hydrochloric acid has been researched along with Acute Lung Injury in 44 studies
Hydrochloric Acid: A strong corrosive acid that is commonly used as a laboratory reagent. It is formed by dissolving hydrogen chloride in water. GASTRIC ACID is the hydrochloric acid component of GASTRIC JUICE.
hydrogen chloride : A mononuclear parent hydride consisting of covalently bonded hydrogen and chlorine atoms.
Acute Lung Injury: A condition of lung damage that is characterized by bilateral pulmonary infiltrates (PULMONARY EDEMA) rich in NEUTROPHILS, and in the absence of clinical HEART FAILURE. This can represent a spectrum of pulmonary lesions, endothelial and epithelial, due to numerous factors (physical, chemical, or biological).
Excerpt | Relevance | Reference |
---|---|---|
"Thromboxane A2 (TXA2) is produced in the lungs of patients suffering from acute lung injury (ALI)." | 7.83 | Thromboxane A2 exacerbates acute lung injury via promoting edema formation. ( Horikami, D; Kobayashi, K; Maeda, S; Murata, T; Nakamura, T; Omori, K; Yamazaki, A, 2016) |
"HCl induced pulmonary fibrosis with an increased Ashcroft score, which was higher in adults, and a reduction in alveolar Mean Alveolar Linear Intercept (MALI)." | 5.62 | Age-Dependent Chronic Lung Injury and Pulmonary Fibrosis following Single Exposure to Hydrochloric Acid. ( Catravas, JD; Colunga Biancatelli, RML; Dimitropoulou, C; Solopov, P, 2021) |
"Acute lung injury is a life-threatening syndrome characterized by overwhelming lung inflammation and increased microvascular permeability, which causes a high mortality rate worldwide." | 5.39 | Praeruptorin D and E attenuate lipopolysaccharide/hydrochloric acid induced acute lung injury in mice. ( Jin, H; Kong, HY; Li, JR; Li, ZH; Tian, YX; Wu, SG; Wu, XY; Yu, PJ; Zhang, JJ; Zhang, JY; Zhu, ZG, 2013) |
"Selective intra-bronchial instillation of hydrochloric acid (HCl) to the murine left mainstem bronchus causes acute tissue injury with histopathologic findings similar to human acute respiratory distress syndrome (ARDS)." | 3.91 | A Model of Self-limited Acute Lung Injury by Unilateral Intra-bronchial Acid Instillation. ( Abdulnour, RE; Colby, JK; Levy, BD; Tavares, AH, 2019) |
"An animal model of acute lung injury (ALI) was established in rabbits by an intratracheal injection of hydrochloric acid (HCl) in rabbits." | 3.85 | Regulating autonomic nervous system homeostasis improves pulmonary function in rabbits with acute lung injury. ( Bo, Y; Li, W; Liu, Y; Tao, T, 2017) |
"Thromboxane A2 (TXA2) is produced in the lungs of patients suffering from acute lung injury (ALI)." | 3.83 | Thromboxane A2 exacerbates acute lung injury via promoting edema formation. ( Horikami, D; Kobayashi, K; Maeda, S; Murata, T; Nakamura, T; Omori, K; Yamazaki, A, 2016) |
