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Progress in Chemistry 2009, Vol. 21 Issue (11): 2411-2423 Previous Articles   Next Articles

• Special issues •

Progress in the Research of Peptide Self-Assembly

Meng Qingbin; Liu Keliang**   

  1. (Institute of Toxicology and Pharmacology, Academy of Military Medical Sciences, Beijing 100850, China )
  • Received: Online: Published:
  • Contact: Liu Keliang E-mail:keliangliu@yahoo.com
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In recent years, peptide self-assembly has gradually become a hot issue in the fields of materal and biological sciences due to its structure diversity and bright perspective applications in these fields. We summarize the progress in the peptide self-assembly studies and introduce varied morphology formed by peptide self-assembly. Simultaneously, the mechanism and influencing factors of the peptide self-assembly are also discussed.

Contents
1 Mechanisms and conformational changes in peptide self-assembly
2 The structure diversity of peptide self-assembly
2.1 Membrane structures
2.2 Nanotubes, nanovesicles and nanowires
2.3 Nanofibers and hydrogels
2.4 Co-assembly between peptides and other molecules
3 The influencing factors of peptide self-assembly
3.1 pH and ionic strength
3.2 Temperature
3.3 Peptide structures

CLC Number: 

[ 1 ]  Vauthey S , Santoso S , Zhang S , et al . Proc. Natl . Acad. Sci .USA , 2002 , 99 (8) : 5355 —5360
[ 2 ]  Zhao X, Zhang S. Macromol . Biosci . , 2007 , 7 : 13 —22
[ 3 ]  Maltzahn G, Vauthey S , Santoso S , et al . Langmuir , 2003 , 19 :4332 —4337
[ 4 ]  Winger T M, Ludovice P J , Chaikof E L. Biomaterials , 1996 , 17 :437 —441
[ 5 ]  Yu Y C , Berndt P , Tirrell M, et al . J . Am. Chem. Soc. , 1996 ,118 : 12515 —12520
[ 6 ]  Fields GB , Lauer J L , Dori Y, et al . Biopolymers , 1998 , 47 :143 —151
[ 7 ]  Yu Y C , Roontga V , Daragan V A , et al . Biochemistry , 1999 , 38 :1659 —1668
[ 8 ]  Berndt P , Fields G B , Tirrell M. J . Am. Chem. Soc. , 1995 , 117 :9515 —9522
[ 9 ]  Yu Y C , Pakalns T, Dori Y, et al . Methods Enzymol . , 1997 , 289 :571 —582
[10 ]  Yu Y C , Tirrell M, Fields GB. J . Am. Chem. Soc. , 1998 , 120 :9979 —9987
[11 ]  Zhang S , Holmes T, Lockshin C , et al . Proc. Natl . Acad. Sci .USA , 1993 , 90 : 3334 —3338
[12 ]  Zhang S , Lockshin C , Cook R , et al . Biopolymers , 1994 , 34 :663 —672
[13 ]  Hong Y, Legge R L , Zhang S , et al . Biomacromolecules , 2003 , 4 :1433 —1442
[14 ]  Zhao Y, Yokoi H , Tanaka M, et al . Biomacromolecules , 2008 , 9 :1511 —1518
[15 ]  Claussen R C , Rabatic B M, Stupp S I. J . Am. Chem. Soc. ,2003 , 125 : 12680 —12681
[16 ]  Li L , Jiang H , Messmore B W, et al . Angew. Chem. Int . Ed. ,2007 , 46 : 5873 —5876
[17 ]  Paramonov S E , Jun H W, Hartgerink J D. J . Am. Chem. Soc. ,2006 , 128 : 7291 —7298
[18 ]  Zhang S G, Rich A. Proc. Natl . Acad. Sci . USA , 1997 , 94 : 23 —28
[19 ]  Holmes T C , de Lacalle S , Su X, et al . Proc. Natl . Acad. Sci .USA , 2000 , 97 : 6728 —6733
[20 ]  Altman M, Lee P , Rich A , et al . Protein Sci . , 2000 , 9 : 1095 —1105
[21 ]  Marini D M, Hwang W, Zhang S G, et al . Nano Lett . , 2002 , 2(4) : 295 —299
[22 ]  Caplan M R , Moore P N , Zhang S , et al . Biomacromolecules ,2000 , 1 : 627 —631
