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化学进展  2015 

基于SERS探针技术的细胞识别、成像与诊疗

DOI: 10.7536/PC140738, PP. 91-102

Keywords: 表面增强拉曼散射,SERS探针,细胞识别,成像,诊疗

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Abstract:

表面增强拉曼散射(surface-enhancedRamanscattering,SERS),是指吸附在粗糙的金属纳米结构表面的被分析物,在光照射下其拉曼光谱获得显著增强的异常表面光学现象。近年来,SERS技术已广泛地用于物质检测和生物传感等研究,在生物医学领域表现出巨大的应用潜力并取得了令人瞩目的研究成果。本文回顾了SERS探针技术在细胞识别、成像与诊疗等方面的应用及最新研究进展,重点介绍了SERS细胞探针的构建方法与原理,以及基于SERS探针的细胞检测应用策略,并讨论了SERS探针技术在细胞检测中仍有待解决的关键问题。

References

[1]  Wu Q H. Spectrosc. Lett., 2014, 47(9): 704.
[2]  Nima Z A, Mahmood M, Xu Y, Mustafa T, Watanabe F, Nedosekin D A, Juratli M A, Fahmi T, Galanzha E I, Nolan J P, Basnakian A G, Zharov V P, Biris A S.Sci. Rep., 2014, 4: 4752.
[3]  Zheng X S, Hu P, Zhong J H, Zong C, Wang X, Liu B J, Ren B. Phys. Chem. C, 2014, 118(7): 3750.
[4]  Jeanmaire D L,Van Duyne R P. J. Electroanal. Chem. Interfacial Electrochem., 1977, 84(1): 1.
[5]  Xu H, Li Q, Wang L H, He Y, Shi J Y, Tang B, Fan C H, Chem. Soc. Rev., 2014, 43: 2650.
[6]  Yang X F, Li J, Pei H, Zhao Y, Zuo X L, Fan C H, Huang Q. Anal. Chem., 2014, 86(6): 3227.
[7]  Zhou G B, Lin M H, Song P, Chen X Q, Chao J, Wang L H, Huang Q, Huang W, Fan C H, Zuo X L. Anal. Chem., 2014, 86(15):7843.
[8]  He Y, Su Y Y, Yang X B, Kang Z H, Xu T T, Zhang R Q, Fan C H, Lee S T. J. Am. Chem. Soc., 2009, 131(12): 4434.
[9]  Lu Y, Huang Q, Meng G, Wu L, Zhang J. Analyst, 2014, 139(12): 3083.
[10]  Pinzaru S C, Falamas A, Dehelean C, Morari C,Venter M. Croat. Chem. Acta, 2013, 86(3): 233.
[11]  Wang Y L, Li D, Li P, Wang W D, Ren W, Dong S J, Wang E K. J. Phys. Chem. C, 2007, 111(45): 16833.
[12]  Boca S, Rugina D, Pintea A, Barbu-Tudoran L, Astilean S. Nanotechnol., 2011, 22(5): 055702.
[13]  Pavan Kumar G V, Shruthi S, Vibha B. J. Phys. Chem. C, 2007, 111(11): 4388.
[14]  Lee S, Chon H, Lee M, Choo J, Shin S Y, Lee Y H, Rhyu I J, Son S W, Oh C H. Biosens.Bioelectron., 2009, 24(7): 2260.
[15]  Song C, Wang Z, Yang J. Acta Chim. Sinica, 2009, 67: 493.
[16]  Wang X M, Zhang R Y, Wu C H, Dai Y Y, Song M, Gao F, Lv G, Li J Y, Li X M. J. Biomed. Mater. Res. Part A, 2007, 80(4): 852.
[17]  Wang Z Y, Wu H, Wang C L, Xu S H, Cui Y P. J. Mater. Chem., 2011, 21(12): 4307.
[18]  Fang H, Zhang C X, Liu L, Zhao Y M, Xu H J, Biosens. Bioelectron., 2014, 64: 434.
[19]  Chen Z Y, Dai Z M, Chen N, Liu S P, Pang F F, Lu B, Wang T Y. IEEE Photonics Technol. Lett, 2014, 26(8): 777.
[20]  Deng Y L, Juang Y J. Biosens. Bioelectron., 2014, 53: 37.
[21]  Sarkar A, Wang H, Daniels-Race T. Electron. Mater. Lett., 2014, 10(2): 325.