"5% hypertonic saline in an experimental model of acute lung injury induced by hydrochloric acid." | 3.81 | Effect of hypertonic saline treatment on the inflammatory response after hydrochloric acid-induced lung injury in pigs. ( Auler Junior, JO; Fantoni, DT; Gutierrez, PS; Holms, CA; Kahvegian, M; Massoco, CO; Otsuki, DA, 2015) |
"Aspiration of hydrochloric acid (HCl)-containing gastric juice leads to acute lung injury (ALI) and hypoxemic respiratory failure due to an exuberant inflammatory response associated with pulmonary edema from increased vascular and epithelial permeability." | 3.78 | Acid-induced acute lung injury in mice is associated with P44/42 and c-Jun N-terminal kinase activation and requires the function of tumor necrosis factor α receptor I. ( Armaganidis, A; Kollias, G; Kotanidou, A; Magkou, C; Maniatis, NA; Nikitopoulou, I; Orfanos, SE; Roussos, C; Sfika, A; Vassiliou, AG, 2012) |
"HCl induced pulmonary fibrosis with an increased Ashcroft score, which was higher in adults, and a reduction in alveolar Mean Alveolar Linear Intercept (MALI)." | 1.62 | Age-Dependent Chronic Lung Injury and Pulmonary Fibrosis following Single Exposure to Hydrochloric Acid. ( Catravas, JD; Colunga Biancatelli, RML; Dimitropoulou, C; Solopov, P, 2021) |
"Objective As pulmonary inflammation stimulates TF expression and TF modulates immune responses, we aimed to elucidate its impact on ALI." | 1.46 | Myeloid but not epithelial tissue factor exerts protective anti-inflammatory effects in acid aspiration-induced acute lung injury. ( Assinger, A; Ay, C; Datler, H; Hell, L; Horvath, V; Jilma, B; Knapp, S; Kral-Pointner, JB; Mackman, N; Niederreiter, B; Schabbauer, G; Schmid, JA; Schrottmaier, WC, 2017) |
"Acute lung injury is a life-threatening syndrome characterized by overwhelming lung inflammation and increased microvascular permeability, which causes a high mortality rate worldwide." | 1.39 | Praeruptorin D and E attenuate lipopolysaccharide/hydrochloric acid induced acute lung injury in mice. ( Jin, H; Kong, HY; Li, JR; Li, ZH; Tian, YX; Wu, SG; Wu, XY; Yu, PJ; Zhang, JJ; Zhang, JY; Zhu, ZG, 2013) |
"Lung inflammation was analyzed by quantifying cell influx, cytokine levels, and oxidized lipids." | 1.35 | Bbeta(15-42) protects against acid-induced acute lung injury and secondary pseudomonas pneumonia in vivo. ( Bauer, M; Binder, CJ; Dietl, W; Doninger, B; Haslinger, I; Knapp, S; Matt, U; Mesteri, I; Perkmann, T; Petzelbauer, P; Reingruber, S; Schabbauer, G; Warszawska, JM, 2009) |
Timeframe | Studies, this research(%) | All Research% |
---|---|---|
pre-1990 | 0 (0.00) | 18.7374 |
1990's | 0 (0.00) | 18.2507 |
2000's | 4 (9.09) | 29.6817 |
2010's | 35 (79.55) | 24.3611 |
2020's | 5 (11.36) | 2.80 |
Authors | Studies |
