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Updated: Apr 11, 2026

Use of Primary Cultured Hippocampal Neurons to Study the Assembly of Axon Initial Segments
Published on: February 12, 2021
Exclusion of integrins from CNS axons is regulated by Arf6 activation and the AIS
Elske H P Franssen1, Rong-Rong Zhao1, Hiroaki Koseki1
1Cambridge Centre for Brain Repair, Department of Clinical Neurosciences, University of Cambridge, Cambridge CB2 OPY, United Kingdom.
Abstract:
Integrins are adhesion and survival molecules involved in axon growth during CNS development, as well as axon regeneration after injury in the peripheral nervous system (PNS). Adult CNS axons do not regenerate after injury, partly due to a low intrinsic growth capacity. We have previously studied the role of integrins in axon growth in PNS axons; in the present study, we investigate whether integrin mechanisms involved in PNS regeneration may be altered or lacking from mature CNS axons by studying maturing CNS neurons in vitro. In rat cortical neurons, we find that integrins are present in axons during initial growth but later become restricted to the somato-dendritic domain. We investigated how this occurs and whether it can be altered to enhance axonal growth potential. We find a developmental change in integrin trafficking; transport becomes predominantly retrograde throughout axons, but not dendrites, as neurons mature. The directionality of transport is controlled through the activation state of ARF6, with developmental upregulation of the ARF6 GEF ARNO enhancing retrograde transport. Lowering ARF6 activity in mature neurons restores anterograde integrin flow, allows transport into axons, and increases axon growth. In addition, we found that the axon initial segment is partly responsible for exclusion of integrins and removal of this structure allows integrins into axons. Changing posttranslational modifications of tubulin with taxol also allows integrins into the proximal axon. The experiments suggest that the developmental loss of regenerative ability in CNS axons is due to exclusion of growth-related molecules due to changes in trafficking.
Insights
Mature central nervous system axons fail to regenerate due to altered integrin trafficking. Restoring anterograde integrin flow in neurons promotes axon growth, suggesting a mechanism for CNS regeneration.
Area of Science:
- Neuroscience
- Cell Biology
- Developmental Biology
Background:
- Integrins are crucial for axon growth in the developing central nervous system (CNS) and peripheral nervous system (PNS) regeneration.
- Adult CNS axons exhibit limited regenerative capacity after injury, unlike PNS axons.
Purpose of the Study:
- Investigate if integrin mechanisms supporting PNS regeneration are altered or absent in mature CNS axons.
- Determine how integrin localization changes during CNS neuron maturation and if this can be manipulated to enhance axonal growth.
Main Methods:
- Studied maturing rat cortical neurons in vitro.
- Analyzed integrin trafficking dynamics and localization.
- Manipulated ARF6 activity and axon initial segment structure.
- Examined the effect of tubulin posttranslational modifications.
Main Results:
- Integrins are present in developing axons but become restricted to the somato-dendritic domain in mature CNS neurons.
- Developmental maturation shifts integrin transport to a predominantly retrograde direction, regulated by ARF6 and ARNO.
- Reducing ARF6 activity restores anterograde integrin transport and promotes axon growth.
- The axon initial segment contributes to integrin exclusion; its removal allows integrin entry into axons.
Conclusions:
- Developmental changes in integrin trafficking, specifically the shift to retrograde transport and exclusion from axons, underlie the loss of regenerative potential in CNS axons.
- Modulating integrin trafficking pathways offers a potential strategy to enhance CNS axon regeneration.
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