Tau蛋白的分析方法研究进展

李淋雨 王晓英

引用本文: 李淋雨,  王晓英. Tau蛋白的分析方法研究进展[J]. 分析化学, 2020, 48(6): 685-694. doi: 10.19756/j.issn.0253-3820.191379 shu
Citation:  LI Lin-Yu,  WANG Xiao-Ying. Progress in Analysis of Tau Protein[J]. Chinese Journal of Analytical Chemistry, 2020, 48(6): 685-694. doi: 10.19756/j.issn.0253-3820.191379 shu

Tau蛋白的分析方法研究进展

  • 基金项目:

    本文系国家自然科学基金项目(Nos.81573313,81302472)和江苏省高校"青蓝工程"项目资助

摘要: Tau蛋白(简称Tau)是一种参与神经系统发育的微管相关蛋白。Tau可经历构象改变、异常mRNA剪接等,从微管解离,经系列翻译后修饰(Post-translational modification,PTM),自身形成病理性聚集,进而造成神经退行性病变,最终形成Tau病。研究Tau的病理过程,分析评估其PTM及定量检测其浓度变化,对Tau病的早期诊断、跟踪、预防和治疗具有重要意义。本文对目前Tau的常规分析方法进行了概述和比较,重点阐述光学、电化学生物传感方法的最新研究进展与相关应用,对未来发展方向进行了展望,为Tau蛋白的深入研究与应用提供参考。

English


    1. [1]

      Ittner L M, Ke Y D, Delerue F, Bi M, Gladbach A, van Eersel J, Wolfing H, Chieng B C, Christie M J, Napier A, Eckert A, Staufenbiel M, Hardeman E, Gotz J. Cell,2010,142(3):387-397

    2. [2]

      Scholl M, Maass A, Mattsson N, Ashton N J, Blennow K, Zetterberg H. Mol. Cell. Neurosci.,2019,97:18-33

    3. [3]

      Rankovic M, Zweckstetter M. Neurosci. Biobehav. Rev.,2019,98:1-9

    4. [4]

      Saha P, Sen N. Mech. Ageing Dev.,2019,178:72-79

    5. [5]

      Villemagne V L, Velakoulis D, Dore V, Bozinoski S, Masters C L, Rowe C C, Walterfang M. Eur. J. Nucl. Med. Mol. Imaging,2019,46(5):1132-1138

    6. [6]

      Takeda S. Neurosci. Res.,2019,141:36-42

    7. [7]

      Villemagne V L, Fodero M T, Masters C L, Rowe C C. Lancet Neurol.,2015:14:114-124

    8. [8]

      Hall B, Mak E, Cervenka S, Aigbirhio F I, Rowe J B, O'Brien J T. Ageing Res. Rev.,2017:36:50-63

    9. [9]

      Hammes J, Drzezga A, van Eimeren T. Curr. Neurol. Neurosci. Rep.,2018,18(12):86

    10. [10]

      Bakota L, Ussif A, Jeserich G, Brandt R. Mol. Cell. Neurosci.,2017,84:132-141

    11. [11]

      Combs B, Hamel C, Kanaan N M. Neurobiol. Dis.,2016,94:18-31

    12. [12]

      Guo T, Noble W, Hanger D P. Acta Neuropathol.,2017,133(5):665-704

    13. [13]

      Tochio N, Murata T, Utsunomiya-Tate N. Biochem. Biophys. Res. Commun.,2019,508(1):184-190

    14. [14]

      Espindola S L, Damianich A, Alvarez R J, Sartor M, Belforte J E, Ferrario J E. Cell Rep.,2018,23(3):709-715

    15. [15]

      Sealey M A, Vourkou E, Cowan C M, Bossing T, Quraishe S, Grammenoudi S. Neurobiol. Dis.,2017,105:74-83

    16. [16]

      Himmelstein D S, Ward S M, Lancia J K, Patterson K R, Binder L I. Pharmacol. Ther.,2012,136(1):8-22

    17. [17]

      Chu D, Liu F. ACS Chem. Neurosci.,2019,10(2), 931-944

    18. [18]

      Domise M, Didier S, Marinangeli C, Zhao H, Chandakkar P, Buee L, Viollet B, Davies P, Marambaud P, Vingtdeux V. Sci. Rep.,2016:6:26758

    19. [19]

      Baas P W, Qiang L. Trends Cell Biol.,2019,29(6):452-461

    20. [20]

      Martin L, Latypova X, Terro F. Neurochem. Int.,2011,58(4):458-471

    21. [21]

      Vander Harg J M, Eggels L, Bangel F N, Ruigrok S R, Zwart R, Hoozemans J J M. Neurobiol. Dis.,2017,103:163-173

    22. [22]

      Virshup D M, Shenolikar S. Mol. Cell. Biochem.,2009,33(5):537-545

    23. [23]

      Martin L, Latypova X, Wilson C M, Magnaudeix A, Perrin M L, Terro F. Ageing Res. Rev.,2013,12(1):39-49