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Zou, B | 1 |
Goodwin, M | 1 |
Saleem, D | 1 |
Jiang, W | 1 |
Tang, J | 1 |
Chu, Y | 1 |
Munford, RS | 1 |
Lu, M | 1 |
Tavares, AH | 1 |
Colby, JK | 1 |
Levy, BD | 1 |
Abdulnour, RE | 1 |
Puri, G | 1 |
Naura, AS | 2 |
Guillamat-Prats, R | 2 |
Camprubí-Rimblas, M | 1 |
Puig, F | 2 |
Herrero, R | 2 |
Tantinyà, N | 1 |
Serrano-Mollar, A | 2 |
Artigas, A | 2 |
Yoshida, K | 1 |
Ikegami, Y | 1 |
Obara, S | 1 |
Sato, K | 1 |
Murakawa, M | 1 |
Colunga Biancatelli, RML | 1 |
Solopov, P | 1 |
Dimitropoulou, C | 1 |
Catravas, JD | 1 |
Kral-Pointner, JB | 2 |
Schrottmaier, WC | 2 |
Horvath, V | 1 |
Datler, H | 1 |
Hell, L | 1 |
Ay, C | 1 |
Niederreiter, B | 1 |
Jilma, B | 1 |
Schmid, JA | 1 |
Assinger, A | 2 |
Mackman, N | 1 |
Knapp, S | 3 |
Schabbauer, G | 3 |
Liu, Y | 1 |
Tao, T | 1 |
Li, W | 1 |
Bo, Y | 1 |
Güzel, A | 1 |
Doğan, E | 1 |
Türkçü, G | 1 |
Kuyumcu, M | 1 |
Kaplan, İ | 1 |
Çelik, F | 1 |
Yıldırım, ZB | 1 |
Zhou, T | 1 |
Yu, Z | 2 |
Jian, MY | 2 |
Ahmad, I | 1 |
Trempus, C | 1 |
Wagener, BM | 1 |
Pittet, JF | 1 |
Aggarwal, S | 1 |
Garantziotis, S | 1 |
Song, W | 2 |
Matalon, S | 2 |
Wang, X | 1 |
Chen, Q | 1 |
Tian, W | 1 |
Wang, J | 1 |
Cheng, L | 1 |
Lu, J | 1 |
Chen, M | 2 |
Pei, Y | 1 |
Li, C | 1 |
Chen, G | 1 |
Gu, N | 1 |
Pourfathi, M | 2 |
Cereda, M | 1 |
Chatterjee, S | 1 |
Xin, Y | 2 |
Kadlecek, S | 1 |
Duncan, I | 1 |
Hamedani, H | 2 |
Siddiqui, S | 1 |
Profka, H | 2 |
Ehrich, J | 1 |
Ruppert, K | 2 |
Rizi, RR | 2 |
Setzer, F | 1 |
Schmidt, B | 1 |
Hueter, L | 1 |
Schwarzkopf, K | 1 |
Sänger, J | 1 |
Schreiber, T | 1 |
Sahu, B | 1 |
Sandhir, R | 1 |
Salzmann, M | 1 |
Mussbacher, M | 1 |
Schmidt, GJ | 1 |
Moser, B | 1 |
Heber, S | 1 |
Birnecker, B | 1 |
Paar, H | 1 |
Zellner, M | 1 |
Cornélio Favarin, D | 1 |
Martins Teixeira, M | 1 |
Lemos de Andrade, E | 1 |
de Freitas Alves, C | 1 |
Lazo Chica, JE | 1 |
Artério Sorgi, C | 1 |
Faccioli, LH | 1 |
Paula Rogerio, A | 1 |
Yu, PJ | 1 |
Li, JR | 1 |
Zhu, ZG | 1 |
Kong, HY | 1 |
Jin, H | 1 |
Zhang, JY | 1 |
Tian, YX | 1 |
Li, ZH | 1 |
Wu, XY | 1 |
Zhang, JJ | 1 |
Wu, SG | 1 |
Kreyer, S | 1 |
Muders, T | 1 |
Luepschen, H | 1 |
Kricklies, C | 1 |
Linden, K | 1 |
Soehle, M | 1 |
Zinserling, J | 1 |
Putensen, C | 1 |
Wrigge, H | 1 |
Lampland, AL | 1 |
Wolfson, MR | 1 |
Mazela, J | 1 |
Henderson, C | 1 |
Gregory, TJ | 1 |
Meyers, P | 1 |
Plumm, B | 1 |
Worwa, C | 1 |
Mammel, MC | 1 |
Puntorieri, V | 3 |
Hiansen, JQ | 1 |
McCaig, LA | 2 |
Yao, LJ | 3 |
Veldhuizen, RA | 4 |
Lewis, JF | 4 |
Yamashita, CM | 3 |
Fessler, MB | 1 |
Vasanthamohan, L | 1 |
Lac, J | 1 |
Madenspacher, J | 1 |
McCaig, L | 1 |
Yao, L | 1 |
Wang, L | 2 |
Mehta, S | 1 |
Zhang, Y | 1 |
Zhao, Z | 1 |
Guan, L | 1 |
Mao, L | 1 |
Li, S | 1 |
Guan, X | 1 |
Guo, L | 1 |
Ding, L | 1 |