[23 ]  Caplan M R , Schwartzfarb E M, Zhang S , et al . Biomaterials ,2002 , 23 : 219 —227
[24 ]  Ganesh S , Jayakumar R. Biopolymers , 2003 , 70 : 336 —345
[25 ]  Ganesh S , Prakash S , Jayakumar R. Biopolymers , 2003 , 70 : 346 —354
[26 ]  Yamada N , Ariga K, Naito M, et al . J . Am. Chem. Soc. , 1998 ,120 : 12192 —12199
[27 ]  Dublin S N , Conticello V P. J . Am. Chem. Soc. , 2008 , 130 :49 —51
[28 ]  Przybyla D E , Chmielewski J . J . Am. Chem. Soc. , 2008 , 130 :12610 —12611
[29 ]  Zhang S , Holmes T C , Dipersio C M, et al . Biomaterials , 1995 ,16 : 1385 —1393
[30 ]  Biesalski M A , Knaebel A , Tu R , et al . Biomaterials , 2006 , 27 :1259 —1269
[31 ]  Yamada N , Komatsu T, Yoshinaga H , et al . Angew. Chem. Int .Ed. , 2003 , 42 : 5496 —5499
[32 ]  Santoso S , Hwang W, Hartman H , et al . Nano Lett . , 2002 , 2 (7) :687 —691
[33 ]  Kiley P , Zhao X, Vaughn M, et al . PLoS. Biol . , 2005 , 3 (7) :1180 —1186
[34 ]  Matsumoto K, Vaughn M, Bruce B D , et al . J . Phys. Chem. B ,2009 , 113 : 75 —83
[35 ]  Zhao XL , Nagai Y, Reeves P J , et al . Proc. Natl . Acad. Sci . ,2006 , 103 (47) : 17707 —17712
[36 ]  Khoe U , Yang Y L , Zhang S G. Macromol . Biosci . , 2008 , 8 :1060 —1067
[37 ]  Kanzaki T, Horikawa Y, Makino A , et al . Macromol . Biosci . ,2008 , 8 : 1026 —1033
[38 ]  Khoe U , Yang Y, Zhang S. Langmuir , 2009 , 25 (7) : 4111 —4114
[39 ]  Ryu J , Park C B. Adv. Mater. , 2008 , 20 : 3754 —3758
[40 ]  Biesalski M, Tu R , Tirrell M V. Langmuir , 2005 , 21 : 5663 —5666
[41 ]  Krysmann M J , Castelletto V , McKendrick J E , et al . Langmuir ,2008 , 24 : 8158 —8162
[42 ]  Lee K C , Carlson P A , Goldstein A S , et al . Langmuir , 1999 , 15 :5500 —5508
[43 ]  Bitton R , Schmidt J , Biesalski M, et al . Langmuir , 2005 , 21 :11888 —11895
[44 ]  Yokoi H , Kinoshita T, Zhang S. Proc. Natl . Acad. Sci . , 2005 ,102 (24) : 8414 —8419
[45 ]  Ellis-Behnke R G, Tay D K C , Liang Y X, et al . Nanomed.Nanotechnol . Biol . Med. , 2005 , 1 : 269 —270
[46 ]  Ellis-Behnke R G, Liang Y X, Tay D K C , et al . Nanomed.Nanotechnol . Biol . Med. , 2006 , 2 : 207 —215
[47 ]  Bokhari M A , Akay G, Zhang S , et al . Biomaterials , 2005 , 26 :5198 —5208
[48 ]  Ellis-Behnke R G, Liang Y X, You S W, et al . Proc. Natl . Acad.Sci . , 2006 , 103 (13) : 5054 —5059
[49 ]  GenovéE , Shen C , Zhang S , et al . Biomaterials , 2005 , 26 :3341 —3351
[50 ]  Wang X, Horii A , Zhang S. Soft Matter , 2008 , 4 : 2388 —2395
[51 ]  Davis M E , Motion J P M, Narmoneva D A , et al . Circulation ,2005 , 111 : 442 —450
[52 ]  Narmoneva D A , Oni O , Sieminski A L , et al . Biomaterials , 2005 ,26 : 4837 —4846
[53 ]  Chau Y, Luo Y, Cheung A C Y, et al . Biomaterials , 2008 , 29 :1713 —1719
[54 ]  Luo Z, Zhao X, Zhang S. Macromol . Biosci . , 2008 , 8 : 785 —791
[55 ]  Zhao Y, Tan T, Yokoi H , et al . J . Polym. Sci . Part A: Polym.Chem. , 2008 , 46 : 4927 —4933
[56 ]  Kisiday J , Jin M, Kurz B , et al . Proc. Natl . Acad. Sci . , 2002 , 99(15) : 9996 —10001
[57 ]  Zhou M, Smith A M, Das A K, et al . Biomaterials , 2009 , 30 :2523 —2530
[58 ]  Hartgerink J D , Beniash E , Stupp S I. Science , 2001 , 294 : 1684 —1688
[59 ]  Hartgerink J D , Beniash E , Stupp S I. Proc. Natl . Acad. Sci . ,2002 , 99 (8) : 5133 —5138
