Assembly of collagen into microribbons: Effects of pH and electrolytes

Publikation: Beitrag in FachzeitschriftForschungsartikelBeigetragenBegutachtung

Beitragende

  • Fengzhi Jiang - , Technische Universität Dresden (Autor:in)
  • Heinrich Hörber - (Autor:in)
  • Jonathon Howard - (Autor:in)
  • Daniel J. Müller - , Technische Universität Dresden (Autor:in)

Abstract

Collagen represents the major structural protein of the extracellular matrix. Elucidating the mechanism of its assembly is important for understanding many cell biological and medical processes as well as for tissue engineering and biotechnological approaches. In this work, conditions for the self-assembly of collagen type I molecules on a supporting surface were characterized. By applying hydrodynamic flow, collagen assembled into ultrathin (∼3 nm) highly anisotropic ribbon-like structures coating the entire support. We call these novel collagen structures microribbons. High-resolution atomic force microscopy topographs show that subunits of these microribbons are built by fibrillar structures. The smallest units of these fibrillar structures have cross-sections of ∼3 × 5 nm, consistent with current models of collagen microfibril formation. By varying the pH and electrolyte of the buffer solution during the self-assembly process, the microfibril density and contacts formed within this network could be controlled. Under certain electrolyte compositions the microribbons and microfibers display the characteristic D-periodicity of ∼65 nm observed for much thicker collagen fibrils. In addition to providing insight into the mechanism of collagen assembly, the ultraflat collagen matrices may also offer novel ways to bio-functionalize surfaces.

Details

OriginalspracheEnglisch
Seiten (von - bis)268-278
Seitenumfang11
FachzeitschriftJournal of Structural Biology
Jahrgang148
Ausgabenummer3
PublikationsstatusVeröffentlicht - Dez. 2004
Peer-Review-StatusJa
Extern publiziertJa

Externe IDs

PubMed 15522775

Schlagworte

ASJC Scopus Sachgebiete

Schlagwörter

  • Atomic force microscopy, Microfibrils, Microribbons, Molecular interactions, Protein assembly