Cong, C | 1 |
Wen, T | 1 |
Zhao, J | 1 |
Balakrishna, S | 1 |
Achanta, S | 1 |
Doran, SF | 1 |
Liu, B | 1 |
Kaelberer, MM | 1 |
Sui, A | 1 |
Cheung, M | 1 |
Leishman, E | 1 |
Eidam, HS | 1 |
Ye, G | 1 |
Willette, RN | 1 |
Thorneloe, KS | 1 |
Bradshaw, HB | 1 |
Jordt, SE | 1 |
Chuang, YC | 1 |
Shaw, HM | 1 |
Chen, CC | 1 |
Pan, HJ | 1 |
Lai, WC | 1 |
Huang, HL | 1 |
Yin, J | 1 |
Michalick, L | 1 |
Tang, C | 1 |
Tabuchi, A | 1 |
Goldenberg, N | 1 |
Dan, Q | 1 |
Awwad, K | 1 |
Erfinanda, L | 1 |
Nouailles, G | 1 |
Witzenrath, M | 1 |
Vogelzang, A | 1 |
Lv, L | 1 |
Lee, WL | 1 |
Zhang, H | 1 |
Rotstein, O | 1 |
Kapus, A | 1 |
Szaszi, K | 1 |
Fleming, I | 1 |
Liedtke, WB | 1 |
Kuppe, H | 1 |
Kuebler, WM | 1 |
Holms, CA | 1 |
Otsuki, DA | 2 |
Kahvegian, M | 1 |
Massoco, CO | 1 |
Fantoni, DT | 2 |
Gutierrez, PS | 1 |
Auler Junior, JO | 1 |
Gómez, MN | 1 |
Tijero, J | 1 |
Chimenti, L | 1 |
Stelmakh, O | 1 |
Blanch, L | 1 |
Matthay, MA | 2 |
Kobayashi, K | 1 |
Horikami, D | 1 |
Omori, K | 1 |
Nakamura, T | 1 |
Yamazaki, A | 1 |
Maeda, S | 1 |
Murata, T | 1 |
Howlett, CJ | 1 |
Kadlecek, SJ | 1 |
Cereda, MF | 1 |
Siddiqui, SM | 1 |
Drachman, NA | 1 |
Rajaei, JN | 1 |
Marumo, CK | 1 |
Margarido, CB | 1 |
Ambrósio, AM | 1 |
Pelosi, P | 1 |
Auler, JO | 1 |
Trabold, B | 1 |
Pawlik, M | 1 |
Nietsch, R | 1 |
Bitzinger, DI | 1 |
Gruber, M | 1 |
Ittner, KP | 1 |
Lubnow, M | 1 |
Matt, U | 1 |
Warszawska, JM | 1 |
Bauer, M | 1 |
Dietl, W | 1 |
Mesteri, I | 1 |
Doninger, B | 1 |
Haslinger, I | 1 |
Perkmann, T | 1 |
Binder, CJ | 1 |
Reingruber, S | 1 |
Petzelbauer, P | 1 |
Koizumi, T | 1 |
Tsushima, K | 1 |
Yokoyama, T | 1 |
Kubo, K | 1 |
Baba, A | 1 |
Zarbock, A | 1 |
Bishop, J | 1 |
Müller, H | 1 |
Schmolke, M | 1 |
Buschmann, K | 1 |
Van Aken, H | 1 |
Singbartl, K | 1 |
Walker, MG | 1 |
Patterson, EK | 1 |
Joseph, MG | 1 |
Cepinskas, G | 1 |
Parthasarathi, K | 1 |
Bhattacharya, J | 2 |
Patel, BV | 1 |
Wilson, MR | 1 |
Takata, M | 1 |
Zambelli, V | 1 |
Di Grigoli, G | 1 |
Scanziani, M | 1 |
Valtorta, S | 1 |
Amigoni, M | 1 |
Belloli, S | 1 |
Messa, C | 1 |
Pesenti, A | 1 |
Fazio, F | 1 |
Bellani, G | 1 |
Moresco, RM | 1 |
Emin, MT | 1 |
Sun, L | 1 |
Huertas, A | 1 |
Das, S | 1 |
Bhattacharya, S | 1 |
Howard, JP | 1 |
Maniatis, NA | 1 |
Sfika, A | 1 |
Nikitopoulou, I | 1 |
Vassiliou, AG | 1 |
Magkou, C | 1 |
Armaganidis, A | 1 |
Roussos, C | 1 |
Kollias, G | 1 |
Orfanos, SE | 1 |
Kotanidou, A | 1 |
Thammanomai, A | 1 |
Hamakawa, H | 1 |
Bartolák-Suki, E | 1 |
Suki, B | 1 |
Zhao, SP | 1 |
Guo, QL | 1 |
Ai, YH | 1 |
Wang, RK | 1 |
Wang, E | 1 |
He, M | 1 |
44 other studies available for hydrochloric acid and Acute Lung Injury
Article | Year |
---|---|
A highly conserved host lipase deacylates oxidized phospholipids and ameliorates acute lung injury in mice.
