Literature DB >> 26117324

Signaling and stress: The redox landscape in NOS2 biology.

Douglas D Thomas1, Julie L Heinecke2, Lisa A Ridnour2, Robert Y Cheng2, Aparna H Kesarwala3, Christopher H Switzer2, Daniel W McVicar4, David D Roberts5, Sharon Glynn6, Jon M Fukuto7, David A Wink8, Katrina M Miranda9.   

Abstract

Nitric oxide (NO) has a highly diverse range of biological functions from physiological signaling and maintenance of homeostasis to serving as an effector molecule in the immune system. However, deleterious as well as beneficial roles of NO have been reported. Many of the dichotomous effects of NO and derivative reactive nitrogen species (RNS) can be explained by invoking precise interactions with different targets as a result of concentration and temporal constraints. Endogenous concentrations of NO span five orders of magnitude, with levels near the high picomolar range typically occurring in short bursts as compared to sustained production of low micromolar levels of NO during immune response. This article provides an overview of the redox landscape as it relates to increasing NO concentrations, which incrementally govern physiological signaling, nitrosative signaling and nitrosative stress-related signaling. Physiological signaling by NO primarily occurs upon interaction with the heme protein soluble guanylyl cyclase. As NO concentrations rise, interactions with nonheme iron complexes as well as indirect modification of thiols can stimulate additional signaling processes. At the highest levels of NO, production of a broader range of RNS, which subsequently interact with more diverse targets, can lead to chemical stress. However, even under such conditions, there is evidence that stress-related signaling mechanisms are triggered to protect cells or even resolve the stress. This review therefore also addresses the fundamental reactions and kinetics that initiate signaling through NO-dependent pathways, including processes that lead to interconversion of RNS and interactions with molecular targets.
Copyright © 2015. Published by Elsevier Inc.

Entities:  

Keywords:  Breast cancer; Cancer biology; Cell signaling; Free radicals; Nitric oxide; Nitric oxide synthase

Mesh:

Substances:

Year:  2015        PMID: 26117324      PMCID: PMC4852151          DOI: 10.1016/j.freeradbiomed.2015.06.002

Source DB:  PubMed          Journal:  Free Radic Biol Med        ISSN: 0891-5849            Impact factor:   7.376


  285 in total

1.  Role of circulating nitrite and S-nitrosohemoglobin in the regulation of regional blood flow in humans.

Authors:  M T Gladwin; J H Shelhamer; A N Schechter; M E Pease-Fye; M A Waclawiw; J A Panza; F P Ognibene; R O Cannon
Journal:  Proc Natl Acad Sci U S A       Date:  2000-10-10       Impact factor: 11.205

2.  Effect of nitric oxide on the radiosensitivity of tumour cells.

Authors:  L H GRAY; F O GREEN; C A HAWES
Journal:  Nature       Date:  1958-10-04       Impact factor: 49.962

3.  Proteomic analysis of the NOS2 interactome in human airway epithelial cells.

Authors:  Matthew W Foster; J Will Thompson; Michael T Forrester; Yonggang Sha; Timothy J McMahon; Dawn E Bowles; M Arthur Moseley; Harvey E Marshall
Journal:  Nitric Oxide       Date:  2013-02-21       Impact factor: 4.427

4.  Glutathione sulfinamide serves as a selective, endogenous biomarker for nitroxyl after exposure to therapeutic levels of donors.

Authors:  Gail M Johnson; Tyler J Chozinski; Elyssia S Gallagher; Craig A Aspinwall; Katrina M Miranda
Journal:  Free Radic Biol Med       Date:  2014-07-23       Impact factor: 7.376

5.  CD47 deficiency confers cell and tissue radioprotection by activation of autophagy.

Authors:  David R Soto-Pantoja; Thomas W Miller; Michael L Pendrak; William G DeGraff; Camille Sullivan; Lisa A Ridnour; Mones Abu-Asab; David A Wink; Maria Tsokos; David D Roberts
Journal:  Autophagy       Date:  2012-08-09       Impact factor: 16.016

6.  NMR detection and study of hydrolysis of HNO-derived sulfinamides.

Authors:  Gizem Keceli; Cathy D Moore; Jason W Labonte; John P Toscano
Journal:  Biochemistry       Date:  2013-10-07       Impact factor: 3.162

Review 7.  Therapy of cancer metastasis by activation of the inducible nitric oxide synthase.

Authors:  K Xie; I J Fidler
Journal:  Cancer Metastasis Rev       Date:  1998-03       Impact factor: 9.264

Review 8.  Biological nitric oxide signalling: chemistry and terminology.

