3) proinflammatory cytokine release, (4) histopathologic lung injury score, and (5) hypoxemia but did not increase bacterial burden. Conclusions: The gene expression studies in patients and in the mice support the clinical relevance of the mouse studies, which replicate several features of pneumococcal pneumonia and steroid therapy in humans. In combination with appropriate antibiotic therapy in mice, treatment of pneumococcal pneumonia with steroid therapy reduced hypoxemia, pulmonary edema, lung permeability, and histologic criteria of lung injury, and also altered inflammatory responses at the protein and gene expression level. The results from these studies provide evidence for the mechanisms that may explain the beneficial effects of glucocorticoid therapy in patients with community acquired pneumonia from Streptococcus Pneumoniae.

18.
Front Immunol ; 14: 1076772, 2023.
Artículo en Inglés | MEDLINE | ID: mdl-36999019

RESUMEN

E-cigarette use has rapidly increased as an alternative means of nicotine delivery by heated aerosolization. Recent studies demonstrate nicotine-containing e-cigarette aerosols can have immunosuppressive and pro-inflammatory effects, but it remains unclear how e-cigarettes and the constituents of e-liquids may impact acute lung injury and the development of acute respiratory distress syndrome caused by viral pneumonia. Therefore, in these studies, mice were exposed one hour per day over nine consecutive days to aerosol generated by the clinically-relevant tank-style Aspire Nautilus aerosolizing e-liquid containing a mixture of vegetable glycerin and propylene glycol (VG/PG) with or without nicotine. Exposure to the nicotine-containing aerosol resulted in clinically-relevant levels of plasma cotinine, a nicotine-derived metabolite, and an increase in the pro-inflammatory cytokines IL-17A, CXCL1, and MCP-1 in the distal airspaces. Following the e-cigarette exposure, mice were intranasally inoculated with influenza A virus (H1N1 PR8 strain). Exposure to aerosols generated from VG/PG with and without nicotine caused greater influenza-induced production in the distal airspaces of the pro-inflammatory cytokines IFN-γ, TNFα, IL-1ß, IL-6, IL-17A, and MCP-1 at 7 days post inoculation (dpi). Compared to the aerosolized carrier VG/PG, in mice exposed to aerosolized nicotine there was a significantly lower amount of Mucin 5 subtype AC (MUC5AC) in the distal airspaces and significantly higher lung permeability to protein and viral load in lungs at 7 dpi with influenza. Additionally, nicotine caused relative downregulation of genes associated with ciliary function and fluid clearance and an increased expression of pro-inflammatory pathways at 7 dpi. These results show that (1) the e-liquid carrier VG/PG increases the pro-inflammatory immune responses to viral pneumonia and that (2) nicotine in an e-cigarette aerosol alters the transcriptomic response to pathogens, blunts host defense mechanisms, increases lung barrier permeability, and reduces viral clearance during influenza infection. In conclusion, acute exposure to aerosolized nicotine can impair clearance of viral infection and exacerbate lung injury, findings that have implications for the regulation of e-cigarette products.


Asunto(s)
Sistemas Electrónicos de Liberación de Nicotina , Subtipo H1N1 del Virus de la Influenza A , Gripe Humana , Neumonía Viral , Ratones , Animales , Humanos , Nicotina/efectos adversos , Interleucina-17/farmacología , Aerosoles y Gotitas Respiratorias , Pulmón , Expresión Génica
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