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Progress in Chemistry 2007, Vol. 19 Issue (0708): 1153-1158 Previous Articles   Next Articles

• Special issues •

Plant Cell Wall Proteins & Enzymatic Hydrolysis of Lignocellulose

Han Yejun;Chen Hongzhang**   

  1. National Key Laboratory of Biochemical Engineering,Institute of Process Engineering,Chinese Academy of Sciences,Beijing 100080,China
  • Received: Revised: Online: Published:
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Lignocellulose is a key feedstock for production of bioenergy and biobased products. The structure of lignocellulose is highly complicated. The enzymatic efficiency of lignocellulose is influenced by the congregated structure and components of which. The main cell wall proteins of plant and the potential effects on enzymatic hydrolysis of lignocellulose are reviewed. Study of the enzymatic hydrolysis of lignocellulose from the activities of plant cell wall proteins affords new insight to investigate the mechanisms of enzymatic hydrolysis and efficient hydrolysis ways.

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[ 1 ] Jarvis M. Nature , 2003 , 426 : 611 —612
[ 2 ] Klemm D. Comprehensive Cellulose Chemistry. New York : Wiley VCH , 1998
[ 3 ] Angenent L T , Karim K, Al-Dahhan M H , Wrenn B A , et al .Trends. Biotechnol . , 2004 , 22 (9) : 477 —485
[ 4 ] Demain A L , Newcomb M, Wu J H D. Microbiol . Mol . Biol .Rev. , 2005 , 69 : 124 —154
[ 5 ] Zhang Y H P , Himmel M E , Mielenz J R. Biotechnol . Adv. ,2006 , 24(5) : 452 —481
[ 6 ] Zhbankov R G. J . Mol . Struct . , 1992 , 270 : 523 —539
[ 7 ] Nishiyama Y, Sugiyama J , Chanzy H , et al . J . Am. Chem.Soc. , 2003 , 25(47) : 14300 —14306
[ 8 ] Notley S M, Pettersson B , Wagberg L. J . Am. Chem. Soc. ,2004 , 126 (43) : 13930 —13931
[ 9 ] Zhang Y H P , Lynd L R. Biotechnol . Bioeng. , 2004 , 88 (7) :797 —824
[10] Fernández-Bola? nos J , Felizón B , Heredia A , et al . Bioresour.Technol . , 2001 , 79 (1) : 53 —61
[11] McMillan J D. ACS Symp. Ser. , 1994 , 566 : 292 —324
[12] Sun Y, Cheng J Y. Bioresour. Technol . , 2002 , 83 (1) : 1 —11
[13] Cosgrove D J . Nature , 2000 , 407 : 321 —326
[14] McQueen-Mason S , Cosgrove D J . Plant Biol . , 1994 , 91 (14) :6574 —6578
[15] Whitney S E , Gidley M J , McQueen-Mason S J . Plant J . , 2000 ,22 (4) : 327 —334
[16] Qin L , Kudla U , Roze E H A , et al . Nature , 2003 , 427 : 30
[17] Saloheimo M, Paloheimo M, Hakola S , et al . Eur. J . Biochem. ,2002 , 269 (17) : 4202 —4211
[18] Wang W, Gao P J . J . Biotechnol . , 2003 , 101 (2) : 119 —130
[19] Lee S J , Saravanan R S , Damasceno CMB , et al . Plant Physiol .Biochem. , 2004 , 42 (12) : 979 —988
[20] Han Y J , Chen H Z. Enzyme Microb. Technol . , 2007 , doi : 10.1016/j . enzmictec. 2007. 05. 012
[21] Doblin M S , Kurek I , Jacob-Wilk D , et al . Plant Cell Physiol . ,2002 , 43 : 1407 —1420
