Temporal characterization of hyaluronidases after peripheral nerve injury

Author:

Kasper Mary M.ORCID,Ellenbogen BretORCID,Li Yuan,Schmidt Christine E.

Abstract

Hyaluronic acid (HA) is ubiquitously found in biological tissues and mediates wound healing mechanisms after injury by promoting cell migration and proliferation. With the development of tissue-engineered neural therapeutics, including off-the-shelf grafts for peripheral nerve repair, HA is an attractive material for clinical use because of its various biological roles. HA-based biomaterials have been carefully engineered to elicit specificin vivohost responses, however an important design feature that should be considered in these scaffolds is endogenous degradation. Hyaluronidases (HYALs) are the complementary enzymes that are responsible for HA turnover. Although HYAL expression has been widely characterized in various tissues, including the central nervous system, and for different pathologies, there remains a lack of knowledge of HYAL mediated turnover in peripheral nerve tissue. In this work, gene expression of two hyaluronidases, HYAL1 and HYAL2, and HA-binding receptor, CD44, were studied in two injury models: rat sciatic nerve crush and critical gap transection. HYAL2 and CD44 were shown to be upregulated 3 days after crush injury, whereas HYAL1 was upregulated at 3 weeks, which collectively demonstrate temporal patterning of HA breakdown. Additionally, differences were observed between HYAL and HA expression at 3 weeks when compared for both nerve injury models. The activity of HYAL in peripheral nerve tissue was determined to be approximately 0.11 μmol/min, which could be used to further model HA-based biomaterial breakdown for peripheral nerve applications. Overall, this work provides a landscape of HA turnover in peripheral nerve that can be used for future neural applications.

Publisher

Public Library of Science (PLoS)

Subject

Multidisciplinary

Reference49 articles.

1. Increased hyaluronan and hyaluronidase production and hyaluronan degradation in injured aorta of insulin-resistant rats;A Chajara;Arterioscler Thromb Vasc Biol,2000

2. Interactions between hyaluronan and its receptors (CD44, RHAMM) regulate the activities of inflammation and cancer;S Misra;Front Immunol,2015

3. Hyaluronic Acid (HA) Receptors and the Motility of Schwann Cell(-Like) Phenotypes;S Ouasti;Cells,2020

4. Photocrosslinked hyaluronic acid hydrogels: Natural, biodegradable tissue engineering scaffolds;JB Leach;Biotechnol Bioeng,2003

5. Nerve regeneration following spinal cord injury using matrix metalloproteinase-sensitive, hyaluronic acid-based biomimetic hydrogel scaffold containing brain-derived neurotrophic factor.;J Park;J Biomed Mater Res—Part A.,2010

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