Thermal Memory in Self-Assembled Collagen Fibril Networks

被引:50
|
作者
de Wild, Martijn [1 ]
Pomp, Wim [1 ]
Koenderink, Gijsje H. [1 ]
机构
[1] FOM Inst AMOLF, Biol Soft Matter Grp, Amsterdam, Netherlands
关键词
FIBRILLOGENESIS IN-VITRO; TIME-DEPENDENT INCREASE; FORMATION INVITRO; CONFORMATION; STABILITY; ACTIN; PH; MICROSCOPY; NUCLEATION; SCATTERING;
D O I
10.1016/j.bpj.2013.05.035
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Collagen fibrils form extracellular networks that regulate cell functions and provide mechanical strength to tissues. Collagen fibrillogenesis is an entropy-driven process promoted by warming and reversed by cooling. Here, we investigate the influence of noncovalent interactions mediated by the collagen triple helix on fibril stability. We measure the kinetics of cold-induced disassembly of fibrils formed from purified collagen I using turbimetry, probe the fibril morphology by atomic force microscopy, and measure the network connectivity by confocal microscopy and rheometry. We demonstrate that collagen fibrils disassemble by subunit release from their sides as well as their ends, with complex kinetics involving an initial fast release followed by a slow release. Surprisingly, the fibrils are gradually stabilized over time, leading to thermal memory. This dynamic stabilization may reflect structural plasticity of the collagen fibrils arising from their complex structure. In addition, we propose that the polymeric nature of collagen monomers may lead to slow kinetics of subunit desorption from the fibril surface. Dynamic stabilization of fibrils may be relevant in the initial stages of collagen assembly during embryogenesis, fibrosis, and wound healing. Moreover, our results are relevant for tissue repair and drug delivery applications, where it is crucial to control fibril stability.
引用
收藏
页码:200 / 210
页数:11
相关论文
共 50 条
  • [21] Biofunctionalized Ceramic with Self-Assembled Networks of Nanochannels
    Jang, Hae Lin
    Lee, Keunho
    Kang, Chan Soon
    Lee, Hye Kyoung
    Ahn, Hyo-Yong
    Jeong, Hui-Yun
    Park, Sunghak
    Kim, Seul Cham
    Jin, Kyoungsuk
    Park, Jimin
    Yang, Tae-Youl
    Kim, Jin Hong
    Shin, Seon Ae
    Han, Heung Nam
    Oh, Kyu Hwan
    Lee, Ho-Young
    Lim, Jun
    Hong, Kug Sun
    Snead, Malcolm L.
    Xu, Jimmy
    Nam, Ki Tae
    ACS NANO, 2015, 9 (04) : 4447 - 4457
  • [22] Chirality effects in self-assembled fibrillar networks
    Brizard, A
    Oda, R
    Huc, I
    LOW MOLECULAR MASS GELATORS: DESIGN, SELF-ASSEMBLY, FUNCTION, 2005, 256 : 167 - 218
  • [23] Thermal stability of self-assembled FePt nanoparticles
    Liu, J.P. (pliu@uta.edu), 1600, American Institute of Physics Inc. (93):
  • [24] Thermal curing of a self-assembled monolayer at the nanoscale
    Zhang, Zhengqing
    Kim, Hyojeong
    Noh, Jaegeun
    Ahn, Yoonho
    Son, Jong Yeog
    Jang, Joonkyung
    NANOSCALE, 2016, 8 (02) : 1133 - 1139
  • [25] Self-Assembled Optoplasmonic Networks Pass the Torch
    不详
    ACS NANO, 2013, 7 (05) : 3737 - 3737
  • [26] Self-assembled DNA networks and their electrical conductivity
    Cai, LT
    Tabata, H
    Kawai, T
    APPLIED PHYSICS LETTERS, 2000, 77 (19) : 3105 - 3106
  • [27] Self-assembled growth of ZnS nanobelt networks
    Hu, PA
    Liu, YQ
    Cao, LC
    Zhu, DB
    JOURNAL OF PHYSICAL CHEMISTRY B, 2004, 108 (03): : 936 - 938
  • [28] Self-assembled networks highly responsive to hydrocarbons
    Molchanov, Vyacheslav S.
    Philippova, Olga E.
    Khokhlov, Alexei R.
    Kovalev, Yuri A.
    Kuklin, Alexander I.
    LANGMUIR, 2007, 23 (01) : 105 - 111
  • [29] Electrical properties of self-assembled carbon networks
    Govor, LV
    Goldbach, M
    Bashmakov, IA
    Butylina, IB
    Parisi, J
    PHYSICAL REVIEW B, 2000, 62 (03) : 2201 - 2208
  • [30] Direct thermal Patterning of self-assembled nanoparticles
    Hamann, HF
    Woods, SI
    Sun, SH
    NANO LETTERS, 2003, 3 (12) : 1643 - 1645