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Progress in Chemistry 2008, Vol. 20 Issue (12): 2021-2033 Previous Articles   Next Articles

• Review •

Application of Near-infrared Spectroscopy in the Study of Protein and Polymer with Amide Group

Jiang Yan; Wu Peiyi**

  

  1. (The Key Laboratory of Molecular Engineering of Polymers, Department of Macromolecular Science, Fudan University, Shanghai 200433, China)

  • Received: Revised: Online: Published:
  • Contact: Wu Peiyi
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Near-infrared spectroscopy is a widely-used nondestructive analytical tool. But the disadvantages of weak band intensities and greatly overlapped bands have limited its application. In this review, several methods to improve the drawbacks of NIR spectroscopy, such as second-derivative spectrum, two-dimensional correlation spectroscopy and chemometrics, are introduced. The applications of NIR spectroscopy after the useful treatments mentioned here in the studies of the structures and contents of both proteins and polymers with amide groups are discussed. All these show that the methods do a lot of help in the qualitative and quantitative analysis of near-infrared spectra and broaden the potential application of NIR spectroscopy.

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[1 ] Ozaki Y, Siesler H W, Kawata S , et al . Near-Infrared Spectroscopy. Germany : Weinheim , 2002
[2 ] Wang J , Sowa M G, Ahmed M K, et al . J . Phys. Chem. , 1994 ,98 : 4748 —4755
[3 ] Wu P , Siesler H W. J . Near Infrared Spectrosc. , 1999 , 7 :65 —76
[4 ] Wang Y, Murayama K, Myojo Y, et al . J . Phys. Chem. B ,1998 , 102 : 6655 —6662
[5 ] Williams P , Norris K. Near-Infrared Technology in the Agricultural and Food Industries. 2nd ed. St . Paul , MN:American Association of Cereal Chemists , 1990
[6 ] Burns D A , Ciurczak E W. Handbook of Near-Infrared Analysis.New York : Dekker , 1992
[7 ] Osborne B G, Fearn T, Hindle P H. Practical Near Infrared Spectroscopy with Applications in Food and BeVerage Analysis.Essex , England : Longman Scientific & Technical , 1993
[8 ] Cho R K, Lee J H , Ahn J J , et al . J . Near Infrared Spectrosc. ,1996 , 3 : 73 —79
[9 ] Davies A M C , Williams P. Near-infrared Spectroscopy : TheFuture Waves. West Sussex , England : NIR Publications , 1996
[10] Liu Y L , Cho R K, Sakurai K, et al . Appl . Spectrosc. , 1994 ,48 : 1249 —1254
[11] Andaloro G, Chirico P , Guzzio G, et al . J . Chem. Phys. , 1977 ,66 : 335 —341
[12] Luck WA P , Franks F. Water : A ComprehensiVe Treatise. New York : Plenum Press , 1973
[13] Clark R J H , Hester R E. Spectroscopy of Biological Systems.New York : John Wiley &Sons , 1986
[14] Clark R J H , Hester R E. Biomolecular Spectroscopy. New York :John Wiley &Sons , 1993
[15] Durig J R. Chemical , Biological and Industrial Applications of Infrared Spectroscopy. New York : John Wiley &Sons , 1985
[16] Havel H A. Spectroscopic Methods for Determining Protein Structure in Solution. New York : John Wiley &Sons , 1995
[17] Mantsch H H , Chapamn D. Infrared Spectroscopy of Biomolecules. New York : John Wiley &Sons , 1996
