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Preparation of Segmented Microtubules to Study Motions Driven by the Disassembling Microtubule Ends
Published on: March 15, 2014
The Aspergillus cytoplasmic dynein heavy chain and NUDF localize to microtubule ends and affect microtubule dynamics
1Department of Biochemistry and Molecular Biology, Uniformed Services University of the Health Sciences, Bethesda, MD 20814, USA.
Abstract:
Cytoplasmic dynein is a multisubunit, minus end-directed microtubule motor that uses dynactin as an accessory complex to perform various in vivo functions including vesicle transport, spindle assembly, and nuclear distribution [1]. We previously showed that in the filamentous fungus Aspergillus nidulans, a GFP-tagged cytoplasmic dynein heavy chain (NUDA) forms comet-like structures that exhibited microtubule-dependent movement toward and back from the hyphal tip [2]. Here we demonstrate that another protein in the NUDA pathway, NUDF, which is homologous to the human LIS1 protein involved in brain development [3, 4], also exhibits such dynamic behavior. Both NUDA and NUDF are located at the ends of microtubules, and this observation suggests that the observed dynamic behavior is due to their association with the dynamic microtubule ends. To address whether NUDA and NUDF play a role in regulating microtubule dynamics in vivo, we constructed a GFP-labeled alpha-tubulin strain and used it to compare microtubule dynamics in vivo in wild-type A. nidulans versus temperature-sensitive loss-of-function mutants of nudA and nudF. The mutants showed a lower frequency of microtubule catastrophe, a lower rate of shrinkage during catastrophe, and a lower frequency of rescue. The microtubules in the mutant cells also paused longer at the hyphal tip than wild-type microtubules. These results indicate that cytoplasmic dynein and the LIS1 homolog NUDF affect microtubule dynamics in vivo.
Insights
Cytoplasmic dynein and its LIS1 homolog NUDF regulate microtubule dynamics in Aspergillus nidulans. Loss of these proteins alters microtubule catastrophe, shrinkage, and rescue, impacting cell functions.
Area of Science:
- Cell Biology
- Molecular Motors
- Cytoskeleton Dynamics
Background:
- Cytoplasmic dynein is a crucial minus end-directed microtubule motor.
- Dynactin is an accessory complex essential for dynein's in vivo functions.
- Previous studies showed GFP-tagged cytoplasmic dynein heavy chain (NUDA) in Aspergillus nidulans forms comet-like structures moving along microtubules.
Purpose of the Study:
- To investigate the dynamic behavior of NUDF, a protein homologous to human LIS1.
- To determine if NUDA and NUDF regulate microtubule dynamics in vivo.
- To compare microtubule dynamics in wild-type and mutant Aspergillus nidulans.
Main Methods:
- Utilized a GFP-labeled alpha-tubulin strain in Aspergillus nidulans.
- Compared microtubule dynamics in wild-type versus temperature-sensitive loss-of-function mutants of nudA and nudF.
- Observed and quantified microtubule catastrophe, shrinkage, rescue, and pausing behavior.
Main Results:
- NUDF, like NUDA, exhibits dynamic behavior associated with microtubule ends.
- Mutants lacking functional nudA or nudF showed reduced microtubule catastrophe frequency and shrinkage rates.
- Microtubules in mutant cells exhibited longer pauses at the hyphal tip compared to wild-type.
Conclusions:
- Cytoplasmic dynein and the LIS1 homolog NUDF play significant roles in regulating microtubule dynamics in vivo.
- These proteins' association with dynamic microtubule ends influences microtubule behavior.
- The findings provide insights into the cellular functions of dynein and LIS1 homologs.
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