Topics: Acute Lung Injury; Animals; Carboxylic Ester Hydrolases; Cells, Cultured; Hydrochloric Acid; Inflamm | 2021 |
A Model of Self-limited Acute Lung Injury by Unilateral Intra-bronchial Acid Instillation.
Topics: Acute Lung Injury; Animals; Bronchi; Disease Models, Animal; Hydrochloric Acid; Leukocytes; Lung; Ma | 2019 |
Critical role of mitochondrial oxidative stress in acid aspiration induced ALI in mice.
Topics: Acute Lung Injury; Animals; Bronchoalveolar Lavage Fluid; Cytokines; Disease Models, Animal; Gene Ex | 2020 |
Alveolar Type II Cells or Mesenchymal Stem Cells: Comparison of Two Different Cell Therapies for the Treatment of Acute Lung Injury in Rats.
Topics: Acute Lung Injury; Alveolar Epithelial Cells; Animals; Bone Marrow Cells; Cells, Cultured; Cytokines | 2020 |
Investigation of anti-inflammatory effects of oxygen nanobubbles in a rat hydrochloric acid lung injury model.
Topics: Acute Lung Injury; Animals; Anti-Inflammatory Agents; Hydrochloric Acid; Lung; Oxygen; Rats | 2020 |
Age-Dependent Chronic Lung Injury and Pulmonary Fibrosis following Single Exposure to Hydrochloric Acid.
Topics: Acute Lung Injury; Aging; Animals; Bronchoalveolar Lavage Fluid; Hydrochloric Acid; Inflammation; Ma | 2021 |
Myeloid but not epithelial tissue factor exerts protective anti-inflammatory effects in acid aspiration-induced acute lung injury.
Topics: Acute Lung Injury; Animals; Antithrombin III; Blood Coagulation; Cells, Cultured; Chemotaxis, Leukoc | 2017 |
Regulating autonomic nervous system homeostasis improves pulmonary function in rabbits with acute lung injury.
Topics: Acute Lung Injury; Animals; Arterial Pressure; Autonomic Nerve Block; Bronchoalveolar Lavage Fluid; | 2017 |
Dexmedetomidine and Magnesium Sulfate: A Good Combination Treatment for Acute Lung Injury?
Topics: Acute Lung Injury; Administration, Intravenous; Animals; Anti-Inflammatory Agents; Antioxidants; Dex | 2019 |
Instillation of hyaluronan reverses acid instillation injury to the mammalian blood gas barrier.
Topics: Acute Lung Injury; Animals; Blood-Air Barrier; Bronchoalveolar Lavage Fluid; Cells, Cultured; Humans | 2018 |
Measurement of In Vitro Single Cell Temperature by Novel Thermocouple Nanoprobe in Acute Lung Injury Models.
Topics: Acute Lung Injury; Adenosine Triphosphate; Animals; Cell Line; Cobalt; Disease Models, Animal; Energ | 2017 |
Lung Metabolism and Inflammation during Mechanical Ventilation; An Imaging Approach.
Topics: Acute Lung Injury; Animals; Biomarkers; Carbon Isotopes; Disease Models, Animal; Gene Expression; Hu | 2018 |
Characterization of the seven-day course of pulmonary response following unilateral lung acid injury in rats.
Topics: Acute Lung Injury; Animals; Arterial Pressure; Bronchoalveolar Lavage Fluid; Case-Control Studies; C | 2018 |
Two hit induced acute lung injury impairs cognitive function in mice: A potential model to study cross talk between lung and brain.
