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Examination of Mitotic and Meiotic Fission Yeast Nuclear Dynamics by Fluorescence Live-cell Microscopy
Published on: June 24, 2019
Fission yeast mitochondria are distributed by dynamic microtubules in a motor-independent manner
Tianpeng Li1, Fan Zheng1, Martin Cheung2
11] Department of Biochemistry [2] HKU-Shenzhen Institute of Research and Innovation, The University of Hong Kong, Shenzhen, China.
Abstract:
The cytoskeleton plays a critical role in regulating mitochondria distribution. Similar to axonal mitochondria, the fission yeast mitochondria are distributed by the microtubule cytoskeleton, but this is regulated by a motor-independent mechanism depending on the microtubule associated protein mmb1p as the absence of mmb1p causes mitochondria aggregation. In this study, using a series of chimeric proteins to control the subcellular localization and motility of mitochondria, we show that a chimeric molecule containing a microtubule binding domain and the mitochondria outer membrane protein tom22p can restore the normal interconnected mitochondria network in mmb1-deletion (mmb1∆) cells. In contrast, increasing the motility of mitochondria by using a chimeric molecule containing a kinesin motor domain and tom22p cannot rescue mitochondria aggregation defects in mmb1∆ cells. Intriguingly a chimeric molecule carrying an actin binding domain and tom22p results in mitochondria associated with actin filaments at the actomyosin ring during mitosis, leading to cytokinesis defects. These findings suggest that the passive motor-independent microtubule-based mechanism is the major contributor to mitochondria distribution in wild type fission yeast cells. Hence, we establish that attachment to microtubules, but not kinesin-dependent movement and the actin cytoskeleton, is required and crucial for proper mitochondria distribution in fission yeast.
Insights
Fission yeast mitochondria distribution relies on microtubule attachment, not motor-driven movement. A motor-independent mechanism involving the microtubule-associated protein mmb1p is crucial for maintaining mitochondrial networks.
Area of Science:
- Cell Biology
- Mitochondrial Dynamics
- Cytoskeletal Regulation
Background:
- The cytoskeleton is essential for intracellular organelle distribution, including mitochondria.
- In fission yeast, microtubule-based transport regulates mitochondria, but the mechanism is not fully understood.
- The microtubule-associated protein mmb1p is implicated in preventing mitochondria aggregation.
Purpose of the Study:
- To investigate the mechanisms governing mitochondria distribution in fission yeast.
- To determine the roles of microtubule attachment, motor-dependent movement, and actin cytoskeleton in mitochondria distribution.
Main Methods:
- Construction and utilization of chimeric proteins to link mitochondria to different cytoskeletal elements.
- Expression of chimeric proteins in mmb1-deletion (mmb1∆) fission yeast cells.
- Microscopy analysis to assess mitochondria morphology and localization.
Main Results:
- A chimera linking mitochondria to microtubules restored normal mitochondrial networks in mmb1∆ cells.
- A chimera enhancing mitochondria motility via kinesin did not rescue aggregation defects.
- Mitochondria tethered to the actin cytoskeleton caused cytokinesis defects.
Conclusions:
- Motor-independent microtubule-based mechanisms are the primary drivers of mitochondria distribution in fission yeast.
- Attachment to microtubules, rather than motor-driven transport or actin association, is critical for proper mitochondria distribution.
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