Cysteine redox sensor in PKGIα enables oxidant-induced activation
- Joseph R. Burgoyne,
- Melanie Madhani,
- Friederike Cuello,
- Rebecca L. Charles,
- Jonathan P. Brennan,
- Ewald Schröder
- King's College London,
Open access
Abstract
Changes in the concentration of oxidants in cells can regulate biochemical signaling mechanisms that control cell function. We have found that guanosine 3′,5′-monophosphate (cGMP) - dependent protein kinase (PKG) functions directly as a redox sensor. The Iα isoform, PKGIα, formed an interprotein disulfide linking its two subunits in cells exposed to exogenous hydrogen peroxide. This oxidation directly activated the kinase in vitro, and in rat cells and tissues. The affinity of the kinase for substrates it phosphorylates was enhanced by disulfide formation. This oxidation-induced activation represents an alternate mechanism for regulation along with the classical activation involving nitric oxide and cGMP. This mechanism underlies cGMP-independent vasorelaxation in response to oxidants in the cardiovascular system and provides a molecular explanation for how hydrogen peroxide can operate as an endothelium-derived hyperpolarizing factor.
Publication Information
Output type
Original language
English (US)Pages from-to (Number of pages)
Pages 1393-1397 (5 pages)Journal (Volume, Issue Number)
Science (Volume 317, Issue 5843)Publication milestones
- Published - 09/07/2007
Publication status
ISSN
0036-8075Publication IDs
- Scopus: 34548695863
- PubMed: 17717153
