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Subcellular localization and dynamics of MysPDZ (Myo18A) in live mammalian cells
Kentaro Mori1, Ken-ichi Matsuda, Tadashi Furusawa
1Department of Cell Biology, Institute of Development, Aging and Cancer, Tohoku University, 4-1, Seiryo-machi, Aoba-ku, Sendai, Miyagi 980-8575, Japan.
Abstract:
MysPDZ is an unconventional myosin belonging to the class XVIII myosin containing a KE (lysine and glutamine)-rich domain and a PDZ domain, which codistributes with actin fibers partially without any canonical actin binding sequence in its myosin head domain. Recently, we reported the identification of a novel isoform of MysPDZ lacking these domains and exhibiting subcellular localization and expression profile different from the original form of MysPDZ. In order to delineate domains directing the subcellular localization of MysPDZ, we performed co-immunoprecipitation experiments and image analyses using mutants of MysPDZ fused with enhanced yellow fluorescent protein. Co-immunoprecipitation analyses showed that MysPDZ can self-associate through its C-terminus coiled-coil domain and the KE-rich domain mediates the interaction with actin. We observed by image analyses that the codistribution with actin fibers and the localization in inner surface of cell membrane of MysPDZ are controlled by the KE-rich domain and the PDZ domain, respectively. Time lapse video microscopy showed that MysPDZ in the cytoplasm moves randomly and rapidly within short range and is allocated to a subcellular compartment without ATP hydrolysis by MysPDZ. This suggests that MysPDZ is a protein which is unlike most unconventional myosins. Our study uncovers a novel role of the KE-rich and PDZ domains in directing subcellular localization and also contributes to a better understanding of functional differences in MysPDZ isoforms.
Insights
MysPDZ, an unconventional myosin, utilizes its KE-rich and PDZ domains to interact with actin and localize within cells. These domains dictate its unique subcellular positioning and interaction with actin fibers.
Area of Science:
- Cell Biology
- Molecular Biology
- Protein Dynamics
Background:
- MysPDZ is an unconventional myosin XVIII with unique KE-rich and PDZ domains.
- A novel MysPDZ isoform lacking these domains exhibits different localization and expression.
- Understanding MysPDZ domain functions is crucial for deciphering its cellular roles.
Purpose of the Study:
- To delineate the specific domains responsible for MysPDZ's subcellular localization.
- To investigate the interaction mechanisms of MysPDZ with actin and its self-association.
- To elucidate the functional differences between MysPDZ isoforms.
Main Methods:
- Co-immunoprecipitation experiments to analyze protein interactions.
- Image analysis of MysPDZ mutants fused with enhanced yellow fluorescent protein.
- Time-lapse video microscopy to observe MysPDZ dynamics in living cells.
Main Results:
- The KE-rich domain mediates MysPDZ interaction with actin.
- The PDZ domain directs MysPDZ localization to the cell membrane's inner surface.
- MysPDZ self-associates via its C-terminus coiled-coil domain.
- Cytoplasmic MysPDZ exhibits random, short-range movement and ATP-independent localization.
Conclusions:
- The KE-rich and PDZ domains play critical roles in directing MysPDZ subcellular localization.
- MysPDZ exhibits distinct behaviors compared to most unconventional myosins, suggesting novel functions.
- This study enhances understanding of MysPDZ isoform-specific functions and domain-driven localization.
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