Adult mammalian central nervous system (CNS) axons have a limited regrowth capacity following injury. Myelin-associated inhibitors (MAIs) limit axonal outgrowth and their blockage improves the regeneration of damaged fiber tracts. Three of these proteins, Nogo-A, MAG and OMgp, share two common neuronal receptors: NgR1, together with its co-receptors (p75(NTR), TROY and Lingo-1), and the recently described paired immunoglobulin-like receptor B (PirB). These proteins impair neuronal regeneration by limiting axonal sprouting. Some of the elements involved in the myelin inhibitory pathways may still be unknown, but the discovery that blocking both PirB and NgR1 activities leads to near-complete release from myelin inhibition, sheds light on one...
Axon regeneration in the injured adult CNS is reportedly inhibited by myelin-derived inhibitory mole...
The central nervous system of higher vertebrates, in contrast to the peripheral one, doesn't regener...
AbstractFailure of axon regeneration in the adult mammalian central nervous system (CNS) is at least...
Adult mammalian central nervous system (CNS) axons have very limited capacity of regrowth after inju...
Regenerative capacity is weak after central nervous system injury because of the absence of an enhan...
AbstractGrowth inhibition in the central nervous system (CNS) is a major barrier to axon regeneratio...
Pioneering studies conducted in the 1980’s laid the foundation for the hypothesis that axonal regene...
In most parts of the body, nerves regenerate after injury. However, in the brain and spinal cord reg...
AbstractMyelin inhibitors of axonal regeneration, like Nogo and MAG, block regrowth after injury to ...
SummaryInhibitors of axonal regeneration in myelin are believed to be major contributors to the lack...
AbstractThree different myelin proteins, Nogo, MAG, and OMgp, inhibit regenerating axons after CNS i...
SummaryA major obstacle for successful axon regeneration in the adult central nervous system (CNS) a...
[eng] The adult central nervous system (CNS) has a very little capability to regrow its connections ...
Axon regeneration in the injured adult CNS is reportedly inhibited by myelin-derived inhibitory mole...
SummaryMyelin-associated inhibitory factors (MAIFs) are inhibitors of CNS axonal regeneration follow...
Axon regeneration in the injured adult CNS is reportedly inhibited by myelin-derived inhibitory mole...
The central nervous system of higher vertebrates, in contrast to the peripheral one, doesn't regener...
AbstractFailure of axon regeneration in the adult mammalian central nervous system (CNS) is at least...
Adult mammalian central nervous system (CNS) axons have very limited capacity of regrowth after inju...
Regenerative capacity is weak after central nervous system injury because of the absence of an enhan...
AbstractGrowth inhibition in the central nervous system (CNS) is a major barrier to axon regeneratio...
Pioneering studies conducted in the 1980’s laid the foundation for the hypothesis that axonal regene...
In most parts of the body, nerves regenerate after injury. However, in the brain and spinal cord reg...
AbstractMyelin inhibitors of axonal regeneration, like Nogo and MAG, block regrowth after injury to ...
SummaryInhibitors of axonal regeneration in myelin are believed to be major contributors to the lack...
AbstractThree different myelin proteins, Nogo, MAG, and OMgp, inhibit regenerating axons after CNS i...
SummaryA major obstacle for successful axon regeneration in the adult central nervous system (CNS) a...
[eng] The adult central nervous system (CNS) has a very little capability to regrow its connections ...
Axon regeneration in the injured adult CNS is reportedly inhibited by myelin-derived inhibitory mole...
SummaryMyelin-associated inhibitory factors (MAIFs) are inhibitors of CNS axonal regeneration follow...
Axon regeneration in the injured adult CNS is reportedly inhibited by myelin-derived inhibitory mole...
The central nervous system of higher vertebrates, in contrast to the peripheral one, doesn't regener...
AbstractFailure of axon regeneration in the adult mammalian central nervous system (CNS) is at least...