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Sialic Acid Is Required for Neuronal Inhibition by Soluble MAG but not for Membrane Bound MAG
Najat Al-Bashir1, Wilfredo Mellado2, Marie T Filbin1
1Biology Department, Hunter College, City University of New York New York, NY, USA.
Abstract:
Myelin-Associated Glycoprotein (MAG), a major inhibitor of axonal growth, is a member of the immunoglobulin (Ig) super-family. Importantly, MAG (also known as Siglec-4) is a member of the Siglec family of proteins (sialic acid-binding, immunoglobulin-like lectins), MAG binds to complex gangliosides, specifically GD1a and/or GT1b. Therefore, it has been proposed as neuronal receptors for MAG inhibitory effect of axonal growth. Previously, we showed that MAG binds sialic acid through domain 1 at Arg118 and is able to inhibit axonal growth through domain 5. We developed a neurite outgrowth (NOG) assay, in which both wild type MAG and mutated MAG (MAG Arg118) are expressed on cells. In addition we also developed a soluble form NOG in which we utilized soluble MAG-Fc and mutated MAG (Arg118-Fc). Only MAG-Fc is able to inhibit NOG, but not mutated MAG (Arg118)-Fc that has been mutated at its sialic acid binding site. However, both forms of membrane bound MAG- and MAG (Arg118)- expressing cells still inhibit NOG. Here, we review various results from different groups regarding MAG's inhibition of axonal growth. Also, we propose a model in which the sialic acid binding is not necessary for the inhibition induced by the membrane form of MAG, but it is necessary for the soluble form of MAG. This finding highlights the importance of understanding the different mechanisms by which MAG inhibits NOG in both the soluble fragmented form and the membrane-bound form in myelin debris following CNS damage.
Insights
Myelin-Associated Glycoprotein (MAG) inhibits axonal growth differently depending on its form. Sialic acid binding is essential for soluble MAG inhibition but not for membrane-bound MAG inhibition.
Area of Science:
- Neuroscience
- Molecular Biology
- Cell Biology
Background:
- Myelin-Associated Glycoprotein (MAG), a Siglec family member, inhibits axonal growth.
- MAG binds gangliosides like GD1a and GT1b, potentially mediating its inhibitory effects.
- Previous work identified MAG's sialic acid binding site (Arg118) and inhibitory domain (domain 5).
Purpose of the Study:
- To investigate the role of sialic acid binding in MAG-mediated axonal growth inhibition.
- To compare the inhibitory mechanisms of soluble MAG versus membrane-bound MAG.
- To propose a model explaining MAG's differential inhibition of neurite outgrowth.
Main Methods:
- Development of a neurite outgrowth (NOG) assay using wild-type and mutated MAG.
- Expression of membrane-bound MAG and mutated MAG (Arg118) on cells.
- Utilized soluble MAG-Fc and mutated MAG (Arg118)-Fc in the NOG assay.
Main Results:
- Soluble MAG-Fc inhibited NOG, while mutated MAG (Arg118)-Fc did not, indicating sialic acid binding is crucial for soluble MAG.
- Both membrane-bound wild-type MAG and mutated MAG (Arg118) inhibited NOG, suggesting sialic acid binding is not required for membrane-bound MAG.
- Reviewed existing data on MAG's inhibition of axonal growth.
Conclusions:
- Sialic acid binding is necessary for the inhibitory function of soluble MAG but not membrane-bound MAG.
- Membrane-bound MAG may inhibit axonal growth through mechanisms independent of sialic acid binding.
- Understanding these distinct mechanisms is crucial for CNS repair strategies following damage.
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