    24. [24]

      Boban M, Babic L M, Miskic T, Hof P R, Simic G. J. Neurosci. Methods, 2019,319:60-68

    25. [25]

      Hanger D P, Byers H L, Wray S, Leung K Y, Saxton M J, Seereeram A. J. Biol. Chem.,2007,282(32):23645-23654

    26. [26]

      Noble W, Olm V, Takata K, Casey E, Mary O, Meyerson J. Neuron,2003,38(4):555-565

    27. [27]

      Lassen P S, Thygesen C, Larsen M R, Kempf S J. J. Proteomics,2017,161:11-25

    28. [28]

      Ono K. Neurochem. Int.,2018,119:57-70

    29. [29]

      Buee L, Bussiere T, Buee-Scherrer V, Delacourte A, Hof P R. Brain Res. Rev.,2000,33(1):95-130

    30. [30]

      Lloret A, Fuchsberger T, Giraldo E, Vina J. Free Radical Biol. Med.,2015,83:186-191

    31. [31]

      Sato Y, Naito Y, Grundke-Iqbal I, Iqbal K, Endo T. FEBS Lett.,2001,496(2-3):152-160

    32. [32]

      Necula M, Kuret J. J. Biol. Chem.,2004,279(48):49694-49703

    33. [33]

      Ischiropoulos H. Biochem. Biophys. Res. Commun.,2003,305(3):776-783

    34. [34]

      Reyes J F, Fu Y, Vana L, Kanaan N M, Binder L I. Am. J. Pathol.,2011,178(5):2275-2285

    35. [35]

      Reynolds M R, Reyes J F, Fu Y, Bigio E H, Guillozet-Bongaarts A L, Berry R W. J. Neurosci.,2006,26(42):10636-10645

    36. [36]

      Cripps D, Thomas S N, Jeng Y, Yang F, Davies P, Yang A J. J. Biol. Chem.,2006,281(16):10825-10838

    37. [37]

      Iqbal K, Grundke-Iqbal I. Mol. Neurobiol.,1991,5(2-4):399-410

    38. [38]

      Beharry C, Cohen L S, Di J, Ibrahim K, Briffa M S, Alonso A D. Neurosci. Bull.,2014,30(2):346-358

    39. [39]

      Funk K E, Thomas S N, Schafer K N, Cooper G L, Liao Z P, Clark D J. Biochem. J.,2014,462:77-88

    40. [40]

      Tapia-Rojas C, Cabezas-Opazo F, Deaton C A, Vergara E H, Johnson G V W, Quintanilla R A. Prog. Neurobiol.,2019,175:54-76

    41. [41]

      Bulbarelli A, Lonati E, Cazzaniga E, Gregori M, Masserini M. Mol. Cell. Neurosci.,2009,42(1):75-80

    42. [42]

      Zhou X Z, Kops O, Werner A, Lu P J, Shen M, Stoller G. Mol. Cell,2000,6(4):873-883

    43. [43]

      Lavoie S B, Albert A L, Vincent M. MS-Med. Sci.,2003,19(12):1251-1258

    44. [44]

      Pekeles H, Qureshi H Y, Paudel H K, Schipper H M, Gornistky M, Chertkow H. Alzheimer's Dementia,2019,11:53-60

    45. [45]

      Hanger D P, Anderton B H, Noble W. Trends Mol. Med.,2009,15(3):112-119

    46. [46]

      Jonasson M, Wall A, Chiotis K, Leuzy A, Eriksson J, Antoni G, Nordbergef A. NeuroImage Clin.,2019,22(10):1016-1031

    47. [47]

      Cho H, Choi J Y, Hwang M S, Lee J H, Kim Y J, Lee H M. Neurology,2016,87(4):375-383

    48. [48]

      Chien D T, Bahri S, Szardenings A K, Walsh J C, Mu F, Su M Y. J. Alzheimer's Dis.,2013,34(2):457-468

    49. [49]

      Bejanin A, Schonhaut D R, La Joie R, Kramer J H, Baker S L, Sosa N. Brain,2017,140(12):3286-3300

    50. [50]

      Artun O. Radiat. Phys. Chem.,2018,149:73-83

    51. [51]

      Benadiba M, Luurtsema G, Wichert-Ana L, Buchpigel C A, Filho G B. Rev. Bras. Psiquiatr.,2012,34:125-148

    52. [52]

      Wells J A, O'Callaghan J M, Holmes H E, Powell N M, Johnson R A, Siow B. NeuroImage,2015,111:369-378

    53. [53]

      Hampel H, Blennow K, Shaw L M, Hoessler Y C, Zetterberg H, Trojanowski J. Exp. Gerontol,2010,45(1):30-40

    54. [54]

      Arai H, Terajima M, Miura M, Higuchi S, Muramatsu T, Machida N. Ann. Neurol.,1995,38(4):649-652

    55. [55]

      Kohnken R, Buerger K, Zinkowski R, Miller C, Kerkman D, De Bernardis J. Neurosci. Lett.,2000,287(3):187-190