[18] Spiro T G. Biological Application of Raman Spectroscopy. New York : John Wiley &Sons , 1988
[19] Stuart B , Ando D J . Biological Applications of Infrared Spectroscopy. New York : John Wiley &Sons , 1997
[20] Tani F , Shirai N , Onishi T, et al . Protein Sci . , 1997 , 6 :1491 —1502
[21] Izutsu K I , Fujimaki Y, Kuwabara A , et al . J . Pharm. Sci . ,2006 , 95 : 781 —789
[22] Akers MJ , Vasudevan V , Stickelmeyer M. Pharm. Biotechnol . ,2002 , 14 : 47 —127
[23] Carpenter J F , Chang B S , Garzon-Rodriguez W, et al . Pharm.Biotechnol . , 2002 , 13 : 109 —133
[24] Costantino H R , Pikal MJ . Lyophilization of biopharmaceuticals.Arlington: American Association of Pharmaceutical Scientists ,2004
[25] Blanco M, Coello J , Iturriaga H , et al . Analyst , 1998 , 123 :135R —150R
[26] Sadler A J , Horsch J G, Lawson E Q , et al . Anal . Biochem. ,1984 , 138 : 44 —51
[27] Robert P , Devaux M F , Mouhous N , et al . Appl . Spectrosc. ,1999 , 53 : 226 —232
[28] Wu YQ , Czarnik-Matusewicz B , Murayama K, et al . J . Phys.Chem. B , 2000 , 104 : 5840 —5847
[29] Navea S , de Juan A , Tauler R. Anal . Chem. , 2003 , 75 :5592 —5601
[30] Bai S , Nayar R , Carpenter J F , et al . J . Pharm. Sci . , 2005 ,94 : 2030 —2038
[31] Miyazawa M, Sonoyama M. J . Near Infrared Spectrosc. , 1998 ,6 : A253 —A257
[32] Yuan B, Murayama K, Wu Y Q , et al . Appl . Spectrosc. , 2003 ,57 : 1223 —1229
[33] Vandermeulen D L , Ressler N. Arch. Biochem. Biophys. ,1980 , 199 : 197 —205
[34] Dong A C , Prestrelski S J , Allison S D , et al . J . Pharm. Sci . ,1995 , 84 : 415 —424
[35] Prestrelski S J , Arakawa T, Carpenter J F. Arch. Biochem.Biophys. , 1993 , 303 : 465 —473
[36] Izutsu K, Kojima S. J . Pharm. Pharmacol . , 2002 , 54 : 1033 —1039
[37] Noda I. Appl . Spectrosc. , 1993 , 47 : 1329 —1336
[38] Noda I. Appl . Spectrosc. , 1990 , 44 : 550 —561
[39] Noda I , Liu Y L , Ozaki Y. J . Phys. Chem. , 1996 , 100 :8665 —8673
[40] Noda I , Liu Y L , Ozaki Y. J . Phys. Chem. , 1996 , 100 :8674 —8680
[41] Noda I , Liu Y L , Ozaki Y, et al . J . Phys. Chem. , 1995 , 99 :3068 —3073
[42] Maeda H , Ozaki Y, Tanaka M, et al . J . Near Infrared Spectrosc. , 1995 , 3 : 191 —201
[43] Bruun S W, Sfndergaard I , Jacobsen S. J . Agric. Food Chem. ,2007 , 55 : 7234 —7243
[44] Bruun S W, Sfndergaard I , Jacobsen S. J . Agric. Food Chem. ,2007 , 55 : 7244 —7251
[45] Veraverbeke W S , Delcour J A. Crit . Rev. Food Sci . , 2002 ,42 : 179 —208
[46] Pezolet M, Bonenfant S , Dousseau F , et al . FEBS Lett . , 1992 ,299 : 247 —250
[47] Holly S , Egyed O , Jalsovszky G. Spectrochim Acta A , 1992 , 48 :101 —109
[48] Murayama K, Ozaki Y. Biopolymers , 2002 , 67 : 394 —405
[49] Czarnik-Matusewicz B , Murayama K, Tsenkova R , et al . Appl .Spectrosc. , 1999 , 53 : 1582 —1594
[50] Yamashita H , Takamura H , Matoba T. J . Near Infrared Spec. ,1994 , 2 : 145 —151
[51] Kamishikiryo-Yamashita H , Tatara M, Takamura H , et al . J .Jpn. Soc. Food Sci . Technol . , 1994 , 41 : 65 —69
[52] Wellner N , Belton P S , Tatham A S. Biochem. J . , 1996 , 319 :741 —747
[53] Georget D M R , Belton P S. Biomacromolecules , 2006 , 7 : 469 —475
