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Importance of mitochondrial dynamics during meiosis and sporulation

机译:减数分裂和孢子形成过程中线粒体动力学的重要性

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Opposing fission and fusion events maintain the yeast mitochondrial network. Six proteins regulate these membrane dynamics during mitotic growth-Dnm1p, Mdv1p, and Fis1p mediate fission; Fzo1p, Mgm1p, and Ugo1p mediate fusion. Previous studies established that mitochondria fragment and rejoin at distinct stages during meiosis and sporulation, suggesting that mitochondrial fission and fusion are required during this process. Here we report that strains defective for mitochondrial fission alone, or both fission and fusion, complete meiosis and sporulation. However, visualization of mitochondria in sporulating cultures reveals morphological defects associated with the loss of fusion and/or fission proteins. Specifically, mitochondria collapse to one side of the cell and fail to fragment during presporulation. In addition, mitochondria are not inherited equally by newly formed spores, and mitochondrial DNA nucleoid segregation defects give rise to spores lacking nucleoids. This nucleoid inheritance defect is correlated with an increase in petite spore colonies. Unexpectedly, mitochondria fragment in mature tetrads lacking fission proteins. The latter finding suggests either that novel fission machinery operates during sporulation or that mechanical forces generate the mitochondrial fragments observed in mature spores. These results provide evidence of fitness defects caused by fission mutations and reveal new phenotypes associated with fission and fusion mutations.
机译:相反的裂变和融合事件维持了酵母线粒体网络。六种蛋白质调节有丝分裂生长过程中的这些膜动力学-Dnm1p,Mdv1p和Fis1p介导裂变。 Fzo1p,Mgm1p和Ugo1p介导融合。先前的研究证实,线粒体在减数分裂和孢子形成的不同阶段会分裂并重新结合,这表明在此过程中需要线粒体的分裂和融合。在这里,我们报告仅针对线粒体裂变或裂变与融合均具有缺陷的菌株,完全减数分裂和孢子形成。然而,在孢子培养中线粒体的可视化揭示了与融合蛋白和/或裂变蛋白的丢失相关的形态缺陷。具体而言,线粒体塌陷到细胞的一侧,在预孢子形成过程中无法断裂。另外,线粒体不被新形成的孢子同等地遗传,并且线粒体DNA核苷分离缺陷导致缺乏核苷的孢子。该类核苷遗传缺陷与小孢子菌落的增加有关。出乎意料的是,成熟四分体中的线粒体片段缺乏裂变蛋白。后一个发现表明,新型裂变机制在孢子形成过程中起作用,或者机械力产生了在成熟孢子中观察到的线粒体片段。这些结果提供了由裂变突变引起的适应性缺陷的证据,并揭示了与裂变和融合突变相关的新表型。

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