[22] Fry S C. New Phytologist , 2004 , 161 (3) : 641 —675
[23] Hrmova M, Fincher G B. Plant Mol . Biol . , 2001 , 47 : 73 —91
[24] Nicol F , His I , Jauneau A , et al . EMBO J . , 1998 , 17 : 5563 —5576
[25] Lashbrook C C , Gonzalez-Bosch C , Bennett A B. Plant Cell ,1994 , 6 : 1485 —1493
[26] Hoj P B , Fincher GB. Plant J . , 1995 , 7 : 367 —379
[27] Spolaore S , Trainotti L , Pavanello A , et al . J . Exp. Bot . ,2003 , 54 : 271 —277
[28] Stewart R J , Varghese J N , Garrett T P , Hoj P B , Fincher GB.Protein Eng. , 2001 , 14 : 245 —253
[29] Masahiro I , Donald J N. Plant Cell Physiol . , 1998 , 39 ( 7) :762 —768
[30] Leah R , Kigel J , Svendsen I , et al . J . Biol . Chem. , 1995 ,270 : 15789 —15797
[31] Hrmova M, MacGregor E A , Biely P , et al . J . Biol . Chem. ,1998 , 273 : 11134 —11143
[32] KimJ B , Olek A T , Carpita N C. Plant Physiol . , 2000 , 123 :471 —486
[33] Cosgrove D J . Plant Mol . Biol . , 1999 , 50 : 391 —417
[34] Cosgrove D J . Nature , 2000 , 407 : 321 —326
[35] Lee Y, Choi D , Kende H. Curr. Opin. Plant Biol . , 2001 , 4(6) : 527 —532
[36] Shcherban T Y, Shi J , Durachko D , Guiltinan MJ , et al . Proc.Natl . Acad. Sci . USA , 1995 , 92 : 9245 —9249
[37] Whitney S E , Gidley M J , McQueen-Mason S J . Plant J . , 2000 ,22 : 327 —334
[38] McQueen-Mason S , Cosgrove D J . Proc. Natl . Acad. Sci . USA ,1994 , 91 : 6574 —6578
[39] Lee R H , Wang C H , Huang L T. J . Exp. Bot . , 2001 , 52(358) : 1117 —1121
[40] Reese E G, Siu G H , Levinson H S. J . Bacteriol . , 1950 , 59 :485 —497
[41] Seymour G B , Gross K C. Postharvest News and Info , 1996 , 7 :5 —52
[42] Atkinson R G, Schroder R , Hallet I C , et al . Plant Physiol . ,2002 , 129 : 122 —133
[43] Micheli F. Trends Plant Sci . , 2001 , 6 : 414 —419
[44] Fry S C. The growing plant cell wall : chemical and metabolicanalysis (reprint) . New Jersey : the Blackburn Press , 2000
[45] Collins T , Gerday C , Feller G. FEMS Microbiol . Rev. , 2005 ,29 (1) : 3 —23
[46] Takeda N , Kistner C , Kosuta S , et al . Phytochemistry , 2006 , 68(1) : 111 —121
[47] Sansen S , de Ranter C J , Gebruers K. J . Biol . Inorg. Chem. ,2004 , 279 (34) : 36022 —36028
[48] Daniela B , Laura C. BBA-Proteins & Proteomics , 2004 , 1696(2) : 265 —274
[49] Flatman R , McLauchlan W R , Juge N , et al . Biochem. J . ,2002 , 365 : 773 —781
[50] Eliott G O , McLauchlan W R , Williamson P A , Kroon P A. J .Cereal Sci . , 2003 , 37 : 187 —194
[51] Bergmann C W, Ito Y, Sitiger D. Plant J . , 2005 , 5 : 625 —634
[52] Mattei B , Bernalda M S , Federici L. Biochemistry , 2001 , 40(2) : 569 —576
[53] Powell A L T , van Kan J , Have A T. Mol . Plant Microbe.Interac. , 2000 , 13(9) : 942 —950
[54] Di M A , Federici L , Mattei B. Proc. Natl . Acad. Sci . USA ,2003 , 100 (17) : 10124 —10128

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