Literature DB >> 22593641

Role of apoptosis-inducing factor, proline dehydrogenase, and NADPH oxidase in apoptosis and oxidative stress.

Sathish Kumar Natarajan1, Donald F Becker.   

Abstract

Flavoproteins catalyze a variety of reactions utilizing flavin mononucleotide or flavin adenine dinucleotide as cofactors. The oxidoreductase properties of flavoenzymes implicate them in redox homeostasis, oxidative stress, and various cellular processes, including programmed cell death. Here we explore three critical flavoproteins involved in apoptosis and redox signaling, ie, apoptosis-inducing factor (AIF), proline dehydrogenase, and NADPH oxidase. These proteins have diverse biochemical functions and influence apoptotic signaling by unique mechanisms. The role of AIF in apoptotic signaling is two-fold, with AIF changing intracellular location from the inner mitochondrial membrane space to the nucleus upon exposure of cells to apoptotic stimuli. In the mitochondria, AIF enhances mitochondrial bioenergetics and complex I activity/assembly to help maintain proper cellular redox homeostasis. After translocating to the nucleus, AIF forms a chromatin degrading complex with other proteins, such as cyclophilin A. AIF translocation from the mitochondria to the nucleus is triggered by oxidative stress, implicating AIF as a mitochondrial redox sensor. Proline dehydrogenase is a membrane-associated flavoenzyme in the mitochondrion that catalyzes the rate-limiting step of proline oxidation. Upregulation of proline dehydrogenase by the tumor suppressor, p53, leads to enhanced mitochondrial reactive oxygen species that induce the intrinsic apoptotic pathway. NADPH oxidases are a group of enzymes that generate reactive oxygen species for oxidative stress and signaling purposes. Upon activation, NADPH oxidase 2 generates a burst of superoxide in neutrophils that leads to killing of microbes during phagocytosis. NADPH oxidases also participate in redox signaling that involves hydrogen peroxide-mediated activation of different pathways regulating cell proliferation and cell death. Potential therapeutic strategies for each enzyme are also highlighted.

Entities:  

Year:  2012        PMID: 22593641      PMCID: PMC3351110          DOI: 10.2147/CHC.S4955

Source DB:  PubMed          Journal:  Cell Health Cytoskelet        ISSN: 1179-1330


  169 in total

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Authors:  Fabienne Desmots; Helen R Russell; Denis Michel; Peter J McKinnon
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Journal:  Gynecol Oncol       Date:  2011-05-26       Impact factor: 5.482

3.  A model for p53-induced apoptosis.

Authors:  K Polyak; Y Xia; J L Zweier; K W Kinzler; B Vogelstein
Journal:  Nature       Date:  1997-09-18       Impact factor: 49.962

4.  AIF suppresses chemical stress-induced apoptosis and maintains the transformed state of tumor cells.

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Journal:  EMBO J       Date:  2005-07-07       Impact factor: 11.598

5.  Redox reactions of the FAD-containing apoptosis-inducing factor (AIF) with quinoidal xenobiotics: a mechanistic study.

Authors:  Lina Misevičienė; Zilvinas Anusevičius; Jonas Sarlauskas; Irina F Sevrioukova; Narimantas Cėnas
Journal:  Arch Biochem Biophys       Date:  2011-06-02       Impact factor: 4.013

6.  Role of NADPH oxidase and calcium in cerulein-induced apoptosis: involvement of apoptosis-inducing factor.

Authors:  Ji Hoon Yu; Kyung Hwan Kim; Hyeyoung Kim
Journal:  Ann N Y Acad Sci       Date:  2006-12       Impact factor: 5.691

7.  Poly(ADP-ribose) (PAR) binding to apoptosis-inducing factor is critical for PAR polymerase-1-dependent cell death (parthanatos).

Authors:  Yingfei Wang; No Soo Kim; Jean-Francois Haince; Ho Chul Kang; Karen K David; Shaida A Andrabi; Guy G Poirier; Valina L Dawson; Ted M Dawson
Journal:  Sci Signal       Date:  2011-04-05       Impact factor: 8.192

8.  Apoptosis-inducing factor triggered by poly(ADP-ribose) polymerase and Bid mediates neuronal cell death after oxygen-glucose deprivation and focal cerebral ischemia.

