S-Nitrosylation: An Emerging Paradigm of Redox Signaling
Nitric oxide (NO) is a highly reactive molecule, generated through metabolism of L-arginine by NO synthase (NOS). Abnormal NO levels in mammalian cells are associated with multiple human diseases, including cancer. Recent studies have uncovered that the NO signaling is compartmentalized, owing to th...
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doaj-d51f54e6e7f84a46bcab013fa3abdc552020-11-24T22:21:01ZengMDPI AGAntioxidants2076-39212019-09-018940410.3390/antiox8090404antiox8090404S-Nitrosylation: An Emerging Paradigm of Redox SignalingVeani Fernando0Xunzhen Zheng1Yashna Walia2Vandana Sharma3Joshua Letson4Saori Furuta5Department of Cancer Biology, University of Toledo Health Science Campus, 3000 Arlington Ave., Toledo, OH 43614, USADepartment of Cancer Biology, University of Toledo Health Science Campus, 3000 Arlington Ave., Toledo, OH 43614, USADepartment of Cancer Biology, University of Toledo Health Science Campus, 3000 Arlington Ave., Toledo, OH 43614, USADepartment of Cancer Biology, University of Toledo Health Science Campus, 3000 Arlington Ave., Toledo, OH 43614, USADepartment of Cancer Biology, University of Toledo Health Science Campus, 3000 Arlington Ave., Toledo, OH 43614, USADepartment of Cancer Biology, University of Toledo Health Science Campus, 3000 Arlington Ave., Toledo, OH 43614, USANitric oxide (NO) is a highly reactive molecule, generated through metabolism of L-arginine by NO synthase (NOS). Abnormal NO levels in mammalian cells are associated with multiple human diseases, including cancer. Recent studies have uncovered that the NO signaling is compartmentalized, owing to the localization of NOS and the nature of biochemical reactions of NO, including S-nitrosylation. S-nitrosylation is a selective covalent post-translational modification adding a nitrosyl group to the reactive thiol group of a cysteine to form S-nitrosothiol (SNO), which is a key mechanism in transferring NO-mediated signals. While S-nitrosylation occurs only at select cysteine thiols, such a spatial constraint is partially resolved by transnitrosylation, where the nitrosyl moiety is transferred between two interacting proteins to successively transfer the NO signal to a distant location. As NOS is present in various subcellular locales, a stress could trigger concerted S-nitrosylation and transnitrosylation of a large number of proteins involved in divergent signaling cascades. S-nitrosylation is an emerging paradigm of redox signaling by which cells confer protection against oxidative stress.https://www.mdpi.com/2076-3921/8/9/404NOS-nitrosylationNOSROSantioxidantredox regulation |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Veani Fernando Xunzhen Zheng Yashna Walia Vandana Sharma Joshua Letson Saori Furuta |
spellingShingle |
Veani Fernando Xunzhen Zheng Yashna Walia Vandana Sharma Joshua Letson Saori Furuta S-Nitrosylation: An Emerging Paradigm of Redox Signaling Antioxidants NO S-nitrosylation NOS ROS antioxidant redox regulation |
author_facet |
Veani Fernando Xunzhen Zheng Yashna Walia Vandana Sharma Joshua Letson Saori Furuta |
author_sort |
Veani Fernando |
title |
S-Nitrosylation: An Emerging Paradigm of Redox Signaling |
title_short |
S-Nitrosylation: An Emerging Paradigm of Redox Signaling |
title_full |
S-Nitrosylation: An Emerging Paradigm of Redox Signaling |
title_fullStr |
S-Nitrosylation: An Emerging Paradigm of Redox Signaling |
title_full_unstemmed |
S-Nitrosylation: An Emerging Paradigm of Redox Signaling |
title_sort |
s-nitrosylation: an emerging paradigm of redox signaling |
publisher |
MDPI AG |
series |
Antioxidants |
issn |
2076-3921 |
publishDate |
2019-09-01 |
description |
Nitric oxide (NO) is a highly reactive molecule, generated through metabolism of L-arginine by NO synthase (NOS). Abnormal NO levels in mammalian cells are associated with multiple human diseases, including cancer. Recent studies have uncovered that the NO signaling is compartmentalized, owing to the localization of NOS and the nature of biochemical reactions of NO, including S-nitrosylation. S-nitrosylation is a selective covalent post-translational modification adding a nitrosyl group to the reactive thiol group of a cysteine to form S-nitrosothiol (SNO), which is a key mechanism in transferring NO-mediated signals. While S-nitrosylation occurs only at select cysteine thiols, such a spatial constraint is partially resolved by transnitrosylation, where the nitrosyl moiety is transferred between two interacting proteins to successively transfer the NO signal to a distant location. As NOS is present in various subcellular locales, a stress could trigger concerted S-nitrosylation and transnitrosylation of a large number of proteins involved in divergent signaling cascades. S-nitrosylation is an emerging paradigm of redox signaling by which cells confer protection against oxidative stress. |
topic |
NO S-nitrosylation NOS ROS antioxidant redox regulation |
url |
https://www.mdpi.com/2076-3921/8/9/404 |
work_keys_str_mv |
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