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Mitochondrial biology in airway pathogenesis and the role of NRF2. | LitMetric

Mitochondrial biology in airway pathogenesis and the role of NRF2.

Arch Pharm Res

Immunity, Inflammation, and Disease Laboratory, National Institute of Environmental Health Sciences, 111 TW Alexander Dr., Research Triangle Park, NC, 27709, USA.

Published: March 2020

AI Article Synopsis

  • Advances in mitochondrial biology help us understand how mitochondrial dysfunction contributes to diseases, particularly those affecting the lungs.
  • Mitochondrial issues caused by stress can lead to energy production problems and increased cell signaling, affecting lung health and related conditions like chronic obstructive pulmonary disease and lung injury.
  • The NRF2-antioxidant response element pathway shows promise in improving mitochondrial health and may be targeted for therapies, though research on its effectiveness and mechanisms in lung disorders is still needed.

Article Abstract

A constant improvement in understanding of mitochondrial biology has provided new insights into mitochondrial dysfunction in human disease pathogenesis. Impaired mitochondrial dynamics caused by various stressors are characterized by structural abnormalities and leakage, compromised turnover, and reactive oxygen species overproduction in mitochondria as well as increased mitochondrial DNA mutation frequency, which leads to modified energy production and mitochondria-derived cell signaling. The mitochondrial dysfunction in airway epithelial, smooth muscle, and endothelial cells has been implicated in diseases including chronic obstructive lung diseases and acute lung injury. Increasing evidence indicates that the NRF2-antioxidant response element (ARE) pathway not only enhances redox defense but also facilitates mitochondrial homeostasis and bioenergetics. Identification of functional or potential AREs further supports the role for Nrf2 in mitochondrial dysfunction-associated airway disorders. While clinical reports indicate mixed efficacy, NRF2 agonists acting on respiratory mitochondrial dynamics are potentially beneficial. In lung cancer, growth advantage provided by sustained NRF2 activation is suggested to be through increased cellular antioxidant defense as well as mitochondria reinforcement and metabolic reprogramming to the preferred pathways to meet the increased energy demands of uncontrolled cell proliferation. Further studies are warranted to better understand NRF2 regulation of mitochondrial functions as therapeutic targets in airway disorders.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC7054182PMC
http://dx.doi.org/10.1007/s12272-019-01182-5DOI Listing

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