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Fig. 4. Mto2 binding to Mto1 is required for efficient interaction of Mto1 with the -TuC. (A) anti-Mto1 and anti-Mto2 immunoprecipitates from wild-type, mto1-334 and mto1 cells (strains KS516, KS2272, KS1017), probed with anti-Mto1 and anti-Mto2 antibodies. (B) mto2 and mto1-334 mutant cell morphology (strains KS977, KS3734) after growth to stationary phase and refeeding with fresh medium. (C) Anti-Myc immunoprecipitates of Mto1, Mto1-Myc or Mto1-334-Myc, in the mto2 backgrounds shown (strains KS1370, KS1517, KS2169, KS3742), probed with antibodies to the indicated proteins. (D) Anti-tubulin immunofluorescence time-course of MT regrowth after cold-induced depolymerization in wild-type, mto2 and mto1-334 cells (strains KS516, KS976, KS2272). (E) Stills from movies of mto2 and mto1-334 cells expressing GFP-tubulin and Sad1-dsRed (strains KS2785, KS3765; see supplementary material Movies 6 and 7). Interphase cells are shown on the left of each pair (40 second intervals) and mitotic cells on the right (100 second intervals). White arrowheads indicate interphase MT nucleation, restricted to the SPB. Yellow arrowheads indicate mitotic astral MTs. Blue arrowheads indicate examples of weak nucleation of MTs from eMTOC. Asterisks indicate bend-breakage events in which a single MT or MT bundle breaks into two. (F) Maximum projections of cells expressing Mto1-GFP in mto2 background or Mto1-334-GFP in wild-type mto2+ background, together with Alp4-tdT (KS4074, KS4039). In some but not all mto2 and mto1-334 mutants, very faint Alp4-tdT could be observed at the equator, which may represent sub-detection amounts of -TuC that are probably responsible for the very small amount of equatorial MT nucleation observed in these mutants (see E). Bars, 10 µm.
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