[60 ]  Stendahl J C , Rao M S , Guler M O , et al . Adv. Funct . Mater. ,2006 , 16 : 499 —508
[61 ]  Beniash E , Hartgerink J D , Storrie H , et al . Acta Biomaterialia ,2005 , 1 : 387 —397
[62 ]  Arnold M S , Guler M O , Hersam M C , et al . Langmuir , 2005 , 21 :4705 —4709
[63 ]  Rajangam K, Behanna H A , Hui M J , et al . Nano Lett . , 2006 , 6(9) : 2086 —2090
[64 ]  Rajangam K, Arnold M S , Rocco M A , et al . Biomaterials , 2008 ,29 : 3298 —3305
[65 ]  Silva G A , Czeisler C , Niece K L , et al . Science , 2004 , 303 :1352 —1355
[66 ]  Niece K L , Hartgerink J D , Donners J J J M, et al . J . Am. Chem.Soc. , 2003 , 125 : 7146 —7147
[67 ]  Jiang H , Guler M O , Stupp S I. Soft Matter , 2007 , 3 : 454 —462
[68 ]  Behanna H A , Rajangam K, Stupp S I. J . Am. Chem. Soc. ,2007 , 129 : 321 —327
[69 ]  Behanna H A , Donners J J J M, Gordon A C , et al . J . Am. Chem.Soc. , 2005 , 127 : 1193 —1200
[70 ]  Hung A M, Stupp S I. Nano Lett . , 2007 , 7 : 1165 —1171
[71 ]  Tovar J D , Claussen R C , Stupp S I. J . Am. Chem. Soc. , 2005 ,127 : 7337 —7345
[72 ]  Li L S , Stupp S I. Angew. Chem. Int . Ed. , 2005 , 44 : 1833 —1836
[73 ]  Cui H , Muraoka T, Cheetham A G, et al . Nano Lett . , 2009 , 9(3) : 945 —951
[74 ]  Hsu L , Cvetanovich GL , Stupp S I. J . Am. Chem. Soc. , 2008 ,130 : 3892 —3899
[75 ]  Mata A , Hsu L , Capito R , et al . Soft Matter , 2009 , 5 : 1228 —1236
[76 ]  Jun H W, Yuwono V , Paramonov S E , et al . Adv. Mater. , 2005 ,17 : 2612 - 2617
[77 ]  Guler M O , Hsu L , Soukasene S , et al . Biomacromolecules , 2006 ,7 : 1855 —1863
[78 ]  Storrie H , Guler M O , Abu-Amara S N , et al . Biomaterials , 2007 ,28 : 4608 —4618
[79 ]  Harrington D A , Cheng E Y, Guler M O , et al . J . Biomed. Mater.Res. , 2006 , 78A: 157 —167
[80 ]  Ramani R , Hanski S , Laiho A , et al . Biomacromolecules , 2008 , 9 :1390 —1397
[81 ]  Sureshbabu N , Kirubagaran R , Jayakumar R. Eur. Biophys. J . ,2009 , 38 : 355 —367
[82 ]  Imanishi Y, Kimura S. Proc. Japan Acad. , 1992 , 68 (8) : 121 —126
[83 ]  Paramonov S E , Jun H W, Hartgerink J D. Biomacromolecules ,2006 , 7 : 24 —26
[84 ]  Lee H , Soukasene S , Jiang H , et al . Soft Matter , 2008 , 4 : 962 —964
[85 ]  Yuwono V M, Hartgerink J D. Langmuir , 2007 , 23 : 5033 —5038
[86 ]  Schneider J P , Pochan D J , Ozbas B , et al . J . Am. Chem. Soc. ,2002 , 124 : 15030 —15037
[87 ]  Guler M O , Claussen R C , Stupp S I. J . Mater. Chem. , 2005 ,15 : 4507 —4512
[88 ]  Guler M O , Pokorski J K, Appella D H , et al . Bioconjugate Chem. , 2005 , 16 : 501 —503
[89 ]  Branco M C , Pochan D J , Wagner N J , et al . Biomaterials , 2009 ,30 : 1339 —1347
[90 ]  Guler M O , Soukasene S , Hulvat J F , et al . Nano Lett . , 2005 , 5(2) : 249 —252
[91 ]  Pires M M, Chmielewski J . J . Am. Chem. Soc. , 2009 , 131 (7) :2706 —2712
[92 ]  Pochan D J , Schneider J P , Kretsinger J , et al . J . Am. Chem.Soc. , 2003 , 125 : 11802 —11803
[93 ]  Gore T, Dori Y, Talmon Y, et al . Langmuir , 2001 , 17 : 5352 —5360
[94 ]  Forns P , Lauer-Fields J L , Gao S , et al . Biopolymers , 2000 , 54 :531 —546
[95 ]  Lêwik D W P M, Garcia-Hartjes J , Meijer J T, et al . Langmuir ,2005 , 21 : 524 —526
[96 ]  Meijer J T, Roeters M, Viola V , et al . Langmuir , 2007 , 23 :2058 —2063

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