Automated Author Profile

Akiyoshi, Bungo

Fred Hutch Cancer Center

Current S-Index

1.9

Sum of Dataset Indices for all datasets

Average Dataset Index per Dataset

1.9

Average Dataset Index per dataset

Total Datasets

1

Total datasets for this author

Average FAIR Score

76.9%

Average FAIR Score per dataset

Total Citations

4

Total citations to the author's datasets

Total Mentions

0

Total mentions of the author's datasets

S-Index Interpretation

S-Index Over Time

Cumulative Citations Over Time

Cumulative Mentions Over Time

Datasets

Microtubules growing and shortening under constant force (Version: 7)

Kinetochores are macromolecular machines that couple chromosomes to dynamic microtubule tips during cell division, thereby generating force to segregate the chromosomes. Accurate segregation depends on selective stabilization of correct 'bi-oriented' kinetochore-microtubule attachments, which come under tension as the result of opposing forces exerted by microtubules. Tension is thought to stabilize these bi-oriented attachments indirectly, by suppressing the destabilizing activity of a kinase, Aurora B. However, a complete mechanistic understanding of the role of tension requires reconstitution of kinetochore-microtubule attachments for biochemical and biophysical analyses in vitro. Here we show that native kinetochore particles retaining the majority of kinetochore proteins can be purified from budding yeast and used to reconstitute dynamic microtubule attachments. Individual kinetochore particles maintain load-bearing associations with assembling and disassembling ends of single microtubules for >30 min, providing a close match to the persistent coupling seen in vivo between budding yeast kinetochores and single microtubules. Moreover, tension increases the lifetimes of the reconstituted attachments directly, through a catch bond-like mechanism that does not require Aurora B. On the basis of these findings, we propose that tension selectively stabilizes proper kinetochore-microtubule attachments in vivo through a combination of direct mechanical stabilization and tension-dependent phosphoregulation.

Authors

  • Akiyoshi, Bungo ;
  • Sarangapani, Krishna K. ;
  • Powers, Andrew F. ;
  • Nelson, Christian R. ;
  • Reichow, Steve L. ;
  • Arellano-Santoyo, Hugo ;
  • Gonen, Tamir ;
  • Ranish, Jeffrey A. ;
  • Leeds, Bonnibelle ;
  • Asbury, Charles L. ;
  • Biggins, Sue
4 Citations0 Mentions77% FAIR1.9 Dataset Index
10.5061/dryad.6djh9w16v2024