AbstractMyelin inhibitors of axonal regeneration, like Nogo and MAG, block regrowth after injury to the adult CNS. While a GPI-linked receptor for Nogo (NgR) has been identified, MAG's receptor is unknown. We show that MAG inhibits regeneration by interaction with NgR. Binding of and inhibition by MAG are lost if neuronal GPI-linked proteins are cleaved. Binding of MAG to NgR-expressing cells is GPI dependent and sialic acid independent. Conversely, NgR binds to MAG-expressing cells. MAG, but not a truncated MAG that binds neurons but does not inhibit regeneration, precipitates NgR from NgR-expressing cells, DRG, and cerebellar neurons. Importantly, NgR antibody, soluble NgR, or dominant-negative NgR each prevent inhibition of neurite outgr...
Myelin-associated glycoprotein (MAG) is a sialic acid binding Ig-like lectin (Siglec) which has been...
CNS myelin contains axon outgrowth inhibitors, such as Nogo, that restrict regenerative growth after...
Lesioned axons do not regenerate in the adult mammalian central nervous system, owing to the overexp...
AbstractThree different myelin proteins, Nogo, MAG, and OMgp, inhibit regenerating axons after CNS i...
Adult mammalian central nervous system (CNS) axons have very limited capacity of regrowth after inju...
AbstractGrowth inhibition in the central nervous system (CNS) is a major barrier to axon regeneratio...
[eng] The adult central nervous system (CNS) has a very little capability to regrow its connections ...
Adult mammalian central nervous system (CNS) axons have a limited regrowth capacity following injury...
SummaryInhibitors of axonal regeneration in myelin are believed to be major contributors to the lack...
AbstractNogo-A, a reticulon protein expressed by oligodendrocytes, contributes to the axonal growth ...
BACKGROUND: Nogo-66 receptor NgR1 and its structural homologue NgR2 are binding proteins for a numbe...
In most parts of the body, nerves regenerate after injury. However, in the brain and spinal cord reg...
Pioneering studies conducted in the 1980’s laid the foundation for the hypothesis that axonal regene...
AbstractFailure of axon regeneration in the adult mammalian central nervous system (CNS) is at least...
Myelin-associated inhibition of axonal regrowth after injury is considered one important factor that...
Myelin-associated glycoprotein (MAG) is a sialic acid binding Ig-like lectin (Siglec) which has been...
CNS myelin contains axon outgrowth inhibitors, such as Nogo, that restrict regenerative growth after...
Lesioned axons do not regenerate in the adult mammalian central nervous system, owing to the overexp...
AbstractThree different myelin proteins, Nogo, MAG, and OMgp, inhibit regenerating axons after CNS i...
Adult mammalian central nervous system (CNS) axons have very limited capacity of regrowth after inju...
AbstractGrowth inhibition in the central nervous system (CNS) is a major barrier to axon regeneratio...
[eng] The adult central nervous system (CNS) has a very little capability to regrow its connections ...
Adult mammalian central nervous system (CNS) axons have a limited regrowth capacity following injury...
SummaryInhibitors of axonal regeneration in myelin are believed to be major contributors to the lack...
AbstractNogo-A, a reticulon protein expressed by oligodendrocytes, contributes to the axonal growth ...
BACKGROUND: Nogo-66 receptor NgR1 and its structural homologue NgR2 are binding proteins for a numbe...
In most parts of the body, nerves regenerate after injury. However, in the brain and spinal cord reg...
Pioneering studies conducted in the 1980’s laid the foundation for the hypothesis that axonal regene...
AbstractFailure of axon regeneration in the adult mammalian central nervous system (CNS) is at least...
Myelin-associated inhibition of axonal regrowth after injury is considered one important factor that...
Myelin-associated glycoprotein (MAG) is a sialic acid binding Ig-like lectin (Siglec) which has been...
CNS myelin contains axon outgrowth inhibitors, such as Nogo, that restrict regenerative growth after...
Lesioned axons do not regenerate in the adult mammalian central nervous system, owing to the overexp...