Regenerative capacity is weak after central nervous system injury because of the absence of an enhancing microenvironment and presence of an inhibitory microenvironment for neuronal and axonal repair. In addition to the Nogo receptor (NgR), the paired immunoglobulin-like receptor B (PirB) is a recently discovered coreceptor of Nogo, myelin-associated glycoprotein, and myelin oligodendrocyte glycoprotein. Concurrent blocking of NgR and PirB almost completely eliminates the inhibitory effect of myelin-associated inhibitory molecules on axonal regeneration. PirB participates in a key pathological process of the nervous system, specifically axonal regeneration inhibition. PirB is an inhibitory receptor similar to NgR, but their effects are not ...
Functional recovery following central nervous system (CNS) trauma is often restricted by stagnant gr...
Includes bibliographical references (leaves 62-84).Axon regeneration failure in the adult mammalian ...
Lesioned axons do not regenerate in the adult mammalian central nervous system, owing to the overexp...
SummaryInhibitors of axonal regeneration in myelin are believed to be major contributors to the lack...
Adult mammalian central nervous system (CNS) axons have a limited regrowth capacity following injury...
Adult mammalian central nervous system (CNS) axons have very limited capacity of regrowth after inju...
Abstract Background In the central nervous system (CNS), three types of myelin-associated inhibitors...
Paired immunoglobulin-like receptor B (PirB) is a functional receptor of myelin-associated inhibitor...
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...
The central nervous system of higher vertebrates, in contrast to the peripheral one, doesn't regener...
AbstractThree different myelin proteins, Nogo, MAG, and OMgp, inhibit regenerating axons after CNS i...
[eng] The adult central nervous system (CNS) has a very little capability to regrow its connections ...
Myelin-associated inhibition of axonal regrowth after injury is considered one important factor that...
AbstractMyelin inhibitors of axonal regeneration, like Nogo and MAG, block regrowth after injury to ...
Functional recovery following central nervous system (CNS) trauma is often restricted by stagnant gr...
Includes bibliographical references (leaves 62-84).Axon regeneration failure in the adult mammalian ...
Lesioned axons do not regenerate in the adult mammalian central nervous system, owing to the overexp...
SummaryInhibitors of axonal regeneration in myelin are believed to be major contributors to the lack...
Adult mammalian central nervous system (CNS) axons have a limited regrowth capacity following injury...
Adult mammalian central nervous system (CNS) axons have very limited capacity of regrowth after inju...
Abstract Background In the central nervous system (CNS), three types of myelin-associated inhibitors...
Paired immunoglobulin-like receptor B (PirB) is a functional receptor of myelin-associated inhibitor...
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...
The central nervous system of higher vertebrates, in contrast to the peripheral one, doesn't regener...
AbstractThree different myelin proteins, Nogo, MAG, and OMgp, inhibit regenerating axons after CNS i...
[eng] The adult central nervous system (CNS) has a very little capability to regrow its connections ...
Myelin-associated inhibition of axonal regrowth after injury is considered one important factor that...
AbstractMyelin inhibitors of axonal regeneration, like Nogo and MAG, block regrowth after injury to ...
Functional recovery following central nervous system (CNS) trauma is often restricted by stagnant gr...
Includes bibliographical references (leaves 62-84).Axon regeneration failure in the adult mammalian ...
Lesioned axons do not regenerate in the adult mammalian central nervous system, owing to the overexp...