4.6 Article

Alignment hierarchies: engineering architecture from the nanometre to the micrometre scale

期刊

JOURNAL OF THE ROYAL SOCIETY INTERFACE
卷 7, 期 -, 页码 S707-S716

出版社

ROYAL SOC
DOI: 10.1098/rsif.2010.0346.focus

关键词

collagen fibril; nanoscale; microscale; mesoscale; tissue alignment; plastic compression

资金

  1. Johnson & Johnson Medical GmbH
  2. BBSRC
  3. Biotechnology and Biological Sciences Research Council [BB/F023774/1] Funding Source: researchfish
  4. BBSRC [BB/F023774/1] Funding Source: UKRI

向作者/读者索取更多资源

Natural tissues are built of metabolites, soluble proteins and solid extracellular matrix components (largely fibrils) together with cells. These are configured in highly organized hierarchies of structure across length scales from nanometre to millimetre, with alignments that are dominated by anisotropies in their fibrillar matrix. If we are to successfully engineer tissues, these hierarchies need to be mimicked with an understanding of the interaction between them. In particular, the movement of different elements of the tissue (e.g. molecules, cells and bulk fluids) is controlled by matrix structures at distinct scales. We present three novel systems to introduce alignment of collagen fibrils, cells and growth factor gradients within a three-dimensional collagen scaffold using fluid flow, embossing and layering of construct. Importantly, these can be seen as different parts of the same hierarchy of three-dimensional structure, as they are all formed into dense collagen gels. Fluid flow aligns collagen fibrils at the nanoscale, embossed topographical features provide alignment cues at the microscale and introducing layered configuration to three-dimensional collagen scaffolds provides microscale- and mesoscale-aligned pathways for protein factor delivery as well as barriers to confine protein diffusion to specific spatial directions. These seemingly separate methods can be employed to increase complexity of simple extracellular matrix scaffolds, providing insight into new approaches to directly fabricate complex physical and chemical cues at different hierarchical scales, similar to those in natural tissues.

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