545
Views
51
CrossRef citations to date
0
Altmetric
Original Contributions

Localized cysteine sulfenic acid formation by vascular endothelial growth factor: role in endothelial cell migration and angiogenesis

, , , , , , , , & show all
Pages 1124-1135 | Received 17 Apr 2011, Accepted 23 Jun 2011, Published online: 25 Jul 2011

References

  • Finkel T. Oxygen radicals and signaling. Curr Opin Cell Biol 1998;10:248–253.
  • Rhee SG, Bae YS, Lee SR, Kwon J. Hydrogen peroxide: a key messenger that modulates protein phosphorylation through cysteine oxidation. Sci STKE 2000;2000(53):PE1.
  • Ushio-Fukai M. Localizing NADPH oxidase-derived ROS. Sci STKE 2006;2006(349):RE8.
  • Ushio-Fukai M. Redox signaling in angiogenesis: role of NADPH oxidase. CardiovascRes 2006;71(2):226–235.
  • Rhee SG. Measuring H2O2 produced in response to cell surface receptor activation. Nat Chem Biol 2007;3(5): 244–246.
  • Miller EW, Tulyathan O, Isacoff EY, Chang CJ. Molecular imaging of hydrogen peroxide produced for cell signaling. Nat Chem Biol 2007;3(5):263–267.
  • Wardman P. Fluorescent and luminescent probes for measurement of oxidative and nitrosative species in cells and tissues: progress, pitfalls, and prospects. Free Radic Biol Med 2007;43(7):995–1022.
  • Claiborne A, Miller H, Parsonage D, Ross RP. Protein-sulfenic acid stabilization and function in enzyme catalysis and gene regulation. Faseb J 1993;7(15):1483–1490.
  • Poole LB, Karplus PA, Claiborne A. Protein sulfenic acids in redox signaling. Annu Review Pharmacol Toxicol 2004;44: 325–347.
  • Charles RL, Schroder E, May G, Free P, Gaffney PR, Wait R, . Protein sulfenation as a redox sensor: proteomics studies using a novel biotinylated dimedone analogue. Mol Cell Proteomics 2007;6(9):1473–1484.
  • Poole LB, Nelson KJ. Discovering mechanisms of signaling-mediated cysteine oxidation. Curr Opin Chem Biol 2008; 12(1):18–24.
  • Poole LB, Klomsiri C, Knaggs SA, Furdui CM, Nelson KJ, Thomas MJ, . Fluorescent and affinity-based tools to detect cysteine sulfenic acid formation in proteins. Bioconjug Chem 2007;18(6):2004–2017.
  • Reddie KG, Seo YH, Muse WB III, Leonard SE, Carroll KS. A chemical approach for detecting sulfenic acid-modified proteins in living cells. Molecular bioSystems 2008;4(6):521–531.
  • Seo YH, Carroll KS. Profiling protein thiol oxidation in tumor cells using sulfenic acid-specific antibodies. Proc Natl Acad Sci USA 2009;106(38):16163–16168.
  • Leonard SE, Reddie KG, Carroll KS. Mining the thiol proteome for sulfenic acid modifications reveals new targets for oxidation in cells. ACS Chem Biol 2009;4(9):783–799.
  • Paulsen CE, Carroll KS. Orchestrating redox signaling networks through regulatory cysteine switches. ACS Chem Biol 2009;5(1):47–62.
  • Matsumoto T, Claesson-Welsh L. VEGF receptor signal transduction. Sci STKE 2001;2001(112):RE21.
  • Yamaoka-Tojo M, Ushio-Fukai M, Hilenski L, Dikalov SI, Chen YE, Tojo T, . IQGAP1, a novel vascular endothelial growth factor receptor binding protein, is involved in reactive oxygen species-dependent endothelial migration and proliferation. Circ Res 2004;95(3):276–283.
  • Ikeda S, Ushio-Fukai M, Zuo L, Tojo T, Dikalov S, Patrushev NA, Alexander RW. Novel role of ARF6 in vascular endothelial growth factor-induced signaling and angiogenesis. Circ Res 2005;96(4):467–475.
  • Ushio-Fukai M. VEGF signaling through NADPH oxidase-derived ROS. Antioxid Redox Signal 2007;9(6):731–739.
  • Tojo T, Ushio-Fukai M, Yamaoka-Tojo M, Ikeda S, Patrushev NA, Alexander RW. Role of gp91phox (Nox2)-containing NAD(P)H oxidase in angiogenesis in response to hindlimb ischemia. Circ 2005;111:2347–2355.
