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Links from PubMed

Items: 10

1.

Nanotube formation by hydrophobic dipeptides.

Görbitz CH.

Chemistry. 2001 Dec 3;7(23):5153-9.

PMID:
11775688
2.

Microporous organic materials from hydrophobic dipeptides.

Görbitz CH.

Chemistry. 2007;13(4):1022-31. Review.

PMID:
17200919
3.

Design and properties of functional nanotubes from the self-assembly of cyclic peptide templates.

Chapman R, Danial M, Koh ML, Jolliffe KA, Perrier S.

Chem Soc Rev. 2012 Sep 21;41(18):6023-41. doi: 10.1039/c2cs35172b. Epub 2012 Aug 9. Review.

PMID:
22875035
4.

Supported membrane nanodevices.

Anrather D, Smetazko M, Saba M, Alguel Y, Schalkhammer T.

J Nanosci Nanotechnol. 2004 Jan-Feb;4(1-2):1-22. Review.

PMID:
15112538
5.

Supramolecular architectures generated by self-assembly of guanosine derivatives.

Davis JT, Spada GP.

Chem Soc Rev. 2007 Feb;36(2):296-313. Epub 2006 Nov 7. Review.

PMID:
17264931
6.

Peptides with regular enantiomeric sequences: a wide class of modular self-assembling architectures.

De Santis P, Morosetti S, Scipioni A.

J Nanosci Nanotechnol. 2007 Jul;7(7):2230-8. Review.

PMID:
17663235
7.

Rigid-rod molecules in biomembrane models: from hydrogen-bonded chains to synthetic multifunctional pores.

Sakai N, Mareda J, Matile S.

Acc Chem Res. 2005 Feb;38(2):79-87. Review.

PMID:
15709727
8.

Synthetic ion channels and pores (2004-2005).

Sisson AL, Shah MR, Bhosale S, Matile S.

Chem Soc Rev. 2006 Dec;35(12):1269-86. Epub 2006 May 18. Review.

PMID:
17225888
9.

Supramolecular nanotube architectures based on amphiphilic molecules.

Shimizu T, Masuda M, Minamikawa H.

Chem Rev. 2005 Apr;105(4):1401-43. Review. No abstract available.

PMID:
15826016
10.

Self-assembly of dendritic dipeptides as a model of chiral selection in primitive biological systems.

Rosen BM, Roche C, Percec V.

Top Curr Chem. 2013;333:213-53. doi: 10.1007/128_2012_398. Review.

PMID:
23306867
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