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MAL Is a Regulator of the Recruitment of Myelin Protein PLP to Membrane Microdomains
Marjolein Bijlard1, Jenny C de Jonge1, Bert Klunder1
1Department of Cell Biology, University of Groningen, University Medical Center Groningen, Groningen, the Netherlands.
Abstract:
In oligodendrocytes (OLGs), an indirect, transcytotic pathway is mediating transport of de novo synthesized PLP, a major myelin specific protein, from the apical-like plasma membrane to the specialized basolateral-like myelin membrane to prevent its premature compaction. MAL is a well-known regulator of polarized trafficking in epithelial cells, and given its presence in OLGs it was therefore of interest to investigate whether MAL played a similar role in PLP transport in OLGs, taking into account its timely expression in these cells. Our data revealed that premature expression of mCherry-MAL in oligodendrocyte progenitor cells interfered with terminal OLG differentiation, although myelin membrane formation per se was not impaired. In fact, also PLP transport to myelin membranes via the cell body plasma membrane was unaffected. However, the typical shift of PLP from TX-100-insoluble membrane domains to CHAPS-resistant, but TX-100-soluble membrane domains, seen in the absence of MAL expression, is substantially reduced upon expression of the MAL protein. Interestingly, not only in vitro, but also in developing brain a strongly diminished shift from TX-100 resistant to TX-100 soluble domains was observed. Consistently, the MAL-expression mediated annihilation of the typical membrane microdomain shift of PLP is also reflected by a loss of the characteristic surface expression profile of conformation-sensitive anti-PLP antibodies. Hence, these findings suggest that MAL is not involved in vesicular PLP trafficking to either the plasma membrane and/or the myelin membrane as such. Rather, we propose that MAL may regulate PLP's distribution into distinct membrane microdomains that allow for lateral diffusion of PLP, directly from the plasma membrane to the myelin membrane once the myelin sheath has been assembled.
Insights
The MAL protein regulates the distribution of proteolipid protein (PLP) into specific membrane microdomains in oligodendrocytes, influencing its lateral diffusion to myelin membranes. This process is crucial for proper myelin sheath assembly.
Area of Science:
- Neuroscience
- Cell Biology
- Molecular Biology
Background:
- Oligodendrocytes (OLGs) synthesize proteolipid protein (PLP), a key myelin component.
- PLP transport to myelin membranes involves an indirect, transcytotic pathway to prevent premature compaction.
- The MAL protein regulates polarized trafficking in epithelial cells and is present in OLGs.
Purpose of the Study:
- To investigate the role of the MAL protein in PLP transport and myelin membrane formation in OLGs.
- To determine if MAL influences PLP's localization within membrane microdomains.
- To understand MAL's function in the context of OLG differentiation and myelination.
Main Methods:
- Utilized mCherry-MAL expression in oligodendrocyte progenitor cells for in vitro studies.
- Analyzed PLP transport and localization using biochemical assays (TX-100 and CHAPS solubility).
- Examined PLP surface expression profiles with conformation-sensitive anti-PLP antibodies in vitro and in developing brain.
Main Results:
- Premature MAL expression in OLGs interfered with terminal differentiation but not myelin membrane formation.
- PLP transport to myelin membranes was unaffected by MAL expression.
- MAL expression significantly reduced the shift of PLP from TX-100-insoluble to TX-100-soluble membrane domains.
- This microdomain shift disruption was observed in vivo in developing brains and correlated with altered PLP surface expression.
Conclusions:
- MAL does not appear to be involved in the vesicular trafficking of PLP to plasma or myelin membranes.
- MAL likely regulates the distribution of PLP into specific membrane microdomains.
- This microdomain regulation by MAL may facilitate PLP's lateral diffusion to the myelin membrane after sheath assembly.
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