In vitro comparison of motor and sensory neuron outgrowth in a 3D collagen matrix.

J Neurosci Methods

Group of Neuroplasticity and Regeneration, Institute of Neurosciences and Department of Cell Biology, Physiology and Immunology, Universitat Autònoma de Barcelona, Bellaterra, Spain.

Published: May 2011

AI Article Synopsis

  • The study establishes an in vitro model using spinal cord slices and dorsal root ganglia from young rats, cultured within a collagen matrix to facilitate comparisons of motor and sensory neuron regeneration.
  • Researchers employed RT97 labeling to track the growth of neurites from both motor and sensory neurons, highlighting the potential for regeneration visible in just a few days.
  • By introducing neurotrophic factors and incorporating Schwann cells into the culture, the model aims to better replicate the natural regenerative environment, offering insights into the selective regeneration mechanisms for these neuron types.

Article Abstract

In this work we set up an in vitro model, based on organotypic cultures of spinal cord slices and dorsal root ganglia explants from P7 rats, embedded in a collagen matrix and cultured under the same conditions. As specific reinnervation of end-organs is still an unresolved issue in peripheral nerve research, we characterized a model that allows us to compare under the same conditions motor and sensory neuron regeneration. RT97 labeling was used to visualize the regenerating neurites that extended in the collagen gel from both motor neurons in the spinal cord slices and sensory neurons in the DRG explants after a few days in vitro. By adding different neurotrophic factors in the collagen matrix, we evaluated the reliability of DRG and spinal cord preparations. Moreover, we also set up a co-culture with dissociated Schwann cells to further mimic the permissive environment of the peripheral nerve. Thus, these in vitro models can be useful tools to investigate mechanisms for the selective regeneration of sensory and motor neurons, which can be translated into in vivo models.

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Source
http://dx.doi.org/10.1016/j.jneumeth.2011.03.006DOI Listing

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