4.4 Article

Effects of the NO/soluble guanylate cyclase/cGMP system on the functions of human platelets

期刊

NITRIC OXIDE-BIOLOGY AND CHEMISTRY
卷 76, 期 -, 页码 71-80

出版社

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.niox.2018.03.008

关键词

Platelet inhibition; Phosphoproteome; cGMP-dependent protein kinase/PKG; Small GTP-binding proteins; G proteins

资金

  1. German Research Foundation (DFG) [ZA 639/4-1, JU 2735/2-1]
  2. Ministerium fur Kultur und Wissenschaft des Landes Nordrhein-Westfalen
  3. Regierende Burgermeister von Berlin - inkl. Wissenschaft und Forschung
  4. Bundesministerium fur Bildung und Forschung [NRW_MKW_313]
  5. BMBF (Bundesministerium fuer Bildung und Forschung) [0315395A, 0315395D, 01EO1003, 01EO1503]
  6. Science Foundation Ireland/Irish Research Council [08/IN.1/B1855, 11/TIDA/B2021]
  7. RFBR [17-00-00141 (17-00- 00139)]
  8. Science Foundation Ireland (SFI) [08/IN.1/B1855, 11/TIDA/B2021] Funding Source: Science Foundation Ireland (SFI)

向作者/读者索取更多资源

Platelets are circulating sentinels of vascular integrity and are activated, inhibited, or modulated by multiple hormones, vasoactive substances or drugs. Endothelium- or drug-derived NO strongly inhibits platelet activation via activation of the soluble guanylate cyclase (sGC) and cGMP elevation, often in synergy with cAMP-elevation by prostacyclin. However, the molecular mechanisms and diversity of cGMP effects in platelets are poorly understood and sometimes controversial. Recently, we established the quantitative human platelet proteome, the iloprost/prostacyclin/cAMP/protein kinase A (PICA)-regulated phosphoproteome, and the interactions of the ADP- and iloprost/prostacyclin-affected phosphoproteome. We also showed that the sGC stimulator riociguat is in vitro a highly specific inhibitor, via cGMP, of various functions of human platelets. Here, we review the regulatory role of the cGMP/protein kinase G (PKG) system in human platelet function, and our current approaches to establish and analyze the phosphoproteome after selective stimulation of the sGC/cGMP pathway by NO donors and riociguat. Present data indicate an extensive and diverse NO/riociguat/cGMP phosphoproteome, which has to be compared with the cAMP phosphoproteome. In particular, sGC/cGMP-regulated phosphorylaton of many membrane proteins, G-proteins and their regulators, signaling molecules, protein kinases, and proteins involved in Ca2+ regulation, suggests that the sGC/cGMP system targets multiple signaling networks rather than a limited number of PKG substrate proteins.

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