Literature DB >> 20393600

Acrolein induces apoptosis through the death receptor pathway in A549 lung cells: role of p53.

Julie Roy1, Pragathi Pallepati, Ahmed Bettaieb, Diana A Averill-Bates.   

Abstract

Acrolein, a highly reactive alpha,beta-unsaturated aldehyde, is an omnipresent environmental pollutant. Chronic and acute human exposures occur through exogenous and endogenous sources, including food, vapors of overheated cooking oil, house and forest fires, cigarette smoke, and automobile exhaust. Acrolein is a toxic byproduct of lipid peroxidation, which has been implicated in pulmonary, cardiac, and neurodegenerative diseases. This study shows that p53 is an initiating factor in acrolein-induced death receptor activation during apoptosis in A549 human lung cells. Exposure of cells to acrolein (0-50 micromol/L) mainly caused apoptosis, which was manifested by execution phase events such as condensation of nuclear chromatin, phosphatidylserine externalization, and poly(ADP-ribose) polymerase (PARP) cleavage. Levels of necrosis (approximately 5%) were low. Acrolein triggered the death receptor pathway of apoptosis, causing elevation of Fas ligand (FasL) and translocation of adaptor protein Fas-associated death domain to the plasma membrane. Acrolein caused activation of caspase-8, caspase-2, caspase-7, and the cross-talk pathway mediated by Bid cleavage. Activation of p53 and increased expression of p53-upregulated modulator of apoptosis (PUMA) occurred in response to acrolein. FasL upregulation and caspase-8 activation were decreased by p53 inhibitor pifithrin-alpha and antioxidant polyethylene glycol catalase. These findings increase our knowledge about the induction of cell death pathways by acrolein, which has important implications for human health.

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Year:  2010        PMID: 20393600     DOI: 10.1139/Y09-134

Source DB:  PubMed          Journal:  Can J Physiol Pharmacol        ISSN: 0008-4212            Impact factor:   2.273


  11 in total

1.  Effect of carcinogenic acrolein on DNA repair and mutagenic susceptibility.

Authors:  Hsiang-Tsui Wang; Yu Hu; Dan Tong; Jian Huang; Liya Gu; Xue-Ru Wu; Fung-Lung Chung; Guo-Min Li; Moon-shong Tang
Journal:  J Biol Chem       Date:  2012-01-24       Impact factor: 5.157

Review 2.  Acrolein induced DNA damage, mutagenicity and effect on DNA repair.

Authors:  Moon-shong Tang; Hsiang-tsui Wang; Yu Hu; Wei-Sheng Chen; Makoto Akao; Zhaohui Feng; Wenwei Hu
Journal:  Mol Nutr Food Res       Date:  2011-06-29       Impact factor: 5.914

Review 3.  Molecular mechanisms of acrolein toxicity: relevance to human disease.

Authors:  Akshata Moghe; Smita Ghare; Bryan Lamoreau; Mohammad Mohammad; Shirish Barve; Craig McClain; Swati Joshi-Barve
Journal:  Toxicol Sci       Date:  2015-02       Impact factor: 4.849

Review 4.  Assessing the carcinogenic potential of low-dose exposures to chemical mixtures in the environment: the challenge ahead.