[54] Mangavel C , Barbot J , Popineau Y, et al . J . Agric. Food Chem. , 2001 , 49 : 867 —872
[55] Kovalenko I V , Rippke G R , Hurburgh C R. J . Agric. Food Chem. , 2006 , 54 : 3485 —3491
[56] Tsenkova R , Atanassova S , Itoh K, et al . J . Anim. Sci . , 2000 ,78 : 515 —522
[57] Sasic S, Ozaki Y. Anal . Chem. , 2001 , 73 : 64 —71
[58] Uddin M, Okazaki E , Fukushima H , et al . Food Chem. , 2006 ,96 : 491 —495
[59] Schênbrodt T, Mohl S , Winter G, et al . J . Controlled Release ,2006 , 114 : 261 —267
[60] Font R , R¥o-Celestino M D , Haro-Bailon A D. Ind. Crop.Prod. , 2006 , 24 : 307 —313
[61] González-Martín I , Hernández-Hierro J M, González-Cabrera J M.Anal . Bioanal . Chem. , 2007 , 387 : 2199 —2205
[62] Sultaneh A , Rohm H. Int . J . Dairy Technol . , 2007 , 60 :241 —244
[63] 李庆波(Li Q B) , 倪勇(Ni Y) , 周定文(Zhou D W) 等. 仪器仪表学报(Chin. J . Sci . Instrum. ) , 2003 , 24 : 555 —558 ,617
[64] 陈华才(Chen H C) , 杨仲国( Yang Z G) , 陈星旦(Chen X D) 等. 分析试验室(Chin. J . Anal . ) , 2005 , 24 : 17 —20
[65] 王卫东(Wang WD) , 谷运红(Gu YH) , 秦广雍(Qin G Y) ,et al . 光谱学与光谱分析(Spectrosc. Spectral Anal . ) , 2007 ,27 : 697 —701
[66] 常敏(Chang M) , 褚鹏蛟(Chu P J ) , 徐可欣(Xu K X) . 光谱学与光谱分析( Spectrosc. Spectral Anal . ) , 2007 , 27 :43 —45
[67] 毕卫红(Bi W H) , 李超(Li C) , 苗玉洁(Miao YJ ) 等. 计量技术(Meas. Tech. ) , 2005 , 8 : 34 —36
[68] Mecke R. Discuss. Faraday Soc. , 1950 , 9 : 161 —177
[69] Stuart A V. J . Chem. Phys. , 1953 , 21 : 1115 —1115
[70] Luck W. Ber. Bunsen2Ges. , 1963 , 67 : 186 —189
[71] Fletcher A N , Heller C A. J . Phys. Chem. , 1967 , 71 : 3742 —3756
[72] Iwahashi M, Hachiya N , Hayashi Y, et al . J . Phys. Chem. ,1993 , 97 : 3129 —3133
[73] Czarnecki MA , Liu Y, Ozaki Y, et al . Appl . Spectrosc. , 1993 ,47 : 2162 —2168
[74] Liu Y, Ozaki Y, Noda I. J . Phys. Chem. , 1996 , 100 : 7326 —7332
[75] Coleman MM, Graf J F , Painter P C. Specific Interactions and the Miscibility of Polymer Blends. Lancaster , PA: Technomic Publishing Co. , 1991
[76] Ozaki Y, Liu Y. Macromolecules , 1997 , 30 : 2391 —2399
[77] Sun B , Lin Y, Wu P. Appl . Spectrosc. , 2007 , 61 : 765 —771
[78] Wu P , Siesler H W. J . Mol . Struct . , 2000 , 521 : 37 —47
[79] Wu P , Yang Y, Siesler H W. Polymer , 2001 , 42 : 10181 —10186
[80] Ozaki Y, Murayama K, Wang Y. Vib. Spectrosc. , 1999 , 20 :127 —132
[81] Mark H F , Bikales N M, Overberger C G, et al . Encyclopedia of Polymer Science and Engineering. 2nd ed. New York : Wiley-Interscience , 1985 —1990
[82] Cheng H , Shen L , Wu C. Macromolecules , 2006 , 39 : 2325 —2329
[83] Maeda Y, Higuchi T, Ikeda I. Langmuir , 2000 , 16 : 7503 —7509
[84] Meersman F , Wang J , Wu Y Q , et al . Macromolecules , 2005 ,38 : 8923 —8928
[85] Czarnecki M A , Wu P Y, Siesler H W. Chem. Phys. Lett . ,1998 , 283 : 326 —332
[86] Camacho W, Valles-Lluch A , Ribes-Greus A , et al . J . Appl .Polym. Sci . , 2003 , 87 : 2165 —2170
[87] Paterson MWA , White J R. J . Mater. Sci . , 1992 , 27 : 6229 —6240
[88] Lachenal G. Vib. Spectrosc. , 1995 , 9 : 93 —100
[89] Venz S , Dickens B. J . Biomed. Mater. Res. , 1991 , 25 :1231 —1248

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