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A conserved interaction between Moe1 and Mal3 is important for proper spindle formation in Schizosaccharomyces pombe
1Department of Biology, New York University, New York, New York 10003-6688, USA.
Abstract:
Moe1 is a conserved fission yeast protein that negatively affects microtubule stability/assembly. We conducted a two-hybrid screen to search for Moe1-binding proteins and isolated Mal3, a homologue of human EB1. We show that Moe1 and Mal3 expressed in bacteria form a complex and that Moe1 and Mal3 expressed in fission yeast cosediment with microtubules. Deletion of either moe1 or mal3 does not result in lethality; however, deletion of both moe1 and mal3 leads to cell death in the cold. The resulting cells appear to die of chromosome missegregation, which correlates with the presence of abnormal spindles. We investigated the cause for the formation of monopolar spindles and found that only one of the two spindle pole bodies (SPBs) contains gamma-tubulin, although both SPBs appear to be equal in size and properly inserted in the nuclear membrane. Moreover, the moe1 mal3 double null mutant in the cold contains abnormally short and abundant interphase microtubule bundles. These data suggest that Moe1 and Mal3 play a role in maintaining proper microtubule dynamics/integrity and distribution of gamma-tubulin to the SPBs during mitosis. Finally, we show that human Moe1 and EB1 can each rescue the phenotype of the moe1 mal3 double null mutant and form a complex, suggesting that these proteins are part of a well-conserved mechanism for regulating spindle functioning.
Insights
Moe1 and Mal3 proteins are crucial for microtubule integrity and chromosome segregation in fission yeast. Their combined absence causes cell death by disrupting spindle pole body function and microtubule dynamics.
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- Moe1 is a fission yeast protein that regulates microtubule stability.
- Mal3 is a homologue of human EB1 and binds to Moe1.
- Microtubule dynamics are essential for cell division.
Purpose of the Study:
- To identify Moe1-binding proteins.
- To investigate the function of Moe1 and Mal3 in fission yeast.
- To explore the conserved mechanism of spindle regulation.
Main Methods:
- Two-hybrid screening to identify binding partners.
- Bacterial and yeast expression systems to study protein interactions.
- Microscopy and genetic analysis of mutant phenotypes.
Main Results:
- Moe1 and Mal3 form a complex and associate with microtubules.
- Deletion of both moe1 and mal3 leads to cold-sensitive cell death, chromosome missegregation, and abnormal spindles.
- Monopolar spindles result from gamma-tubulin mislocalization to spindle pole bodies.
- Mutants exhibit short, abundant interphase microtubule bundles.
Conclusions:
- Moe1 and Mal3 are essential for microtubule dynamics and gamma-tubulin distribution.
- These proteins play a conserved role in regulating spindle function.
- Human Moe1 and EB1 can rescue the fission yeast mutant phenotype.