4.6 Article

Micropattern-based nerve guidance conduit with hundreds of microchannels and stem cell recruitment for nerve regeneration

Journal

NPJ REGENERATIVE MEDICINE
Volume 7, Issue 1, Pages -

Publisher

NATURE PORTFOLIO
DOI: 10.1038/s41536-022-00257-0

Keywords

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Funding

  1. KU-KIST Graduate School of Converging Science and Technology Program of Korea University
  2. Global Ph.D. Fellowship Program
  3. Korea Regenerative Medical Technology Development Fund through the National Research Foundation of Korea - Ministry of Science and ICT, Republic of Korea [2015H1A2A1033269, 2021M3E5E5096098]
  4. National Research Foundation of Korea [2021M3E5E5096098, 2015H1A2A1033269] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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By combining micropattern-based fabrication method with stem-cell recruitment factor immobilization, a size-tunable nerve guidance conduit (NGC) with stem-cell recruitment capability was successfully developed, which enhances the guidance of nerve fiber regrowth and improves functional regeneration capacity. This method has wide applicability in improving the treatment of peripheral nerve injury and spinal cord injury.
Guiding the regrowth of thousands of nerve fibers within a regeneration-friendly environment enhances the regeneration capacity in the case of peripheral nerve injury (PNI) and spinal cord injury (SCI). Although clinical treatments are available and several studies have been conducted, the development of nerve guidance conduits (NGCs) with desirable properties, including controllable size, hundreds of nerve bundle-sized microchannels, and host stem-cell recruitment, remains challenging. In this study, the micropattern-based fabrication method was combined with stem-cell recruitment factor (substance P, SP) immobilization onto the main material to produce a size-tunable NGC with hundreds of microchannels with stem-cell recruitment capability. The SP-immobilized multiple microchannels aligned the regrowth of nerve fibers and recruited the host stem cells, which enhanced the functional regeneration capacity. This method has wide applicability in the modification and augmentation of NGCs, such as bifurcated morphology or directional topographies on microchannels. Additional improvements in fabrication will advance the regeneration technology and improve the treatment of PNI/SCI.

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