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Updated: Aug 2, 2025

Reconstitution of Basic Mitotic Spindles in Spherical Emulsion Droplets
Published on: August 13, 2016
Coordination between the Ndc80 complex and dynein is essential for microtubule plus-end capture by kinetochores
Mohammed Abdullahel Amin1, Manas Chakraborty1, Destiny Ariel Wallace1
1Department of Cell and Developmental Biology, Feinberg School of Medicine, Northwestern University, Chicago, Illinois, USA.
Abstract:
Mitotic kinetochores are initially captured by dynamic microtubules via a "search-and-capture" mechanism. The microtubule motor, dynein, is critical for kinetochore capture as it has been shown to transport microtubule-attached chromosomes toward the spindle pole during prometaphase. The microtubule-binding nuclear division cycle 80 (Ndc80) complex that is recruited to kinetochores in prophase is known to play a central role in forming kinetochore-microtubule (kMT) attachments in metaphase. It is not yet clear, however, how Ndc80 contributes to initial kMT capture during prometaphase. Here, by combining CRISPR/Cas9-mediated knockout and RNAi technology with assays specific to study kMT capture, we show that mitotic cells lacking Ndc80 exhibit substantial defects in this function during prometaphase. Rescue experiments show that Ndc80 mutants deficient in microtubule-binding are unable to execute proper kMT capture. While cells inhibited of dynein alone are predominantly able to make initial kMT attachments, cells co-depleted of Ndc80 and dynein show severe defects in kMT capture. Further, we use an in vitro total internal reflection fluorescence microscopy assay to reconstitute microtubule capture events, which suggest that Ndc80 and dynein coordinate with each other for microtubule plus-end capture and that the phosphorylation status of Ndc80 is critical for productive kMT capture. A novel interaction between Ndc80 and dynein that we identify in prometaphase extracts might be critical for efficient plus-end capture. Thus, our studies, for the first time, identify a distinct event in the formation of initial kMT attachments, which is directly mediated by Ndc80 and in coordination with dynein is required for efficient kMT capture and chromosome alignment.
Insights
The nuclear division cycle 80 (Ndc80) complex and dynein motor protein are crucial for initial kinetochore-microtubule capture during cell division. Their coordinated action ensures proper chromosome alignment.
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- Mitotic kinetochores capture dynamic microtubules via
- search-and-capture
- mechanisms. Dynein motor protein is vital for chromosome transport during prometaphase. The Ndc80 complex mediates kinetochore-microtubule attachments in metaphase, but its role in initial capture is unclear.
Purpose of the Study:
- To elucidate the role of the Ndc80 complex in initial kinetochore-microtubule (kMT) capture during prometaphase.
- To investigate the coordination between Ndc80 and dynein in kMT attachment formation.
- To identify factors regulating productive kMT capture.
Main Methods:
- CRISPR/Cas9-mediated knockout and RNAi technology.
- Assays for studying kMT capture dynamics.
- In vitro total internal reflection fluorescence microscopy reconstitution assays.
Main Results:
- Mitotic cells lacking Ndc80 show significant defects in kMT capture during prometaphase.
- Ndc80 mutants deficient in microtubule-binding cannot perform proper kMT capture.
- Co-depletion of Ndc80 and dynein severely impairs kMT capture, while dynein inhibition alone has less impact.
- Ndc80 and dynein coordinate for microtubule plus-end capture in vitro, with Ndc80 phosphorylation being critical.
- A novel interaction between Ndc80 and dynein was identified in prometaphase extracts.
Conclusions:
- Ndc80 directly mediates a distinct event in initial kMT attachment formation during prometaphase.
- Ndc80 and dynein coordinate for efficient microtubule plus-end capture and subsequent chromosome alignment.
- Ndc80 phosphorylation is a critical regulatory mechanism for productive kMT capture.
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