4.7 Article

Dynamic posttranslational modifications of cytoskeletal proteins unveil hot spots under nitroxidative stress

期刊

REDOX BIOLOGY
卷 44, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.redox.2021.102014

关键词

Nitroxidative stress; Cardiac cells; Vimentin; Actin; Tubulin; Posttranslational modifications; Lipoxidation; Redox signaling; Cysteine

资金

  1. Deutsche Forschungsgemeinschaft (DFG) [FE-1236/31]
  2. European Regional Development Fund (ERDF, European Union)
  3. European Regional Development Fund (ERDF, Free State Saxony) [100146238, 100121468]
  4. MASSTRPLAN project by Marie Sklodowska-Curie EU [675132]
  5. COST Action [CM1001]
  6. Agencia Estatal de Investigacion, MINECO/ERDF [SAF201568590R, RTI2018-097624-B-I00]
  7. ISCIII/ERDF [RETIC ARADYAL RD16/0006/0021]

向作者/读者索取更多资源

The cytoskeleton is a supramolecular structure made up of interacting protein networks that play crucial roles in cell dynamics, including migration, division, and stress responses. Redox-related posttranslational modifications (PTMs) are emerging as key players in cytoskeletal regulation, as shown by a study on mild nitroxidative stress inducing changes in cytoskeletal protein organization and PTM profiles. High-resolution mass spectrometry identified 62 different PTMs in vimentin, actin, and tubulin, revealing a chain reaction with formation of numerous reactive species and activation of multiple signaling pathways.
The cytoskeleton is a supramolecular structure consisting of interacting protein networks that support cell dynamics in essential processes such as migration and division, as well as in responses to stress. Fast cytoskeletal remodeling is achieved with the participation of regulatory proteins and posttranslational modifications (PTMs). Redox-related PTMs are emerging as critical players in cytoskeletal regulation. Here we used a cellular model of mild nitroxidative stress in which a peroxynitrite donor induced transient changes in the organization of three key cytoskeletal proteins, i.e., vimentin, actin and tubulin. Nitroxidative stress-induced reconfiguration of intermediate filaments, microtubules and actin structures were further correlated with their PTM profiles and dynamics of the PTM landscape. Using high-resolution mass spectrometry, 62 different PTMs were identified and relatively quantified in vimentin, actin and tubulin, including 12 enzymatic, 13 oxidative and 2 nitric oxidederived modifications as well as 35 modifications by carbonylated lipid peroxidation products, thus evidencing the occurrence of a chain reaction with formation of numerous reactive species and activation of multiple signaling pathways. Our results unveil the presence of certain modifications under basal conditions and their modulation in response to stress in a target-, residue- and reactive species-dependent manner. Thus, some modifications accumulated during the experiment whereas others varied transiently. Moreover, we identified protein PTM hot spots, such as the single cysteine residue of vimentin, which was detected in seven modified forms, thus, supporting its role in PTM crosstalk and redox sensing. Finally, identification of novel PTMs in these proteins paves the way for unveiling new cytoskeleton regulatory mechanisms.

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