Literature DB >> 30290714

PRKN-regulated mitophagy and cellular senescence during COPD pathogenesis.

Jun Araya1, Kazuya Tsubouchi1,2, Nahoko Sato1,3, Saburo Ito1, Shunsuke Minagawa1, Hiromichi Hara1, Yusuke Hosaka1, Akihiro Ichikawa1, Nayuta Saito1, Tsukasa Kadota1, Masahiro Yoshida1, Yu Fujita1, Hirofumi Utsumi1, Kenji Kobayashi1, Haruhiko Yanagisawa1, Mitsuo Hashimoto1, Hiroshi Wakui1, Takeo Ishikawa1, Takanori Numata1, Yumi Kaneko1, Hisatoshi Asano4, Makoto Yamashita4, Makoto Odaka4, Toshiaki Morikawa4, Stephen L Nishimura5, Katsutoshi Nakayama1, Kazuyoshi Kuwano1.   

Abstract

Cigarette smoke (CS)-induced accumulation of mitochondrial damage has been widely implicated in chronic obstructive pulmonary disease (COPD) pathogenesis. Mitophagy plays a crucial role in eliminating damaged mitochondria, and is governed by the PINK1 (PTEN induced putative protein kinase 1)-PRKN (parkin RBR E3 ubiquitin protein ligase) pathway. Although both increased PINK1 and reduced PRKN have been implicated in COPD pathogenesis in association with mitophagy, there are conflicting reports for the role of mitophagy in COPD progression. To clarify the involvement of PRKN-regulated mitophagy in COPD pathogenesis, prkn knockout (KO) mouse models were used. To illuminate how PINK1 and PRKN regulate mitophagy in relation to CS-induced mitochondrial damage and cellular senescence, overexpression and knockdown experiments were performed in airway epithelial cells (AEC). In comparison to wild-type mice, prkn KO mice demonstrated enhanced airway wall thickening with emphysematous changes following CS exposure. AEC in CS-exposed prkn KO mice showed accumulation of damaged mitochondria and increased oxidative modifications accompanied by accelerated cellular senescence. In vitro experiments showed PRKN overexpression was sufficient to induce mitophagy during CSE exposure even in the setting of reduced PINK1 protein levels, resulting in attenuation of mitochondrial ROS production and cellular senescence. Conversely PINK1 overexpression failed to recover impaired mitophagy caused by PRKN knockdown, indicating that PRKN protein levels can be the rate-limiting factor in PINK1-PRKN-mediated mitophagy during CSE exposure. These results suggest that PRKN levels may play a pivotal role in COPD pathogenesis by regulating mitophagy, suggesting that PRKN induction could mitigate the progression of COPD. Abbreviations: AD: Alzheimer disease; AEC: airway epithelial cells; BALF: bronchoalveolar lavage fluid; AKT: AKT serine/threonine kinase; CALCOCO2/NDP52: calcium binding and coiled-coil domain 2; CDKN1A: cyclin dependent kinase inhibitor 1A; CDKN2A: cyclin dependent kinase inhibitor 2A; COPD: chronic obstructive pulmonary disease; CS: cigarette smoke; CSE: CS extract; CXCL1: C-X-C motif chemokine ligand 1; CXCL8: C-X-C motif chemokine ligand 8; HBEC: human bronchial epithelial cells; 4-HNE: 4-hydroxynonenal; IL: interleukin; KO: knockout; LF: lung fibroblasts; LPS: lipopolysaccharide; MAP1LC3/LC3: microtubule associated protein 1 light chain 3; MTOR: mechanistic target of rapamycin kinase; 8-OHdG: 8-hydroxy-2'-deoxyguanosine; OPTN: optineurin; PRKN: parkin RBR E3 ubiquitin protein ligase; PCD: programmed cell death; PFD: pirfenidone; PIK3C: phosphatidylinositol-4:5-bisphosphate 3-kinase catalytic subunit; PINK1: PTEN induced putative kinase 1; PTEN: phosphatase and tensin homolog; RA: rheumatoid arthritis; ROS: reactive oxygen species; SA-GLB1/β-Gal: senescence-associated-galactosidase, beta 1; SASP: senescence-associated secretory phenotype; SNP: single nucleotide polymorphism; TNF: tumor necrosis factor.

Entities:  

Keywords:  COPD; Cellular senescence; PINK1; PRKN; mitophagy

Year:  2018        PMID: 30290714      PMCID: PMC6351145          DOI: 10.1080/15548627.2018.1532259

Source DB:  PubMed          Journal:  Autophagy        ISSN: 1554-8627            Impact factor:   16.016


  39 in total

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2.  Azithromycin attenuates myofibroblast differentiation and lung fibrosis development through proteasomal degradation of NOX4.