Authors:  Carsten Culmsee; Changlian Zhu; Stefan Landshamer; Barbara Becattini; Ernst Wagner; Maurizio Pellecchia; Maurizio Pellechia; Klas Blomgren; Nikolaus Plesnila
Journal:  J Neurosci       Date:  2005-11-02       Impact factor: 6.167

9.  Novel human homologues of p47phox and p67phox participate in activation of superoxide-producing NADPH oxidases.

Authors:  Ryu Takeya; Noriko Ueno; Keiichiro Kami; Masahiko Taura; Motoyuki Kohjima; Tomoko Izaki; Hiroyuki Nunoi; Hideki Sumimoto
Journal:  J Biol Chem       Date:  2003-04-25       Impact factor: 5.157

Review 10.  Nox proteins in signal transduction.

Authors:  David I Brown; Kathy K Griendling
Journal:  Free Radic Biol Med       Date:  2009-07-21       Impact factor: 7.376

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  24 in total

1.  Apoptotic effects of norfloxacin on corneal endothelial cells.

Authors:  Ting-Jun Fan; Shu-Xian Wu; Guo-Jian Jiang
Journal:  Naunyn Schmiedebergs Arch Pharmacol       Date:  2019-08-16       Impact factor: 3.000

2.  Transcriptome Analysis of the Spodoptera frugiperda Ascovirus In Vivo Provides Insights into How Its Apoptosis Inhibitors and Caspase Promote Increased Synthesis of Viral Vesicles and Virion Progeny.

Authors:  Heba A H Zaghloul; Robert Hice; Peter Arensburger; Brian A Federici
Journal:  J Virol       Date:  2017-11-14       Impact factor: 5.103

3.  DNA fragmentation and caspase-independent programmed cell death by modulated electrohyperthermia.

Authors:  N Meggyeshazi; G Andocs; L Balogh; P Balla; G Kiszner; I Teleki; A Jeney; T Krenacs
Journal:  Strahlenther Onkol       Date:  2014-02-22       Impact factor: 3.621

4.  Evidence for Pipecolate Oxidase in Mediating Protection Against Hydrogen Peroxide Stress.

Authors:  Sathish Kumar Natarajan; Ezhumalai Muthukrishnan; Oleh Khalimonchuk; Justin L Mott; Donald F Becker
Journal:  J Cell Biochem       Date:  2016-12-13       Impact factor: 4.429

5.  The involvement of proliferation and apoptosis in the early human gonad development.

Authors:  T Vukusic Pusic; T Janjic; I Dujmovic; A Poljicanin; V Soljic; M Saraga-Babic; K Vukojevic
Journal:  J Mol Histol       Date:  2012-10-17       Impact factor: 2.611

6.  URI prevents potassium dichromate-induced oxidative stress and cell death in gastric cancer cells.

Authors:  Dongwei Luo; Zhonghai Xu; Xiaoxia Hu; Fei Zhang; Huiqin Bian; Na Li; Qian Wang; Yaojuan Lu; Qiping Zheng; Junxia Gu
Journal:  Am J Transl Res       Date:  2016-12-15       Impact factor: 4.060

7.  Saturated free fatty acids induce cholangiocyte lipoapoptosis.

Authors:  Sathish Kumar Natarajan; Sally A Ingham; Ashley M Mohr; Cody J Wehrkamp; Anuttoma Ray; Sohini Roy; Sophie C Cazanave; Mary Anne Phillippi; Justin L Mott
Journal:  Hepatology       Date:  2014-06-20       Impact factor: 17.425

8.  Inhibition of p38 mitogen-activated protein kinase phosphorylation decreases H₂O₂-induced apoptosis in human lens epithelial cells.

Authors:  Jie Bai; Yi Zheng; Li Dong; Xuehui Cai; Gang Wang; Ping Liu
Journal:  Graefes Arch Clin Exp Ophthalmol       Date:  2015-07-05       Impact factor: 3.117

9.  Involvement of superoxide generated by NADPH oxidase in the shedding of procoagulant vesicles from human monocytic cells exposed to bupivacaine.

Authors:  Toshiharu Azma; Saori Ogawa; Akira Nishioka; Hiroyuki Kinoshita; Shinji Kawahito; Hiroshi Nagasaka; Nobuyuki Matsumoto
Journal:  J Thromb Thrombolysis       Date:  2017-10       Impact factor: 2.300

10.  Immunohistochemical analysis of Bax and AIF in colorectal tumors.

Authors:  Bengu Cobanoglu; A Bahar Ceyran; Mustafa Simsek; Serkan Şenol
Journal:  Int J Clin Exp Med       Date:  2015-09-15
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