AI Article Synopsis

  • - Spinal cord injuries often result in permanent functional loss due to the absence of effective regenerative therapies, but tissue-engineered constructs could help by replacing lost neural cells and restoring neuro-architecture.
  • - Electrospun nanofibers have a similar architecture to the spinal cord, can be aligned, and provide cues that promote the growth of neural stem cells in a targeted manner, though research on their efficacy in clinical contexts is still limited.
  • - Our study developed a new image analysis method to quantitatively assess how neural stem cells align with electrospun nanofibers and found that while stem cells and their neuron/astrocyte derivatives maintained alignment, oligodendrocyte cells did not, indicating potential for creating structured

Article Abstract

Spinal cord injury is debilitating with functional loss often permanent due to a lack of neuro-regenerative or neuro-therapeutic strategies. A promising approach to enhance biological function is through implantation of tissue engineered constructs, to offer neural cell replacement and reconstruction of the functional neuro-architecture. A key goal is to achieve spatially targeted guidance of regenerating tissue across the lesion site to achieve an aligned tissue structure lost as a consequence of injury. Electrospun nanofibres mimic the nanoscale architecture of the spinal cord, can be readily aligned, functionalised with pro-regenerative molecules and incorporated into implantable matrices to provide topographical cues. Crucially, electrospun nanofibers are routinely manufactured at a scale required for clinical use. Although promising, few studies have tested whether electrospun nanofibres can guide targeted spatial growth of clinically relevant neural stem/precursor populations. The alignment fate of daughter cells (derived from the pre-aligned parent cells) has also received limited attention. Further, a standardised quantification methodology to correlate neural cell alignment with topographical cues is not available. We have adapted an image analysis technique to quantify nanofibre-induced alignment of neural cells. Using this method, we show that two key neural stem/precursor populations of clinical relevance (namely, neural stem cells (NSCs) and oligodendrocyte precursor cells), reproducibly orientate their growth to aligned, high-density electrospun nanofiber meshes, but not randomly distributed ones. Daughter populations derived from aligned NSCs (neurons and astrocytes) maintained their alignment following differentiation, but oligodendrocytes did not. Our data show that pre-aligned transplant populations can be used to generate complex, multicellular aligned-fibre constructs for neural implantation.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9821626PMC
http://dx.doi.org/10.3390/ma16010124DOI Listing

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