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化学进展  2015 

蛋白质巯基亚硝基化分子机制及其疾病相关性

DOI: 10.7536/PC141133, PP. 594-600

Keywords: 一氧化氮,蛋白质巯基亚硝基化,翻译后修饰,氧化还原

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Abstract:

蛋白质翻译后修饰对蛋白质生物学功能起着至关重要的作用.蛋白质巯基亚硝基化(S-nitrosylation,SNO)是一种一氧化氮相关的氧化还原型可逆修饰.它广泛存在于动物、植物和微生物中.近年来的研究表明SNO与蛋白质修饰位点的精细化学结构紧密关联,其中可能存在多种尚未证实的中间体.另一方面,研究发现SNO与肿瘤、炎症、衰老、阿尔茨海默症和帕金森综合症等许多重大疾病相关.为了进一步药物发现与疾病治疗研究的需要,本文对SNO的形成机理与研究现状进行了系统总结,并着重介绍了SNO与相关疾病的研究进展.

References

[1]  Stamler J S. Cell, 1994, 78: 931.
[2]  Zhao Y L, Houk K N, Olson L P. J. Phys. Chem. A, 2004, 108: 5864.
[3]  Zhao Y L, Bartberger M D, Goto K, Shimada K, Kawashima T, Houk K N. J. Am. Chem. Soc., 2005, 127: 7964.
[4]  Zhao Y L, Houk K N. J. Am. Chem. Soc., 2006, 128: 1422.
[5]  Zhao Y L, McCarren P R, Houk K N, Choi B Y, Toone E J. J. Am. Chem. Soc., 2005, 127: 10917.
[6]  Chen Y J, Ku W C, Lin P Y, Chou H C, Khoo K H, Chen Y J. J. Proteome Res., 2010, 9: 6417.
[7]  Puyaubert J, Fares A, Rézé N, Peltier J B, Baudouin E. Plant Sci., 2014, 215/216: 150.
[8]  Lee Y I, Giovinazzo D, Kang H C, Lee Y, Jeong J S, Doulias P T, Xie Z, Hu J, Ghasemi M, Ischiropoulos H, Qian J, Zhu H, Blackshaw S, Dawson V L, Dawson T M. Mol. Cell. Proteomics, 2014, 13: 63.
[9]  Wang Y T, Piyankarage S C, Williams D L, Thatcher G R J. ACS Chem. Biol., 2014, 9: 821.
[10]  Tennyson A G, Lippard S J. Chem. Biol., 2011, 18: 1211.
[11]  Wu C, Parrott A M, Fu C, Liu T, Marino S M, Gladyshev V N, Jain M R, Baykal A T, Li Q, Oka S, Sadoshima J, Beuve A, Simmons W J, Li H. Antioxid. Redox Sign., 2011, 15: 2565.
[12]  Martínez-Ruiz A, Araújo I M, Izquierdo-álvarez A, Hernansanz-Agustín P, Lamas S, Serrador J M. Antioxid. Redox Sign., 2012, 19: 1220.
[13]  Que L G, Liu L, Yan Y, Whitehead G S, Gavett S H, Schwartz D A, Stamler J S. Science, 2005, 308: 1618.
[14]  Foster M W, Hess D T, Stamler J S. Trends Mol. Med., 2009, 15: 391.
[15]  Martínez-Ruiz A, Lamas S. Cardiovasc Res., 2004, 62: 43.
[16]  陈畅(Chen C),黄波(Huang B),韩佩韦(Han P W),段绍瑾(Duan S J). 生物化学与生物物理进展(Progress in Biochemistry and Biophysics), 2006, 33(7): 609.
[17]  李一凡(Li Y F),张勇(Zhang Y). 生命的化学(Chemistry of Life), 2006, 26(6): 543.
[18]  张红志(Zhang H Z), 郭小勤(Guo X Q),郝中娜(Hao Z N),陶荣祥(Tao R X). 农业生物技术学报(Journal of Agricultural Biotechnology), 2008, 16(2): 351.
[19]  Hao G, Derakhshan B, Shi L, Campagne F, Gross S S. Proc. Natl. Acad. Sci. U. S. A., 2006, 103: 1012.
[20]  Abrams A J, Farooq A, Wang G. Biochem. (Mosc.), 2011, 50: 3405.
[21]  Qu J, Nakamura T, Cao G, Holland E A, McKercher S R, Lipton S A. Proc. Natl. Acad. Sci.U.S.A., 2011, 108: 14330.
[22]  Hess D T, Stamler J S. J. Biol. Chem., 2012, 287: 4411.
[23]  Cho D H, Nakamura T, Fang J, Cieplak P, Godzik A, Gu Z, Lipton S A. Science, 2009, 324: 102.
[24]  Graves J D, Krebs E G. Pharmacol. Ther., 1999, 82: 111.
[25]  Kim J H, Bugaj L J, Oh Y J, Bivalacqua T J, Ryoo S, Soucy K G, Santhanam L, Webb A, Camara A, Sikka G, Nyhan D, Shoukas A A, Ilies M, Christianson D W, Champion H C, Berkowitz D E. J. Appl. Physiol., 2009, 107: 1249.
[26]  Liang J, Cheng S, Hou J, Xu Z, Zhao Y L. Sci. China Chem., 2012, 55: 2081.
[27]  Gaston B M. Mol. Interv., 2003, 3: 253.
[28]  Greco T M, Hodara R, Parastatidis I, Heijnen H F G, Dennehy M K, Liebler D C, Ischiropoulos H. Proc. Natl. Acad. Sci.U.S.A., 2006, 103: 7420.
