Interfiber interactions alter the stiffness of gels formed by supramolecular self-assembled nanofibers

被引:33
作者
Dagdas, Yavuz S. [1 ]
Tombuloglu, Aysegul [1 ]
Tekinay, Ayse B. [1 ]
Dana, Aykutlu [1 ]
Guler, Mustafa O. [1 ]
机构
[1] Bilkent Univ, UNAM Inst Mat Sci & Nanotechnol, TR-06800 Ankara, Turkey
关键词
PEPTIDE-AMPHIPHILE NANOFIBERS; NETWORKS; FORCES; ELASTICITY; MOLECULES; BINDING;
D O I
10.1039/c0sm01089h
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Molecular self-assembly is a powerful technique for developing novel nanostructures by using non-covalent interactions such as hydrogen bonding, hydrophobic, electrostatic, metal-ligand, pi-pi and van der Waals interactions. These interactions are highly dynamic and are often delicate due to their relatively weak nature. However, a sufficient number of these weak interactions can yield a stable assembly. In this work, we studied the mechanical properties of self-assembled peptide amphiphile nanostructures in the nanometre and micrometre scale. Hydrogen bonding, hydrophobic and electrostatic interactions promote self-assembly of peptide amphiphile molecules into nanofibers. Bundles of nanofibers form a three-dimensional network resulting in gel formation. The effect of the nanofiber network on the mechanical properties of the gels was analyzed by AFM, rheology and CD. Concentration and temperature dependent measurements of gel stiffness suggest that the mechanical properties of the gels are determined by a number of factors including the interfiber interactions and mechanical properties of individual nanofibers. We point out that the divergence in gel stiffness may arise from the difference in strength of interfiber bonds based on an energetic model of elastic rod networks, along with continuum mechanical models of bundles of rods. This finding differs from the results observed with traditional polymeric materials. Understanding the mechanisms behind the viscoelastic properties of the gels formed by self-assembling molecules can lead to development of new materials with controlled stiffness. Tissue engineering applications can especially benefit from these materials, where the mechanical properties of the extracellular matrix are crucial for cell fate determination.
引用
收藏
页码:3524 / 3532
页数:9
相关论文
共 36 条
[11]   Presentation of RGDS epitopes on self-assembled nanofibers of branched peptide amphiphiles [J].
Guler, Mustafa O. ;
Hsu, Lorraine ;
Soukasene, Stephen ;
Harrington, Daniel A. ;
Hulvat, James F. ;
Stupp, Samuel I. .
BIOMACROMOLECULES, 2006, 7 (06) :1855-1863
[12]   Self-assembly and mineralization of peptide-amphiphile nanofibers [J].
Hartgerink, JD ;
Beniash, E ;
Stupp, SI .
SCIENCE, 2001, 294 (5547) :1684-1688
[13]   Peptide-amphiphile nanofibers: A versatile scaffold for the preparation of self-assembling materials [J].
Hartgerink, JD ;
Beniash, E ;
Stupp, SI .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2002, 99 (08) :5133-5138
[14]   Tensegrity II. How structural networks influence cellular information processing networks [J].
Ingber, DE .
JOURNAL OF CELL SCIENCE, 2003, 116 (08) :1397-1408
[15]   Tensegrity I. Cell structure and hierarchical systems biology [J].
Ingber, DE .
JOURNAL OF CELL SCIENCE, 2003, 116 (07) :1157-1173
[16]   RIGID POLYMER NETWORK MODELS [J].
JONES, JL ;
MARQUES, CM .
JOURNAL DE PHYSIQUE, 1990, 51 (11) :1113-1127
[17]   VIBRATIONAL SPECTROSCOPY AND CONFORMATION OF PEPTIDES, POLYPEPTIDES, AND PROTEINS [J].
KRIMM, S ;
BANDEKAR, J .
ADVANCES IN PROTEIN CHEMISTRY, 1986, 38 :181-364
[18]   Development of minimal models of the elastic properties of flexible and stiff polymer networks with permanent and thermoreversible cross-links [J].
Lin, David C. ;
Douglas, Jack F. ;
Horkay, Ferenc .
SOFT MATTER, 2010, 6 (15) :3548-3561
[19]   ELASTICITY OF SEMIFLEXIBLE BIOPOLYMER NETWORKS [J].
MACKINTOSH, FC ;
KAS, J ;
JANMEY, PA .
PHYSICAL REVIEW LETTERS, 1995, 75 (24) :4425-4428
[20]   CIRCULAR-DICHROISM STUDIES OF DISTORTED ALPHA-HELICES, TWISTED BETA-SHEETS, AND BETA-TURNS [J].
MANNING, MC ;
ILLANGASEKARE, M ;
WOODY, RW .
BIOPHYSICAL CHEMISTRY, 1988, 31 (1-2) :77-86