Topics: Acute Lung Injury; Animals; Blood-Brain Barrier; Brain; Cognition; Cognitive Dysfunction; Disease Mo | 2018 |
Platelet PI3K Modulates Innate Leukocyte Extravasation during Acid-Induced Acute Lung Inflammation.
Topics: Acute Lung Injury; Animals; Blood Platelets; Female; Gene Deletion; Hydrochloric Acid; Hypoxia; Immu | 2019 |
Anti-inflammatory effects of ellagic acid on acute lung injury induced by acid in mice.
Topics: Acute Lung Injury; Animals; Anti-Inflammatory Agents; Ellagic Acid; Female; Hydrochloric Acid; Inter | 2013 |
Praeruptorin D and E attenuate lipopolysaccharide/hydrochloric acid induced acute lung injury in mice.
Topics: Acute Lung Injury; Animals; Anti-Inflammatory Agents; Bronchoalveolar Lavage Fluid; Cell Count; Coum | 2013 |
The effect of pumpless extracorporeal CO2 removal on regional perfusion of the brain in experimental acute lung injury.
Topics: Acidosis; Acute Lung Injury; Animals; Blood Gas Analysis; Carbon Dioxide; Cardiac Output; Cerebrovas | 2013 |
Aerosolized KL4 surfactant improves short-term survival and gas exchange in spontaneously breathing newborn pigs with hydrochloric acid-induced acute lung injury.
Topics: Acute Lung Injury; Administration, Inhalation; Aerosols; Animals; Animals, Newborn; Continuous Posit | 2014 |
The effects of exogenous surfactant administration on ventilation-induced inflammation in mouse models of lung injury.
Topics: Acute Lung Injury; Animals; Bronchoalveolar Lavage Fluid; Cytokines; Disease Models, Animal; Eicosan | 2013 |
Apolipoprotein E-deficient mice are susceptible to the development of acute lung injury.
Topics: Acute Lung Injury; Animals; Apolipoproteins E; Disease Models, Animal; Genetic Predisposition to Dis | 2014 |
N-acetyl-heparin attenuates acute lung injury caused by acid aspiration mainly by antagonizing histones in mice.
Topics: Acute Lung Injury; Analysis of Variance; Animals; Blood Gas Analysis; Blotting, Western; Heparin; Hi | 2014 |
TRPV4 inhibition counteracts edema and inflammation and improves pulmonary function and oxygen saturation in chemically induced acute lung injury.
Topics: Acute Lung Injury; Animals; Anti-Inflammatory Agents; Bronchoalveolar Lavage Fluid; Chlorine; HEK293 | 2014 |
Short-term glutamine supplementation decreases lung inflammation and the receptor for advanced glycation end-products expression in direct acute lung injury in mice.
Topics: Acute Lung Injury; Animals; Bronchoalveolar Lavage Fluid; Cyclooxygenase 2; Dietary Supplements; Enz | 2014 |
Role of Transient Receptor Potential Vanilloid 4 in Neutrophil Activation and Acute Lung Injury.
Topics: Acute Lung Injury; Animals; Bone Marrow Transplantation; Calcium Signaling; Capillary Permeability; | 2016 |
Effect of hypertonic saline treatment on the inflammatory response after hydrochloric acid-induced lung injury in pigs.
Topics: Acute Lung Injury; Animals; Anti-Inflammatory Agents; Blood Cell Count; Cytokines; Disease Models, A | 2015 |
A new experimental model of acid- and endotoxin-induced acute lung injury in rats.
Topics: Acute Lung Injury; Animals; Apoptosis; Disease Models, Animal; Hydrochloric Acid; Lipopolysaccharide | 2016 |
Thromboxane A2 exacerbates acute lung injury via promoting edema formation.
Topics: Acute Lung Injury; Animals; Hydrochloric Acid; Lipopolysaccharides; Male; Mice; Mice, Inbred BALB C; | 2016 |
Lack of matrix metalloproteinase 3 in mouse models of lung injury ameliorates the pulmonary inflammatory response in female but not in male mice.