[22]  MacLaughlin C M, Mullaithilaga N, Yang G, Ip S Y, Wang C, Walker G C. Langmuir, 2013, 29(6): 1908.
[23]  Guven B, Dudak F C, Boyaci I H, Tamer U, Ozsoz M. Analyst, 2014, 139(5): 1141.
[24]  Lin C C, Chang C W. Biosens. Bioelectron., 2014, 51: 297.
[25]  You L J, An Q, Guo J, Hu J J, Wang C C. RSC Adv., 2013, 3(38): 17469.
[26]  Furusho H, Oishi M, Kishi T, Yasumori A, Nagasaki Y. Chem. Lett., 2010, 39(1): 52.
[27]  Kang H, Yim J, Jeong S, Yang J K, Kyeong S, Jeon S J, Kim J, Eom K D, Lee H, Kim H I, Jeong D H, Kim J H, Lee Y S. ACS Appl. Mater. Interfaces, 2013, 5(24): 12804.
[28]  Wrzesien J, Graham D. Tetrahedron, 2012, 68(4): 1230.
[29]  Brady C I, Mack N H, Brown L O, Doorn S K. Anal. Chem. Phys. Lett., 2009, 81: 7181.
[30]  Mulvaney S P, Musick M D, Keating C D, Natan M J. Langmuir, 2003, 19: 4784.
[31]  Pinkhasova P, Yang L, Zhang Y, Sukhishvili S, Du H. Langmuir, 2012, 28: 2529.
[32]  Zhang D M, Ansar S M, Vangala K, Jiang D P. J. Raman Spectrosc., 2010, 41(9): 952.
[33]  Marz A, Trupp S, Rosch P, Mohr G J, Popp J. Anal. Bioanal.Chem., 2012, 402(8): 2625.
[34]  MacLaughlin C M, Parker E P K, Walker G C, Wang C. Nanomed. Nanotechnol. Biol. Med., 2013, 9(1): 55.
[35]  Sha M Y, Xu H X, Natan M J, Cromer R. J. Am. Chem. Soc., 2008, 130(51): 17214.
[36]  Zong S F, Wang Z Y, Yang J, Wang C L, Xu S H, Cui Y P. Talanta, 2012, 97: 368.
[37]  Samanta A, Jana S, Das R K, Chang Y T. RSC Adv., 2014, 4(24): 12415.
[38]  Chen H, Wang Z Y, Ma X Q, Zong S F, Cui Y P. Talanta, 2013, 116: 978.
[39]  Vendrell M, Maiti K K, Dhaliwal K, Chang Y T. Trends Biotechnol., 2013, 31(4): 249.
[40]  Lee S. Anal. Chem., 2007, 79: 916.
[41]  Lee S, Chon H, Lee M, Choo J, Shin S Y, Lee Y H, Rhyu I J, Son S W, Oh C H. Biosens. Bioelectron., 2009, 24(7): 2260.
[42]  Wu P, Gao Y, Zhang H, Cai C X. Anal. Chem., 2012, 84(18): 7692.
[43]  Zhang G, Qu G, Chen Y, Shen A, Xie W, Zhou X, Hu J. J. Phys. Chem. B, 2013, 1(35): 4364.
[44]  Wu P, Gao Y, Lu Y, Zhang H, Cai C. Analyst, 2013, 138(21): 6501.
[45]  Zhang Y Y, Yu W S, Pei L, Lai K Q, Rasco B A, Huang Y Q. Food Chem., 2014, 169: 80.
[46]  Ganbold E O, Lee C M, Cho E M, Son S J, Kim S, Joo S W, Yang S I. Anal. Methods, 2014, 6(11): 3573.
[47]  Zong S, Wang Z, Yang J, Wang C, Xu S, Cui Y. Talanta, 2012, 97: 368.
[48]  崔颜 (Cui Y), 任斌 (Ren B), 田中群 (Tian Z Q). 东南大学学报 (医学版) (Journal of Southeast University (Medical Science Edition)), 2011, 1: 254.
[49]  Fu C C, Gu Y J, Wu Z Y, Wang Y Y, Xu S P, Xu W Q. Sens. Actuators B, 2014, 201: 173.
