Literature DB >> 17693942

Upper airway mucus deposition in lung tissue of burn trauma victims.

Robert A Cox1, Ron P Mlcak, David L Chinkes, Sam Jacob, Perenlei Enkhbaatar, Jesse Jaso, Lauren P Parish, Daniel L Traber, Marc G Jeschke, David N Herndon, Hal K Hawkins.   

Abstract

Previous study in an ovine model of smoke inhalation and burn (S + B) injury has shown distal migration of upper airway mucus. This study examines the localization of an upper airway gland specific mucus, mucin 5B (MUC5B) in lung autopsy tissues of burn-only injury and in victims of S + B injury. We hypothesize that victims with S + B injury would exhibit increased distal migration of MUC5B than that seen in victims of burn-only injury. Autopsy lung tissue from victims of burn injury alone (n = 38) and combined S + B injury (n = 22) were immunostained for MUC5B. No normal lung tissues were included in the study. Semiquantitative analysis of the extent of MUC5B in bronchioles and parenchyma was performed on masked slides. Irrespective of injury conditions, all victims showed MUC5B in bronchioles. Mucin 5B was seen in the parenchyma except in two burn victims. No statistically significant difference was seen in the mean bronchiolar and parenchyma MUC5B scores between S + B and burn-only victims (P > 0.05). No strong statistical correlation of MUC5B scores with days postinjury or to the number of ventilatory days was evident. The percentage of pneumonia, identified histologically, was also similar between study groups. This study did not confirm our results in an ovine model of S + B injury. In contrast, virtually all pediatric burn victims, regardless of concomitant inhalation injury, showed MUC5B in their bronchioles and parenchyma. Increased mucus synthesis and/or impaired mucociliary function may contribute to the pulmonary pathophysiology associated with burn injury.

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Year:  2008        PMID: 17693942     DOI: 10.1097/shk.0b013e31814541dd

Source DB:  PubMed          Journal:  Shock        ISSN: 1073-2322            Impact factor:   3.454


  20 in total

1.  Physiologic and molecular changes in the tracheal epithelium of rats following burn injury.

Authors:  Sam Jacob; Yong Zhu; Robert Kraft; Christopher Cotto; Joseph R Carmical; Thomas G Wood; Perenlei Enkhbaatar; David N Herndon; Hal K Hawkins; Robert A Cox
Journal:  Int J Burns Trauma       Date:  2015-03-20

2.  Delayed asphyxia due to inhalation injury.

Authors:  Tony Fracasso; Andreas Schmeling
Journal:  Int J Legal Med       Date:  2010-05-18       Impact factor: 2.686

Review 3.  Inhalation Injury in the Burned Patient.

Authors:  Guillermo Foncerrada; Derek M Culnan; Karel D Capek; Sagrario González-Trejo; Janos Cambiaso-Daniel; Lee C Woodson; David N Herndon; Celeste C Finnerty; Jong O Lee
Journal:  Ann Plast Surg       Date:  2018-03       Impact factor: 1.539

4.  Preclinical evaluation of epinephrine nebulization to reduce airway hyperemia and improve oxygenation after smoke inhalation injury.

Authors:  Matthias Lange; Atsumori Hamahata; Daniel L Traber; Robert A Cox; Gabriela A Kulp; Yoshimitsu Nakano; Lillian D Traber; David N Herndon; Perenlei Enkhbaatar
Journal:  Crit Care Med       Date:  2011-04       Impact factor: 7.598

5.  Substance P antagonist CP-96345 blocks lung vascular leakage and inflammation more effectively than its stereoisomer CP-96344 in a mouse model of smoke inhalation and burn injury.

Authors:  Sam Jacob; Donald J Deyo; Robert A Cox; Reuben K Jacob; David N Herndon; Daniel L Traber; Hal K Hawkins
Journal:  Toxicol Mech Methods       Date:  2010-05       Impact factor: 2.987

Review 6.  Inhaled anticoagulation regimens for the treatment of smoke inhalation-associated acute lung injury: a systematic review.

Authors:  Andrew C Miller; Elamin M Elamin; Anthony F Suffredini
Journal:  Crit Care Med       Date:  2014-02       Impact factor: 7.598

7.  Bacterial respiratory tract infections are promoted by systemic hyperglycemia after severe burn injury in pediatric patients.

Authors:  Robert Kraft; David N Herndon; Ronald P Mlcak; Celeste C Finnerty; Robert A Cox; Felicia N Williams; Marc G Jeschke
Journal:  Burns       Date:  2013-09-25       Impact factor: 2.744

8.  Morphological Changes in Subcutaneous White Adipose Tissue After Severe Burn Injury.

Authors:  Manish Kumar Saraf; David N Herndon; Craig Porter; Tracy Toliver-Kinsky; Ravi Radhakrishnan; Tony Chao; Maria Chondronikola; Labros S Sidossis
Journal:  J Burn Care Res       Date:  2016 Mar-Apr       Impact factor: 1.845

9.  Xanthine oxidase contributes to sustained airway epithelial oxidative stress after scald burn.

Authors:  Sam Jacob; David N Herndon; Hal K Hawkins; Perenlei Enkhbaatar; Robert A Cox
Journal:  Int J Burns Trauma       Date:  2017-10-25

10.  The leading causes of death after burn injury in a single pediatric burn center.

Authors:  Felicia N Williams; David N Herndon; Hal K Hawkins; Jong O Lee; Robert A Cox; Gabriela A Kulp; Celeste C Finnerty; David L Chinkes; Marc G Jeschke
Journal:  Crit Care       Date:  2009-11-17       Impact factor: 9.097

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