    56. [56]

      Cohen L, Walt D R. Chem. Rev.,2019,119(1):293-321

    57. [57]

      Röthlisberger P, Hollenstein M. Adv. Drug Delivery Rev.,2018:134:3-21

    58. [58]

      Stegurová L, Dráberová E, Bartos A, Dráber P, Rípová D, Dráber P. J. Immunol. Methods,2014,406:137-142

    59. [59]

      Chiu M J, Chen Y F, Chen T F, Yang S Y, Yang F P G, Tseng T W. Hum. Brain Mapp.,2014,35(7):3132-3142

    60. [60]

      Min S W, Cho S H, Zhou Y, Schroeder S, Haroutunian V, Seeley W W. Neuron,2010,67(6):953-966

    61. [61]

      Thomas S N, Funk K E, Wan Y, Liao Z, Davies P, Kuret J. Acta Neuropathol.,2012,123(1):105-117

    62. [62]

      Morris M, Knudsen G M, Maeda S, Trinidad J C, Ioanoviciu A, Burlingame A L. Nat. Neurosci.,2015,18(8):1183-1189

    63. [63]

      Ivanov A N, Kuzin Y I, Evtugyn G A. Sens. Actuators B,2019,281:574-581

    64. [64]

      Lisi S, Scarano S, Fedeli S, Pascale E, Cicchi S, Ravelet C. Biosens. Bioelectron.,2017,93:289-292

    65. [65]

      Wongkaew N, Simsek M, Griesche C, Baeumner A J. Chem. Rev.,2019,119(1):120-194

    66. [66]

      Kim S, Wark A W, Lee H J. Anal. Chem.,2016,88(15):7793-7799

    67. [67]

      Kim S, Park J W, Wark A W, Jhung S H, Lee H J. Anal. Chem.,2017,89(22):12562-12568

    68. [68]

      Sepúlveda B, Angelomé P C, Lechuga L M, Liz-Marzán L M. Nano Today,2009,4:244-251

    69. [69]

      Vestergaard M, Kerman K, Kim D K, Hiep H M, Tamiya E. Talanta,2008,74(4):1038-1042

    70. [70]

      Kim H, Lee J U, Song S, Kim S, Sim S J. Biosens. Bioelectron.,2018,101:96-102

    71. [71]

      Kim H, Lee J U, Kim S, Song S, Sim S J. ACS Sens.,2019,4(3):595-602

    72. [72]

      Fateixa S, Pinheiro P C, Nogueira H I S, Trindade T. J. Mol. Struct.,2019,1185:333-340

    73. [73]

      Zengin A, Tamer U, Caykara T. Biomacromolecules,2013,14(9):3001-3009

    74. [74]

      Achuth J, Renuka R M, Naveen S, Kadirvelu K. Sens. Actuators B,2019,291:102-112

    75. [75]

      Kjaergaard M, Dear A J, Kundel F, Qamar S, Meisl G, Knowles T P J. ACS Chem. Neurosci.,2018,9(12):3060-3071

    76. [76]

      Suprun E V. TrAC-Trend. Anal. Chem.,2019:116:44-60

    77. [77]

      Martic S, Beheshti S, Rains M K, Kraatz H B. Analyst,2012,137(9):2042-2046

    78. [78]

      Rains M K, Martic S, Freeman D, Kraatz H B. ACS Chem. Neurosci.,2013,4(8):1194-1203

    79. [79]

      Jahnke H G, Rothermel A, Sternberger I, Mack T G A, Kurz R G, Panke O. Lab Chip,2009,9(10):1422-1428

    80. [80]

      Esteves-Villanueva J O, Martic-Milne S. Anal. Biochem.,2016,496:55-62

    81. [81]

      Martic S, Rains M K, Kraatz H B. Anal. Biochem.,2013,442(2):130-137

    82. [82]

      Ahmadi S, Ebralidze I I, She Z, Kraatz H B. Electrochim. Acta,2017,236:384-393

    83. [83]

      Derkus B, Bozkurt P A, Tulu M, Emregul K C, Yucesan C, Emregul E. Biosens. Bioelectron.,2017,89:781-788

    84. [84]

      Wang S X, Acha D, Shah A J, Hills F, Roitt I, Demosthenous A. Biosens. Bioelectron.,2017,92:482-488

    85. [85]

      Shui B Q, Tao D, Cheng J, Mei Y, Jaffrezic-Renault N, Guo Z Z. Analyst,2018,143(15):3549-3554

  • 加载中
计量
  • PDF下载量:  9
  • 文章访问数:  475
  • HTML全文浏览量:  74
文章相关
  • 收稿日期:  2019-07-06
  • 修回日期:  2020-03-18
通讯作者: 陈斌, bchen63@163.com
  • 1. 

    沈阳化工大学材料科学与工程学院 沈阳 110142

  1. 本站搜索
  2. 百度学术搜索
  3. 万方数据库搜索
  4. CNKI搜索

/

返回文章