Hyaluronan hydration generates three-dimensional meso-scale structure in engineered collagen tissues

Author:

Anandagoda Nelomi1,Ezra Daniel G.234,Cheema Umber1,Bailly Maryse4,Brown Robert A.1

Affiliation:

1. UCL Institute of Orthopaedics and Musculoskeletal Science, UCL Tissue Repair and Engineering Centre, University College London, Stanmore Campus, London HA7 4LP, UK

2. Moorfields Eye Hospital and UCL Institute of Ophthalmology NIHR Biomedical Research Centre for Ophthalmology, Moorfields Eye Hospital, City Road, London EC1V 2PD, UK

3. The Orbital Clinic, Adnexal Department, Moorfields Eye Hospital NHS Foundation Trust, City Road, London EC1V 2PD, UK

4. Department of Cell Biology, UCL Institute of Ophthalmology, Bath Street, London EC1V 9EL, UK

Abstract

Here, we show that the local incorporation of osmotically active hyaluronan into previously compressed collagen constructs results in further rapid dehydration/compression of collagen layers, channel formation and generation of new interfaces; these novel structures, at the nano–micro (i.e. meso-scale) were formed within native collagen gels, in a highly predictable spatial manner and offer important new methods of fabricating scaffolds (e.g. tubes and open-spirals) with potential for use in tissue regeneration such as in peripheral nerves and small vessels. This paper tests the possibility that the local fluid content of a dense collagen network can be controlled by incorporation of an osmotically active (native) macromolecule—hyluronan. This is an exemplar physiological, osmotic swelling agent. Hyaluronan is commonly secreted by cells deep in connective tissues, so is a good candidate for this role in a cell-driven system balancing mechanical compaction of bulk tissue collagen. These constructs may have potential as functionalin vitromodels representing developmental and pathological processes.

Publisher

The Royal Society

Subject

Biomedical Engineering,Biochemistry,Biomaterials,Bioengineering,Biophysics,Biotechnology

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