Assessing Survival, Distribution, and Optimal Loading Technique of Schwann Cell–Derived Exosomes Into Second-generation Axon Guidance Channels

Author:

Errante Emily L12,Smartz Taylor1,Costello Meredith C1,Schaeffer Ericka A12,Kloehn Andrew J1,Yunga Tigre Joseph1,Khan Aisha13,Pressman Yelena1,Levi Allan D12ORCID,Burks S Shelby12

Affiliation:

1. The Miami Project to Cure Paralysis, University of Miami Miller School of Medicine , Miami, FL 33136, USA

2. Department of Neurological Surgery, University of Miami Miller School of Medicine , Miami, FL 33136, USA

3. Interdisciplinary Stem Cell Institute, University of Miami Miller School of Medicine , Miami, FL 33136, USA

Abstract

ABSTRACT Introduction Peripheral nerve injury (PNI) occurs in approximately 3% of all trauma patients and can be challenging to treat, particularly when injury is severe such as with a long-segmental gap. Although peripheral nerves can regenerate after injury, functional recovery is often insufficient, leading to deficits in the quality of life of patients with PNI. Although nerve autografts are the gold standard of care, there are several disadvantages to their use, namely a lack of autologous nerve material for repair. This has led to the pursuit of alternative treatment methods such as axon guidance channels (AGCs). Second-generation AGCs have been shown to be able to deliver growth-enhancing substrates for nerve repair directly to the injury site. Although our laboratory has had success with second-generation AGCs filled with Schwann cells (SCs), SCs have their own set of issues clinically. Because of this, we have begun to utilize SC-derived exosomes as an alternative, as they have the appropriate protein markers, associate to axons in high concentrations, and are able to improve nerve regeneration. However, it is unknown how SC-derived exosomes may react within second-generation AGCs; thus, the aim of the present study was to assess the ability of SC-derived exosomes to be loaded into a second-generation AGC and how they would distribute within it. Materials and Methods A total of 4 dry second-generation AGCs were loaded with SC-derived exosomes that were derived from green fluorescent protein (GFP)-labeled SCs. They were subsequently frozen and sliced before imaging. Results Here, we present findings that SC-derived exosomes can be loaded into second-generation AGCs through our established loading method utilizing negative pressure and are able to survive and equally distribute along the length of the AGC. Conclusions Although only 4 second-generation AGCs were utilized, these findings indicate a potential use for SC-derived exosomes within second-generation AGCs to treat severe PNI. Future research should focus on exploring this in greater detail and in different contexts to assess the ability of SC-derived exosomes to survive at the site of injury and treat PNI.

Publisher

Oxford University Press (OUP)

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