Authors:  Tassiele A Heinrich; Roberto S da Silva; Katrina M Miranda; Christopher H Switzer; David A Wink; Jon M Fukuto
Journal:  Br J Pharmacol       Date:  2013-08       Impact factor: 8.739

Review 9.  The complex interplay of iron metabolism, reactive oxygen species, and reactive nitrogen species: insights into the potential of various iron therapies to induce oxidative and nitrosative stress.

Authors:  Taija S Koskenkorva-Frank; Günter Weiss; Willem H Koppenol; Susanna Burckhardt
Journal:  Free Radic Biol Med       Date:  2013-09-12       Impact factor: 7.376

10.  Cardioprotection by S-nitrosation of a cysteine switch on mitochondrial complex I.

Authors:  Edward T Chouchani; Carmen Methner; Sergiy M Nadtochiy; Angela Logan; Victoria R Pell; Shujing Ding; Andrew M James; Helena M Cochemé; Johannes Reinhold; Kathryn S Lilley; Linda Partridge; Ian M Fearnley; Alan J Robinson; Richard C Hartley; Robin A J Smith; Thomas Krieg; Paul S Brookes; Michael P Murphy
Journal:  Nat Med       Date:  2013-05-26       Impact factor: 53.440

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  33 in total

Review 1.  The role of CD47 in pathogenesis and treatment of renal ischemia reperfusion injury.

Authors:  Jeffrey S Isenberg; David D Roberts
Journal:  Pediatr Nephrol       Date:  2018-11-03       Impact factor: 3.714

2.  Regulation of Cellular Redox Signaling by Matricellular Proteins in Vascular Biology, Immunology, and Cancer.

Authors:  David D Roberts; Sukhbir Kaur; Jeffrey S Isenberg
Journal:  Antioxid Redox Signal       Date:  2017-09-08       Impact factor: 8.401

Review 3.  Roles of Nitric Oxide Synthase Isoforms in Neurogenesis.

Authors:  Cheong-Meng Chong; Nana Ai; Minjing Ke; Yuan Tan; Zhijian Huang; Yong Li; Jia-Hong Lu; Wei Ge; Huanxing Su
Journal:  Mol Neurobiol       Date:  2017-04-18       Impact factor: 5.590

4.  Bystander effects of nitric oxide in anti-tumor photodynamic therapy.

Authors:  Jerzy Bazak; Jonathan M Fahey; Katarzyna Wawak; Witold Korytowski; Albert W Girotti
Journal:  Cancer Cell Microenviron       Date:  2017-02-27

5.  Nitric oxide-mediated resistance to photodynamic therapy in a human breast tumor xenograft model: Improved outcome with NOS2 inhibitors.

Authors:  Jonathan M Fahey; Albert W Girotti
Journal:  Nitric Oxide       Date:  2016-12-19       Impact factor: 4.427

6.  Nitric oxide reduces oxidative stress in cancer cells by forming dinitrosyliron complexes.

Authors:  Sumit Sahni; Jason R Hickok; Douglas D Thomas
Journal:  Nitric Oxide       Date:  2018-03-06       Impact factor: 4.427

7.  Coordination of non-innocent nitrogen oxide ligands: terminology.

Authors:  Katrina M Miranda
Journal:  J Biol Inorg Chem       Date:  2019-04-29       Impact factor: 3.358

Review 8.  Biomarkers of oxidative and nitro-oxidative stress: conventional and novel approaches.

Authors:  Ana Cipak Gasparovic; Neven Zarkovic; Kamelija Zarkovic; Khrystyna Semen; Danylo Kaminskyy; Olha Yelisyeyeva; Serge P Bottari
Journal:  Br J Pharmacol       Date:  2017-03-06       Impact factor: 8.739

Review 9.  Nitric Oxide Synthase-2-Derived Nitric Oxide Drives Multiple Pathways of Breast Cancer Progression.

Authors:  Debashree Basudhar; Veena Somasundaram; Graciele Almeida de Oliveira; Aparna Kesarwala; Julie L Heinecke; Robert Y Cheng; Sharon A Glynn; Stefan Ambs; David A Wink; Lisa A Ridnour
Journal:  Antioxid Redox Signal       Date:  2016-09-07       Impact factor: 8.401

Review 10.  Inducible Nitric Oxide Synthase in the Carcinogenesis of Gastrointestinal Cancers.

Authors:  Graciele Almeida de Oliveira; Robert Y S Cheng; Lisa A Ridnour; Debashree Basudhar; Veena Somasundaram; Daniel W McVicar; Hugo Pequeno Monteiro; David A Wink
Journal:  Antioxid Redox Signal       Date:  2016-10-31       Impact factor: 8.401

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