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A mechanical microconnector system for restoration of tissue continuity and long-term drug application into the injured spinal cord
Authors:Nicole Brazda,Christian Voss,Veronica Estrada,Homaira Lodin,Nils Weinrich,Klaus Seide,Jö  rg Mü  ller,Hans W. Mü  ller
Affiliation:1. Molecular Neurobiology Laboratory, Neurology, Heinrich Heine University Düsseldorf, Moorenstr. 5, 40225 Düsseldorf, Germany;2. Institute of Microsystems Technology, Technical University of Hamburg-Harburg, Eißendorfer Straße 42, 21073 Hamburg, Germany;3. BG Trauma Hospital Hamburg, Department of Trauma Surgery, Orthopaedics and Sports Traumatology, Bergedorfer Straße 10, 21033 Hamburg, Germany
Abstract:Complete transection of the spinal cord leaves a gap of several mm which fills with fibrous scar tissue. Several approaches in rodent models have used tubes, foams, matrices or tissue implants to bridge this gap. Here, we describe a mechanical microconnector system (mMS) to re-adjust the retracted spinal cord stumps. The mMS is a multi-channel system of polymethylmethacrylate (PMMA), designed to fit into the spinal cord tissue gap after transection, with an outlet tubing system to apply negative pressure to the mMS thus sucking the spinal cord stumps into the honeycomb-structured holes. The stumps adhere to the microstructure of the mMS walls and remain in the mMS after removal of the vacuum. We show that the mMS preserves tissue integrity and allows axonal regrowth at 2, 5 and 19 weeks post lesion with no adverse tissue effects like in-bleeding or cyst formation. Preliminary assessment of locomotor function in the open field suggested beneficial effects of the mMS. Additional inner micro-channels enable local substance delivery into the lesion center via an attached osmotic minipump. We suggest that the mMS is a suitable device to adapt and stabilize the injured spinal cord after surgical resection of scar tissue (e.g., for chronic patients) or traumatic injuries with large tissue and bone damages.
Keywords:Spinal cord injury   Spinal surgery   Soft tissue biomechanics   Polymethylmethacrylate   Neuronal regeneration
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