Damaged CNS axons are prevented from regenerating by an environment containing many inhibitory factors. They also lack an integrin that interacts with tenascin-C, the main extracellular matrix glycoprotein of the CNS, which is upregulated after injury. The alpha9beta1 integrin heterodimer is a receptor for the nonalternatively spliced region of tenascin-C, but the alpha9 subunit is absent in adult neurons. In this study, we show that PC12 cells and adult rat dorsal root ganglion (DRG) neurons do not extend neurites on tenascin-C. However, after forced expression of alpha9 integrin, extensive neurite outgrowth from PC12 cells and adult rat DRG neurons occurs. Moreover, both DRG neurons and PC12 cells secrete tenascin-C, enabling alpha9-trans...
Axon regeneration in the CNS is largely unsuccessful due to excess inhibitory extrinsic factors with...
Axon regeneration in the CNS is largely unsuccessful due to excess inhibitory extrinsic factors with...
Axon regeneration in the CNS is largely unsuccessful due to excess inhibitory extrinsic factors with...
Damaged CNS axons are prevented from regenerating by an environment containing many inhibitory facto...
The regenerative ability of CNS axons decreases with age however this ability remains largely intact...
After CNS injury, axon regeneration is blocked by an inhibitory environment consisting of the highly...
The regenerative ability of CNS axons decreases with age, however, this ability remains largely inta...
After CNS injury, axon regeneration is blocked by an inhibitory environment consisting of the highly...
After CNS injury, axon regeneration is blocked by an inhibitory environment consisting of the highly...
After CNS injury, axon regeneration is blocked by an inhibitory environment consisting of the highly...
UNLABELLED: After CNS injury, axon regeneration is blocked by an inhibitory environment consisting o...
UNLABELLED: After CNS injury, axon regeneration is blocked by an inhibitory environment consisting o...
After CNS injury, axon regeneration is blocked by an inhibitory environment consisting of the highly...
After spinal cord injury (SCI), regeneration of adult motor axons such as axonsin the corticospinal ...
This work was supported by the International Foundation for Research in Paraplegia (MRA), the Bryon ...
Axon regeneration in the CNS is largely unsuccessful due to excess inhibitory extrinsic factors with...
Axon regeneration in the CNS is largely unsuccessful due to excess inhibitory extrinsic factors with...
Axon regeneration in the CNS is largely unsuccessful due to excess inhibitory extrinsic factors with...
Damaged CNS axons are prevented from regenerating by an environment containing many inhibitory facto...
The regenerative ability of CNS axons decreases with age however this ability remains largely intact...
After CNS injury, axon regeneration is blocked by an inhibitory environment consisting of the highly...
The regenerative ability of CNS axons decreases with age, however, this ability remains largely inta...
After CNS injury, axon regeneration is blocked by an inhibitory environment consisting of the highly...
After CNS injury, axon regeneration is blocked by an inhibitory environment consisting of the highly...
After CNS injury, axon regeneration is blocked by an inhibitory environment consisting of the highly...
UNLABELLED: After CNS injury, axon regeneration is blocked by an inhibitory environment consisting o...
UNLABELLED: After CNS injury, axon regeneration is blocked by an inhibitory environment consisting o...
After CNS injury, axon regeneration is blocked by an inhibitory environment consisting of the highly...
After spinal cord injury (SCI), regeneration of adult motor axons such as axonsin the corticospinal ...
This work was supported by the International Foundation for Research in Paraplegia (MRA), the Bryon ...
Axon regeneration in the CNS is largely unsuccessful due to excess inhibitory extrinsic factors with...
Axon regeneration in the CNS is largely unsuccessful due to excess inhibitory extrinsic factors with...
Axon regeneration in the CNS is largely unsuccessful due to excess inhibitory extrinsic factors with...