[50]  Fleischmann M, Hendra P J, McQuillan A J. Chem. Phys. Lett., 1974, 26(2): 163.
[51]  Otto A, Mrozek I, Grabhorn H, Akemann W J. Matter, 1992, 4: 1143.
[52]  Wu D Y, Liu X M, Duan S, Xu X, Ren B, Lin S H, Tian Z Q. Phys. Chem., 2008, 112(11): 4195.
[53]  Xu H, Aizpurua J, K?ll M, Apell P. Phys. Rev. E, 2000, 62(3): 4318.
[54]  Fang W, Wang Z Y, Zong S F, Chen H, Zhu D, Zhong Y, Cui Y P. Biosens. Bioelectron., 2014, 57: 10.
[55]  DeVetter B M, Bhargava R, Murphy C J. Photochem. Photobiol., 2014, 90(2): 415.
[56]  Zhu H, Du M L, Zhang M, Wang P, Bao S Y, Zou M L, Fu Y Q, Yao J M. Biosens. Bioelectron., 2014, 54: 91.
[57]  Wang Y, Li D, Li P, Wang W, Ren W, Dong S, Wang E. J. Phys. Chem. C, 2007, 111(45): 16833.
[58]  Wang Z Y, Zong S F, Yang J, Song C Y, Li J, Cui Y P. Biosens. Bioelectron., 2010, 26(1): 241.
[59]  Jana N R, Gearheart L, Murphy C J. J. Phys. Chem. B, 2001, 105(19): 4065.
[60]  Wang C G, Irudayaraj J. Small, 2010, 6(2): 283.
[61]  Yuan H, Khoury C G, Hwang H, Wilson C M, Grant G A, Vo-Dinh T. Nanotechnol., 2012, 23(7): 075102.
[62]  Tan X B, Wang Z Y, Yang J, Song C Y, Zhang R H, Cui Y P. Nanotechnol., 2009, 20(44): 445102.
[63]  Niu X J, Chen H Y, Wang Y Q, Wang W H, Sun X Y, Chen L X. ACS Appl. Mater. Interfaces, 2014, 6(7): 5152.
[64]  Dey P, Olds W, Blakey I, Thurecht K J, Izake E L, Fredericks P M. J. Raman Spectrosc., 2013, 44(12): 1659.
[65]  Sun L, Sung K B, Dentinger C, Lutz B, Nguyen L. B. Nano Lett., 2007, 7: 351.
[66]  Dinish U S, Balasundaram G, Chang Y T, Olivo M. Sci. Rep., 2014, 4: 4075.
[67]  Dinish U S, Fu C Y, Soh K S, Bhuvaneswari R, Kumar A, Olivo M. Biosens. Bioelectron., 2012, 33(1): 293.
[68]  Wang X, Qian X M, Beitler J J, Chen Z G, Khuri F R, Lewis M M, Shin H J C, Nie S M, Shin D M. Cancer Res., 2011, 71(5): 1526.
[69]  Liu Z M, Guo Z Y, Zhong H Q, Qin X C, Wan M M, Yang B W. Phys. Chem. Chem. Phys., 2013, 15(8): 2961.
[70]  Kneipp J, Kneipp H, Wittig B. J. Phys. Chem. C, 2010, 114: 7421.
[71]  Zong S, Wang Z, Yang J, Cui Y. Anal. Chem., 2011, 83(11): 4178.
[72]  Liang L, Li J, Li Q, Huang Q, Shi J Y, Yan H, Fan C H. Angew. Chem. Int. Edit., 2014, 53(30): 7745
[73]  Song J, Zhou J, Duan H. J. Am. Chem. Soc., 2012, 134(32): 13458.
[74]  Wang Y Q, Chen L X, Liu P. Chem. Eur. J., 2012, 18(19): 5935.
[75]  Lu W, Singh A K, Khan S A. J. Am. Chem. Soc., 2010,132(51): 18103.
[76]  Shen S, Tang H Y, Zhang X T, Ren J F, Pang Z Q, Wang D G, Gao H L, Qian Y, Jiang X G, Yang W L. Biomater., 2013, 34(12): 3150.

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