Authors:  William H Goodson; Leroy Lowe; David O Carpenter; Michael Gilbertson; Abdul Manaf Ali; Adela Lopez de Cerain Salsamendi; Ahmed Lasfar; Amancio Carnero; Amaya Azqueta; Amedeo Amedei; Amelia K Charles; Andrew R Collins; Andrew Ward; Anna C Salzberg; Annamaria Colacci; Ann-Karin Olsen; Arthur Berg; Barry J Barclay; Binhua P Zhou; Carmen Blanco-Aparicio; Carolyn J Baglole; Chenfang Dong; Chiara Mondello; Chia-Wen Hsu; Christian C Naus; Clement Yedjou; Colleen S Curran; Dale W Laird; Daniel C Koch; Danielle J Carlin; Dean W Felsher; Debasish Roy; Dustin G Brown; Edward Ratovitski; Elizabeth P Ryan; Emanuela Corsini; Emilio Rojas; Eun-Yi Moon; Ezio Laconi; Fabio Marongiu; Fahd Al-Mulla; Ferdinando Chiaradonna; Firouz Darroudi; Francis L Martin; Frederik J Van Schooten; Gary S Goldberg; Gerard Wagemaker; Gladys N Nangami; Gloria M Calaf; Graeme Williams; Gregory T Wolf; Gudrun Koppen; Gunnar Brunborg; H Kim Lyerly; Harini Krishnan; Hasiah Ab Hamid; Hemad Yasaei; Hideko Sone; Hiroshi Kondoh; Hosni K Salem; Hsue-Yin Hsu; Hyun Ho Park; Igor Koturbash; Isabelle R Miousse; A Ivana Scovassi; James E Klaunig; Jan Vondráček; Jayadev Raju; Jesse Roman; John Pierce Wise; Jonathan R Whitfield; Jordan Woodrick; Joseph A Christopher; Josiah Ochieng; Juan Fernando Martinez-Leal; Judith Weisz; Julia Kravchenko; Jun Sun; Kalan R Prudhomme; Kannan Badri Narayanan; Karine A Cohen-Solal; Kim Moorwood; Laetitia Gonzalez; Laura Soucek; Le Jian; Leandro S D'Abronzo; Liang-Tzung Lin; Lin Li; Linda Gulliver; Lisa J McCawley; Lorenzo Memeo; Louis Vermeulen; Luc Leyns; Luoping Zhang; Mahara Valverde; Mahin Khatami; Maria Fiammetta Romano; Marion Chapellier; Marc A Williams; Mark Wade; Masoud H Manjili; Matilde E Lleonart; Menghang Xia; Michael J Gonzalez; Michalis V Karamouzis; Micheline Kirsch-Volders; Monica Vaccari; Nancy B Kuemmerle; Neetu Singh; Nichola Cruickshanks; Nicole Kleinstreuer; Nik van Larebeke; Nuzhat Ahmed; Olugbemiga Ogunkua; P K Krishnakumar; Pankaj Vadgama; Paola A Marignani; Paramita M Ghosh; Patricia Ostrosky-Wegman; Patricia A Thompson; Paul Dent; Petr Heneberg; Philippa Darbre; Po Sing Leung; Pratima Nangia-Makker; Qiang Shawn Cheng; R Brooks Robey; Rabeah Al-Temaimi; Rabindra Roy; Rafaela Andrade-Vieira; Ranjeet K Sinha; Rekha Mehta; Renza Vento; Riccardo Di Fiore; Richard Ponce-Cusi; Rita Dornetshuber-Fleiss; Rita Nahta; Robert C Castellino; Roberta Palorini; Roslida Abd Hamid; Sabine A S Langie; Sakina E Eltom; Samira A Brooks; Sandra Ryeom; Sandra S Wise; Sarah N Bay; Shelley A Harris; Silvana Papagerakis; Simona Romano; Sofia Pavanello; Staffan Eriksson; Stefano Forte; Stephanie C Casey; Sudjit Luanpitpong; Tae-Jin Lee; Takemi Otsuki; Tao Chen; Thierry Massfelder; Thomas Sanderson; Tiziana Guarnieri; Tove Hultman; Valérian Dormoy; Valerie Odero-Marah; Venkata Sabbisetti; Veronique Maguer-Satta; W Kimryn Rathmell; Wilhelm Engström; William K Decker; William H Bisson; Yon Rojanasakul; Yunus Luqmani; Zhenbang Chen; Zhiwei Hu
Journal:  Carcinogenesis       Date:  2015-06       Impact factor: 4.944

5.  Pigment epithelial-derived factor (PEDF)-triggered lung cancer cell apoptosis relies on p53 protein-driven Fas ligand (Fas-L) up-regulation and Fas protein cell surface translocation.

Authors:  Lei Li; Ya-Chao Yao; Shu-Huan Fang; Cai-Qi Ma; Yi Cen; Zu-Min Xu; Zhi-Yu Dai; Cen Li; Shuai Li; Ting Zhang; Hong-Hai Hong; Wei-Wei Qi; Ti Zhou; Chao-Yang Li; Xia Yang; Guo-Quan Gao
Journal:  J Biol Chem       Date:  2014-09-15       Impact factor: 5.157

6.  SCGB3A2 Inhibits Acrolein-Induced Apoptosis through Decreased p53 Phosphorylation.

Authors:  Reiko Kurotani; Reika Shima; Yuki Miyano; Satoshi Sakahara; Yoshie Matsumoto; Yoko Shibata; Hiroyuki Abe; Shioko Kimura
Journal:  Acta Histochem Cytochem       Date:  2015-04-24       Impact factor: 1.938

7.  NPA: an R package for computing network perturbation amplitudes using gene expression data and two-layer networks.

Authors:  Florian Martin; Sylvain Gubian; Marja Talikka; Julia Hoeng; Manuel C Peitsch
Journal:  BMC Bioinformatics       Date:  2019-09-03       Impact factor: 3.169

8.  In Vitro and In Vivo Inhibitory Effect of Citrus Junos Tanaka Peel Extract against Oxidative Stress-Induced Apoptotic Death of Lung Cells.

Authors:  Jin Woo Kim; Eun Hee Jo; Ji Eun Moon; Hanvit Cha; Moon Han Chang; Hyung Taek Cho; Min Kook Lee; Wan Sik Jung; Jin Hyup Lee; Wan Heo; Young Jun Kim
Journal:  Antioxidants (Basel)       Date:  2020-12-04

9.  Acrolein-exposed normal human lung fibroblasts in vitro: cellular senescence, enhanced telomere erosion, and degradation of Werner's syndrome protein.

Authors:  Jun-Ho Jang; Shannon Bruse; Salam Huneidi; Ronald M Schrader; Martha M Monick; Yong Lin; A Brent Carter; Aloysius J Klingelhutz; Toru Nyunoya
Journal:  Environ Health Perspect       Date:  2014-04-18       Impact factor: 9.031

Review 10.  Effect of Cigarette Smoke on Gut Microbiota: State of Knowledge.

Authors:  Xiaohua Gui; Zhongli Yang; Ming D Li
Journal:  Front Physiol       Date:  2021-06-17       Impact factor: 4.566

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