Authors:  Kazuya Tsubouchi; Jun Araya; Shunsuke Minagawa; Hiromichi Hara; Akihiro Ichikawa; Nayuta Saito; Tsukasa Kadota; Nahoko Sato; Masahiro Yoshida; Yusuke Kurita; Kenji Kobayashi; Saburo Ito; Yu Fujita; Hirofumi Utsumi; Haruhiko Yanagisawa; Mitsuo Hashimoto; Hiroshi Wakui; Yutaka Yoshii; Takeo Ishikawa; Takanori Numata; Yumi Kaneko; Hisatoshi Asano; Makoto Yamashita; Makoto Odaka; Toshiaki Morikawa; Katsutoshi Nakayama; Yoichi Nakanishi; Kazuyoshi Kuwano
Journal:  Autophagy       Date:  2017-06-14       Impact factor: 16.016

3.  Drosophila pink1 is required for mitochondrial function and interacts genetically with parkin.

Authors:  Ira E Clark; Mark W Dodson; Changan Jiang; Joseph H Cao; Jun R Huh; Jae Hong Seol; Soon Ji Yoo; Bruce A Hay; Ming Guo
Journal:  Nature       Date:  2006-05-03       Impact factor: 49.962

4.  Parkin regulates lipopolysaccharide-induced proinflammatory responses in acute lung injury.

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6.  Antifibrotic action of pirfenidone and prednisolone: different effects on pulmonary cytokines and growth factors in bleomycin-induced murine pulmonary fibrosis.

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Journal:  Eur J Pharmacol       Date:  2008-06-16       Impact factor: 4.432

7.  Squamous metaplasia amplifies pathologic epithelial-mesenchymal interactions in COPD patients.

Authors:  Jun Araya; Stephanie Cambier; Jennifer A Markovics; Paul Wolters; David Jablons; Arthur Hill; Walter Finkbeiner; Kirk Jones; V Courtney Broaddus; Dean Sheppard; Andrea Barzcak; Yuanyuan Xiao; David J Erle; Stephen L Nishimura
Journal:  J Clin Invest       Date:  2007-11       Impact factor: 14.808

Review 8.  Senescence in COPD and Its Comorbidities.

Authors:  Peter J Barnes
Journal:  Annu Rev Physiol       Date:  2016-12-09       Impact factor: 19.318

9.  Pirfenidone inhibits myofibroblast differentiation and lung fibrosis development during insufficient mitophagy.

Authors:  Yusuke Kurita; Jun Araya; Shunsuke Minagawa; Hiromichi Hara; Akihiro Ichikawa; Nayuta Saito; Tsukasa Kadota; Kazuya Tsubouchi; Nahoko Sato; Masahiro Yoshida; Kenji Kobayashi; Saburo Ito; Yu Fujita; Hirofumi Utsumi; Haruhiko Yanagisawa; Mitsuo Hashimoto; Hiroshi Wakui; Yutaka Yoshii; Takeo Ishikawa; Takanori Numata; Yumi Kaneko; Hisatoshi Asano; Makoto Yamashita; Makoto Odaka; Toshiaki Morikawa; Katsutoshi Nakayama; Kazuyoshi Kuwano
Journal:  Respir Res       Date:  2017-06-02

10.  Loss of Parkin reduces inflammatory arthritis by inhibiting p53 degradation.

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Journal:  Redox Biol       Date:  2017-04-05       Impact factor: 11.799

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  39 in total

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2.  Dysregulation of mitochondrial complexes and dynamics by chronic cigarette smoke exposure Utilizing MitoQC reporter mice.

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Review 3.  The role of mitochondria in cellular senescence.

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Review 4.  Particulate matter in COPD pathogenesis: an overview.

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Journal:  Inflamm Res       Date:  2022-06-16       Impact factor: 6.986

5.  The Roles of Autophagy, Mitophagy, and the Akt/mTOR Pathway in the Pathogenesis of Chronic Rhinosinusitis with Nasal Polyps.

Authors:  Chen Wang; Min-Li Zhou; Yong-Cai Liu; Ke-Jia Cheng
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6.  Activating Parkin-dependent mitophagy alleviates oxidative stress, apoptosis, and promotes random-pattern skin flaps survival.

Authors:  Zhengtai Chen; Hongqiang Wu; Jianxin Yang; Baolong Li; Jian Ding; Sheng Cheng; Nageeb Bsoul; Chenxi Zhang; Jiaorong Li; Haixiao Liu; Damu Lin; Weiyang Gao
Journal:  Commun Biol       Date:  2022-06-22

7.  Acrolein inhalation acutely affects the regulation of mitochondrial metabolism in rat lung.

Authors:  C B M Tulen; S J Snow; P A Leermakers; U P Kodavanti; F J van Schooten; A Opperhuizen; A H V Remels
Journal:  Toxicology       Date:  2022-02-10       Impact factor: 4.571

8.  Mitochondrial Fission Mediated Cigarette Smoke-induced Pulmonary Endothelial Injury.

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Journal:  Am J Respir Cell Mol Biol       Date:  2020-11       Impact factor: 6.914

Review 9.  Cellular senescence: all roads lead to mitochondria.

Authors:  Hélène Martini; João F Passos
Journal:  FEBS J       Date:  2022-01-20       Impact factor: 5.622

10.  Role of Lysocardiolipin Acyltransferase in Cigarette Smoke-Induced Lung Epithelial Cell Mitochondrial ROS, Mitochondrial Dynamics, and Apoptosis.

Authors:  Mounica Bandela; Vidyani Suryadevara; Panfeng Fu; Sekhar P Reddy; Kamesh Bikkavilli; Long Shuang Huang; Sugasini Dhavamani; Papasani V Subbaiah; Sunit Singla; Steven M Dudek; Lorraine B Ware; Ramaswamy Ramchandran; Viswanathan Natarajan
Journal:  Cell Biochem Biophys       Date:  2021-11-01       Impact factor: 2.989

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