Topics: Acute Lung Injury; Animals; Female; Humans; Hydrochloric Acid; Lipopolysaccharides; Male; Matrix Met | 2016 |
In vivo imaging of the progression of acute lung injury using hyperpolarized [1-
Topics: Acute Lung Injury; Animals; Carbon Isotopes; Disease Progression; Hydrochloric Acid; Image Processin | 2017 |
Hemodynamic effects of PEEP in a porcine model of HCl-induced mild acute lung injury.
Topics: Acute Lung Injury; Animals; Disease Models, Animal; Echocardiography, Transesophageal; Hemodynamics; | 2009 |
Bosentan reduces oxidative burst in acid aspiration-induced lung injury in rats.
Topics: Acute Lung Injury; Animals; Anti-Inflammatory Agents; Bosentan; Hydrochloric Acid; Male; Neutrophils | 2009 |
Bbeta(15-42) protects against acid-induced acute lung injury and secondary pseudomonas pneumonia in vivo.
Topics: Acute Lung Injury; Animals; Disease Models, Animal; Fibrin Fibrinogen Degradation Products; Hydrochl | 2009 |
Exogenous surfactant instillation attenuates inflammatory response to acid-induced lung injury in rat.
Topics: Acute Lung Injury; Animals; Anti-Inflammatory Agents; Hydrochloric Acid; Lung; Male; Pneumonia, Aspi | 2010 |
Chemokine homeostasis vs. chemokine presentation during severe acute lung injury: the other side of the Duffy antigen receptor for chemokines.
Topics: Acute Lung Injury; Animals; Bleeding Time; Blood Cell Count; Cell Aggregation; Chemokine CXCL1; Chem | 2010 |
The effect of tidal volume on systemic inflammation in Acid-induced lung injury.
Topics: Acute Lung Injury; Animals; Bronchoalveolar Lavage Fluid; Cell Adhesion Molecules; Chemokines; Cytok | 2011 |
Localized acid instillation by a wedged-catheter method reveals a role for vascular gap junctions in spatial expansion of acid injury.
Topics: Acute Lung Injury; Animals; Capillary Permeability; Catheterization; Endothelium, Vascular; Gap Junc | 2011 |
Resolution of acute lung injury and inflammation: a translational mouse model.
Topics: Acute Lung Injury; Animals; Bronchoalveolar Lavage Fluid; Cytokines; Disease Models, Animal; Hydroch | 2012 |
Time course of metabolic activity and cellular infiltration in a murine model of acid-induced lung injury.
Topics: Acute Lung Injury; Animals; Blood Gas Analysis; Cell Proliferation; Disease Models, Animal; Female; | 2012 |
Platelets induce endothelial tissue factor expression in a mouse model of acid-induced lung injury.
Topics: Acute Lung Injury; Animals; Antigens, CD; Blood Coagulation; Blood Platelets; Cadherins; Disease Mod | 2012 |
Progress in modelling acute lung injury in a pre-clinical mouse model.
Topics: Acute Lung Injury; Animals; Disease Models, Animal; Hydrochloric Acid; Male; Pneumonia; Translationa | 2012 |
Acid-induced acute lung injury in mice is associated with P44/42 and c-Jun N-terminal kinase activation and requires the function of tumor necrosis factor α receptor I.
Topics: Acute Lung Injury; Animals; Apoptosis; Bronchoalveolar Lavage; Caspase 3; Disease Models, Animal; En | 2012 |
Combined effects of ventilation mode and positive end-expiratory pressure on mechanics, gas exchange and the epithelium in mice with acute lung injury.
Topics: Acute Lung Injury; Animals; Bronchoalveolar Lavage Fluid; Cadherins; Epithelium; Humans; Hydrochlori | 2013 |
[Prophylactic effect of ambroxol on acute hydrochloric acid aspiration - induced lung injury].
Topics: Acute Lung Injury; Ambroxol; Animals; Disease Models, Animal; Expectorants; Female; Hydrochloric Aci | 2005 |