Literature DB >> 18556628

Nasal ventilation alters mesenchymal cell turnover and improves alveolarization in preterm lambs.

Brent Reyburn1, Marlana Li, Drew B Metcalfe, Nicholas J Kroll, Jeremy Alvord, Albert Wint, Mar Janna Dahl, Jiancheng Sun, Li Dong, Zheng-Ming Wang, Christopher Callaway, Robert A McKnight, Laurie Moyer-Mileur, Bradley A Yoder, Donald M Null, Robert H Lane, Kurt H Albertine.   

Abstract

RATIONALE: Bronchopulmonary dysplasia (BPD) is a frequent cause of morbidity in preterm infants that is characterized by prolonged need for ventilatory support in an intensive care environment. BPD is characterized histopathologically by persistently thick, cellular distal airspace walls. In normally developing lungs, by comparison, remodeling of the immature parenchymal architecture is characterized by thinning of the future alveolar walls, a process predicated on cell loss through apoptosis.
OBJECTIVES: We hypothesized that minimizing lung injury, using high-frequency nasal ventilation to provide positive distending pressure with minimal assisted tidal volume displacement, would increase apoptosis and decrease proliferation among mesenchymal cells in the distal airspace walls compared with a conventional mode of support (intermittent mandatory ventilation).
METHODS: Accordingly, we compared two groups of preterm lambs: one group managed by high-frequency nasal ventilation and a second group managed by intermittent mandatory ventilation. Each group was maintained for 3 days.
MEASUREMENTS AND MAIN RESULTS: Oxygenation and ventilation targets were sustained with lower airway pressures and less supplemental oxygen in the high-frequency nasal ventilation group, in which alveolarization progressed. Thinning of the distal airspace walls was accompanied by more apoptosis, and less proliferation, among mesenchymal cells of the high-frequency nasal ventilation group, based on morphometric, protein abundance, and mRNA expression indices of apoptosis and proliferation.
CONCLUSIONS: Our study shows that high-frequency nasal ventilation preserves the balance between mesenchymal cell apoptosis and proliferation in the distal airspace walls, such that alveolarization progresses.

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Year:  2008        PMID: 18556628      PMCID: PMC2542442          DOI: 10.1164/rccm.200802-359OC

Source DB:  PubMed          Journal:  Am J Respir Crit Care Med        ISSN: 1073-449X            Impact factor:   21.405


  67 in total

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4.  Angiogenic factors and alveolar vasculature: development and alterations by injury in very premature baboons.

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5.  Chronic lung injury in preterm lambs: abnormalities of the pulmonary circulation and lung fluid balance.

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9.  Decreased indicators of lung injury with continuous positive expiratory pressure in preterm lambs.

Authors:  Alan H Jobe; Boris W Kramer; Timothy J Moss; John P Newnham; Machiko Ikegami
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2.  Former-preterm lambs have persistent alveolar simplification at 2 and 5 months corrected postnatal age.

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3.  Mechanism of reduced lung injury by high-frequency nasal ventilation in a preterm lamb model of neonatal chronic lung disease.

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Review 4.  High-frequency ventilation for non-invasive respiratory support of neonates.

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5.  Good news for lung repair in preterm infants.

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6.  Preterm birth and ventilation decrease surface density of glomerular capillaries in lambs, regardless of postnatal respiratory support mode.

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7.  Chronic lung disease in preterm lambs: effect of daily vitamin A treatment on alveolarization.

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Journal:  Am J Physiol Lung Cell Mol Physiol       Date:  2016-06-24       Impact factor: 5.464

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