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Published on: August 10, 2021
Transmembrane domain modulates sorting of membrane proteins in Toxoplasma gondii
Verena Karsten1, Ramanujan S Hegde, Anthony P Sinai
1Section of Infectious Diseases, Department of Internal Medicine, Yale University School of Medicine, New Haven, Connecticut 06520, USA.
Abstract:
Overlapping mechanisms that function simultaneously in the intracellular sorting of mammalian membrane proteins often confound delineation of individual sorting pathways. By analyzing sorting in the evolutionarily simpler organism Toxoplasma gondii, we demonstrate a role for transmembrane domain (TMD) length in modulating the signal-dependent segregation of membrane proteins to distinct intracellular organelles. The dense granule localization of the single pass transmembrane protein GRA4 could be completely rerouted to the Golgi and cell surface simply by replacement of its TMD with that from either vesicular stomatitis virus G or the low density lipoprotein (LDL) receptor. Mutational and biochemical analyses suggested that this effect was not caused by any specific sequence motif or strength of membrane association of the GRA4 TMD. Instead, a property imparted by the vesicular stomatitis virus G or LDL receptor TMDs, both of which are longer than the GRA4 TMD, appeared to be a decisive factor. Indeed, shortening the LDL receptor TMD to a length similar to that of GRA4 resulted in dense granule localization, whereas lengthening the GRA4 TMD resulted in rerouting to the Golgi. From these data, we conclude that although the TMD may not necessarily be a sole determinant in membrane protein sorting, its properties can markedly modulate the utilization of more conventional signal-mediated sorting pathways.
Insights
Transmembrane domain (TMD) length, not sequence, dictates membrane protein sorting in Toxoplasma gondii. Modifying TMD length can reroute proteins to different organelles, revealing a novel sorting mechanism.
Area of Science:
- Cell Biology
- Molecular Biology
- Parasitology
Background:
- Intracellular sorting of membrane proteins is complex, with overlapping mechanisms.
- Delineating individual sorting pathways is challenging in mammalian cells.
Purpose of the Study:
- To investigate the role of transmembrane domain (TMD) length in protein sorting.
- To identify novel mechanisms regulating membrane protein localization in simpler organisms.
Main Methods:
- Analysis of membrane protein sorting in Toxoplasma gondii.
- TMD swapping experiments between different proteins (GRA4, VSV-G, LDL receptor).
- Mutational and biochemical analyses of TMD properties.
Main Results:
- TMD length, rather than sequence or membrane association strength, determines protein localization.
- Altering GRA4 TMD length rerouted the protein to the Golgi and cell surface or dense granules.
- TMD length modulates signal-dependent segregation to distinct organelles.
Conclusions:
- Transmembrane domain length is a critical, previously underappreciated factor in membrane protein sorting.
- TMD length can significantly influence the utilization of conventional signal-mediated sorting pathways.
- Findings in Toxoplasma gondii offer insights into fundamental protein sorting mechanisms applicable to other systems.
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