[29]  Evangelista A M, Kohr M J, Murphy E. Antioxid. Redox Sign., 2012, 19: 1209.
[30]  Cheng S, Shi T, Wang X L, Liang J, Wu H, Xie L, Li Y, Zhao Y L. Mol. Biosyst., 2014, 10: 2597.
[31]  Marino S M, Gladyshev V N. J. Mol. Biol., 2010, 395: 844.
[32]  Doulias P T, Greene J L, Greco T M, Tenopoulou M, Seeholzer S H, Dunbrack R L, Ischiropoulos H. Proc. Natl. Acad. Sci.U. S. A., 2010, 107: 16958.
[33]  Kovacs I, Lindermayr C. Front. Plant Sci., 2013, 4: 137.
[34]  Kelleher Z T, Sha Y, Foster M W, Foster W M, Forrester M T, Marshall H E. J. Biol. Chem., 2014, 289: 3066.
[35]  Marshall H E, Hess D T, Stamler J S. Proc. Natl. Acad. Sci.U. S. A., 2004, 101: 8841.
[36]  Fuentes-Prior P, Salvesen G S. Biochem. J., 2004, 384: 201.
[37]  Chung K K, Thomas B, Li X, Pletnikova O, Troncoso J C, Marsh L, Dawson V L, Dawson T M. Science, 2004, 304: 1328.
[38]  Martínez-Ruiz A, Villanueva L, González de Ordu?a C, López-Ferrer D, Higueras M A, Tarín C, Rodríguez-Crespo I, Vázquez J, Lamas S. Proc. Natl. Acad. Sci.U.S.A., 2005, 102: 8525.
[39]  Tian J, Kim S F, Hester L, Snyder S H. Proc. Natl. Acad. Sci. U. S. A., 2008, 105: 10537.
[40]  Kim S F, Huri D A, Snyder S H. Science, 2005, 310: 1966.
[41]  Jaffrey S R, Snyder S H. Sci. Signal., 2001, 2001: l1.
[42]  Basu S, Wang X, Gladwin M T, Kim-Shapiro D B. Methods Enzymol., 2008, 440: 137.
[43]  Bechtold E, King S B. Antioxid. Redox Signal., 2012, 17: 981.
[44]  Liu M, Hou J, Huang L, Huang X, Heibeck T H, Zhao R, Pasa-Tolic L, Smith R D, Li Y, Fu K, Zhang Z, Hinrichs S H, Ding S J. Anal. Chem., 2010, 82: 7160.
[45]  Kornberg M D, Sen N, Hara M R, Juluri K R, Nguyen J V, Snowman A M, Law L, Hester L D, Snyder S H. Nat. Cell Biol., 2010, 12: 1094.
[46]  黄波(Huang B), 陈畅(Chen C). 生物物理学报(Acta Biophysica Sinica), 2012, 28(4): 268.
[47]  Pawloski J R, Hess D T, Stamler J S. Nature, 2001, 409: 622.
[48]  Gladwin M T, Crawford J H, Patel R P. Free Radic. Biol. Med., 2004, 36: 707.
[49]  Lima B, Forrester M T, Hess D T, Stamler J S. Circ. Res., 2010, 106: 633.
[50]  Bolotina V M, Najibi S, Palacino J J, Pagano P J, Cohen R A. Nature, 1994, 368: 850.
[51]  Lipton A J, Johnson M A, Macdonald T, Lieberman M W, Gozal D, Gaston B. Nature, 2001, 413: 171.
[52]  Westenberger U, Thanner S, Ruf H H, Gersonde K, Sutter G, Trentz O. Free Radic. Res. Commun., 1990, 11: 167.
[53]  Jourd?euil D, Gray L, Grisham M B. Biochem. Biophys. Res. Commun., 2000, 273: 22.
[54]  Milsom A, Jones C, Goodfellow J, Frenneaux M, Peters J, James P. Diabetologia, 2002, 45: 1515.
[55]  Foster M W, McMahon T J, Stamler J S. Trends Mol. Med., 2003, 9: 160.
[56]  Nakamura T, Lipton S A. Cell Death Differ., 2011, 18: 1478.
[57]  Santhanam L, Christianson D W, Nyhan D, Berkowitz D E. J. Appl. Physiol., 2008, 105: 1632.
[58]  Wang Z. Cancer Lett., 2012, 320: 123.
[59]  Iyer A K V, Rojanasakul Y, Azad N. Nitric Oxide., 2014, 42: 9.
[60]  Hara M R, Snyder S H. Cell. Mol. Neurobiol., 2006, 26: 525.
[61]  Tsang A H, Chung K K. Biochim. Biophys. Acta (BBA) Mol. Basis Dis., 2009, 1792: 643.
[62]  Gu Z, Kaul M, Yan B, Kridel S J, Cui J, Strongin A, Smith J W, Liddington R C, Lipton S A. Science, 2002, 297: 1186.
[63]  Li H, Wan A, Xu G, Ye D. Acta Biochim. Biophys. Sin., 2013, 45: 153.

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