Literature DB >> 31432715

Mitochondrial DNA variation modulates alveolar development in newborn mice exposed to hyperoxia.

Jegen Kandasamy1, Gabriel Rezonzew1, Tamas Jilling1, Scott Ballinger2, Namasivayam Ambalavanan1.   

Abstract

Hyperoxia-induced oxidant stress contributes to the pathogenesis of bronchopulmonary dysplasia (BPD) in preterm infants. Mitochondrial functional differences due to mitochondrial DNA (mtDNA) variations are important modifiers of oxidant stress responses. The objective of this study was to determine whether mtDNA variation independently modifies lung development and mechanical dysfunction in newborn mice exposed to hyperoxia. Newborn C57BL6 wild type (C57n/C57mt, C57WT) and C3H/HeN wild type (C3Hn/C3Hmt, C3HWT) mice and novel Mitochondrial-nuclear eXchange (MNX) strains with nuclear DNA (nDNA) from their parent strain and mtDNA from the other-C57MNX (C57n/C3Hmt) and C3HMNX (C3Hn/C57mt)-were exposed to 21% or 85% O2 from birth to postnatal day 14 (P14). Lung mechanics and histopathology were examined on P15. Neonatal mouse lung fibroblast (NMLF) bioenergetics and mitochondrial superoxide (O2-) generation were measured. Pulmonary resistance and mitochondrial O2- generation were increased while alveolarization, compliance, and NMLF basal and maximal oxygen consumption rate were decreased in hyperoxia-exposed C57WT mice (C57n/C57mt) versus C57MNX mice (C57n/C3Hmt) and in hyperoxia-exposed C3HMNX mice (C3Hn/C57mt) versus C3HWT (C3Hn/C3Hmt) mice. Our study suggests that neonatal C57 mtDNA-carrying strains have increased hyperoxia-induced hypoalveolarization, pulmonary mechanical dysfunction, and mitochondrial bioenergetic and redox dysfunction versus C3H mtDNA strains. Therefore, mtDNA haplogroup variation-induced differences in mitochondrial function could modify neonatal alveolar development and BPD susceptibility.

Entities:  

Keywords:  bioenergetics; bronchopulmonary dysplasia; hyperoxia; mitochondrial; mitochondrial DNA

Mesh:

Substances:

Year:  2019        PMID: 31432715      PMCID: PMC6962596          DOI: 10.1152/ajplung.00220.2019

Source DB:  PubMed          Journal:  Am J Physiol Lung Cell Mol Physiol        ISSN: 1040-0605            Impact factor:   5.464


  27 in total

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Journal:  Biochem J       Date:  2013-10-15       Impact factor: 3.857

7.  Mitochondrial dysfunction contributes to alveolar developmental arrest in hyperoxia-exposed mice.

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Authors:  Kathy K Griendling; Rhian M Touyz; Jay L Zweier; Sergey Dikalov; William Chilian; Yeong-Renn Chen; David G Harrison; Aruni Bhatnagar
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9.  Differential Alterations of the Mitochondrial Morphology and Respiratory Chain Complexes during Postnatal Development of the Mouse Lung.

Authors:  Natalia El-Merhie; Eveline Baumgart-Vogt; Adrian Pilatz; Susanne Pfreimer; Bianca Pfeiffer; Oleg Pak; Djuro Kosanovic; Michael Seimetz; Ralph Theo Schermuly; Norbert Weissmann; Srikanth Karnati
Journal:  Oxid Med Cell Longev       Date:  2017-12-19       Impact factor: 6.543

Review 10.  Mitochondrial Damage-Associated Molecular Patterns: From Inflammatory Signaling to Human Diseases.

Authors:  Serge Grazioli; Jérôme Pugin
Journal:  Front Immunol       Date:  2018-05-04       Impact factor: 7.561

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  2 in total

1.  Swapping mitochondria: a key to understanding susceptibility to neonatal chronic lung disease.

Authors:  Andrew M Dylag; Paul S Brookes; Michael A O'Reilly
Journal:  Am J Physiol Lung Cell Mol Physiol       Date:  2019-10-09       Impact factor: 5.464

2.  Decreased AMP-activated protein kinase (AMPK) function and protective effect of metformin in neonatal rat pups exposed to hyperoxia lung injury.

Authors:  Abha Yadav; Ujala Rana; Teresa Michalkiewicz; Ru-Jeng Teng; Girija G Konduri
Journal:  Physiol Rep       Date:  2020-09
  2 in total

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