  • Urao N, Inomata H, Razvi M, Kim HW, Wary K, McKinney R, . Role of nox2-based NADPH oxidase in bone marrow and progenitor cell function involved in neovascularization induced by hindlimb ischemia. Circ Res 2008; 103(2):212–220.
  • Ikeda S, Yamaoka-Tojo M, Hilenski L, Patrushev NA, Anwar GM, Quinn MT, Ushio-Fukai M. IQGAP1 regulates reactive oxygen species-dependent endothelial cell migration through interacting with Nox2. Arterioscler Thromb Vasc Biol 2005;25(11):2295–2300.
  • Urao N, Razvi M, Oshikawa J, McKinney RD, Chavda R, Bahou WF, . IQGAP1 is involved in post-ischemic neovascularization by regulating angiogenesis and macrophage infiltration. PLoS One 2010;5(10):e13440.
  • Briggs MW, Sacks DB. IQGAP proteins are integral components of cytoskeletal regulation. EMBO Rep 2003;4(6):571–574.
  • Mateer SC, Morris LE, Cromer DA, Bensenor LB, Bloom GS. Actin filament binding by a monomeric IQGAP1 fragment with a single calponin homology domain. Cell Motil Cytoskeleton 2004;58(4):231–241.
  • Brandt DT, Grosse R. Get to grips: steering local actin dynamics with IQGAPs. EMBO Rep 2007;8(11):1019–1023.
  • Poole LB, Zeng BB, Knaggs SA, Yakubu M, King SB. Synthesis of chemical probes to map sulfenic acid modifications on proteins. Bioconjug Chem 2005;16(6):1624–1628.
  • Klomsiri C, Nelson KJ, Bechtold E, Soito L, Johnson LC, Lowther WT, . Use of dimedone-based chemical probes for sulfenic acid detection evaluation of conditions affecting probe incorporation into redox-sensitive proteins. Methods Enzymol 2010;473:77–94.
  • Nelson KJ, Klomsiri C, Codreanu SG, Soito L, Liebler DC, Rogers LC, . Use of dimedone-based chemical probes for sulfenic acid detection methods to visualize and identify labeled proteins. Methods Enzymol 2010;473:95–115.
  • Wani R, Qian J, Yin L, Bechtold E, King SB, Poole L, . Isoform-specific regulation of Akt by PDGF-induced reactive oxygen species. Proc Natl Acad Sci USA 2011;108(26): 10550–10555.
  • Nakamura Y, Patrushev N, Inomata H, Mehta D, Urao N, Kim HW, . Role of protein tyrosine phosphatase 1B in vascular endothelial growth factor signaling and cell-cell adhesions in endothelial cells. Circ Res 2008;102(10): 1182–1191.
  • Couffinhal T, Silver M, Zheng LP, Kearney M, Witzenbichler B, Isner JM. Mouse model of angiogenesis. Am J Pathol 1998; 152:1667–1679.
  • Moldovan L, Moldovan NI, Sohn RH, Parikh SA, Goldschmidt-Clermont PJ. Redox changes of cultured endothelial cells and actin dynamics. Circ Res 2000;86(5): 549–557.
  • Ushio-Fukai M, Tang Y, Fukai T, Dikalov SI, Ma Y, Fujimoto M, . Novel role of gp91(phox)-containing NAD(P)H oxidase in vascular endothelial growth factor-induced signaling and angiogenesis. Circ Res 2002;91(12): 1160–1167.
  • Terada LS. Specificity in reactive oxidant signaling: think globally, act locally. J Cell Biol 2006;174(5):615–623.
  • Chen K, Craige SE, Keaney JF Jr. Downstream targets and intracellular compartmentalization in Nox signaling. Antioxid Redox Signal 2009;11(10):2467–2480.
  • Saurin AT, Neubert H, Brennan JP, Eaton P. Widespread sulfenic acid formation in tissues in response to hydrogen peroxide. Proc Natl Acad Sci USA 2004;101(52): 17982–17987.
  • Maller C, Schroder E, Eaton P. Glyceraldehyde 3-phosphate dehydrogenase is unlikely to mediate hydrogen peroxide signaling: studies with a novel anti-dimedone sulfenic acid antibody. Antioxid Redox Signal 2011;14(1):49–60.
  • Tyther R, Ahmeda A, Johns E, McDonagh B, Sheehan D. Proteomic profiling of perturbed protein sulfenation in renal medulla of the spontaneously hypertensive rat. J Proteome Res 2010;9(5):2678–2687.
  • Michalek RD, Nelson KJ, Holbrook BC, Yi JS, Stridiron D, Daniel LW, . The requirement of reversible cysteine sulfenic acid formation for T cell activation and function. J Immunol 2007;179(10):6456–6467.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.