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Updated: Nov 6, 2025

An Ex Vivo Laser-induced Spinal Cord Injury Model to Assess Mechanisms of Axonal Degeneration in Real-time
Published on: November 25, 2014
Delayed manipulation of regeneration within injured peripheral axons
P Komirishetty1, K Zubkow1, A Areti1
1Peripheral Nerve Research Laboratory, Division of Neurology, Department of Medicine and the Neuroscience and Mental Health Institute, University of Alberta, Canada.
Abstract:
While several new translational strategies to enhance regrowth of peripheral axons have been identified, combined approaches with different targets are rare. Moreover, few have been studied after a significant delay when growth programs are already well established and regeneration-related protein expression has waned. Here we study two approaches, Rb1 (Retinoblastoma 1) knockdown that targets overall neuron plasticity, and near nerve insulin acting as a growth factor. Both are validated to boost regrowth only at the outset of regeneration. We show that local delivery of Rb1 siRNA alone, with electroporation to an area of prior sciatic nerve injury generated knockdown of Rb1 mRNA in ipsilateral lumbar dorsal root ganglia. While mice treated with Rb1-targeted siRNA, compared with scrambled control siRNA, starting 2 weeks after the onset of regeneration, had only limited behavioural or electrophysiological benefits, they had enhanced reinnervation of epidermal axons. We next confirmed that intrinsic Rb1 knockdown combined with exogenous insulin had dramatic synergistic impacts on the growth patterns of adult sensory neurons studied in vitro, prompting analysis of a combined approach in vivo. Using an identical delayed post-injury protocol, we noted that added insulin not only augmented epidermal reinnervation rendered by Rb1 knockdown alone but also improved indices of mechanical sensation and motor axon recovery. The findings illustrate that peripheral neurons that are well into attempted regrowth retain their responsiveness to both intrinsic and exogenous approaches that improve their recovery. We also identify a novel local approach to manipulate gene expression and outcome in regrowing axons.
Insights
Combining Retinoblastoma 1 (Rb1) knockdown with insulin enhances peripheral nerve regeneration, even after a delay. This dual approach improves axon regrowth and functional recovery in mice with sciatic nerve injuries.
Area of Science:
- Neuroscience
- Regenerative Medicine
- Molecular Biology
Background:
- Peripheral nerve injury hinders axon regrowth, especially when treatment is delayed.
- Current strategies often focus on single targets and are less effective after regeneration initiation.
Purpose of the Study:
- To investigate the efficacy of combining Retinoblastoma 1 (Rb1) knockdown with insulin for delayed peripheral nerve regeneration.
- To determine if these approaches synergize to improve axon regrowth and functional recovery.
Main Methods:
- Local delivery of Rb1 siRNA via electroporation to sciatic nerve injury sites in mice.
- In vivo and in vitro studies combining Rb1 knockdown with exogenous insulin administration.
- Assessment of mRNA knockdown, axonal reinnervation, behavioral recovery, and electrophysiological function.
Main Results:
- Delayed Rb1 knockdown alone enhanced epidermal reinnervation but showed limited behavioral/electrophysiological benefits.
- Combined Rb1 knockdown and insulin demonstrated synergistic effects in vitro on sensory neuron growth.
- In vivo, the combined approach significantly augmented epidermal reinnervation and improved mechanical sensation and motor recovery.
Conclusions:
- Peripheral neurons retain responsiveness to intrinsic and exogenous regenerative strategies even after delayed intervention.
- Combined targeting of neuron plasticity (Rb1) and growth factors (insulin) offers a potent strategy for enhanced nerve repair.
- This study presents a novel local gene manipulation approach for improving outcomes in regrowing axons.

