Motor Protein Dynamics and Mitotic Mechanisms
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1.Purification of Affinity Tag-free Recombinant Tubulin from Insect Cells
- Ti,Shih-Chieh;Wieczorek,Michal;Kapoor,Tarun M;
- 《STAR Protoc》
- 2020年
- 1卷
- 1期
- 期刊
2.High-resolution imaging reveals how the spindle midzone impacts chromosome movement
- 关键词:
- MITOTIC SPINDLE; MICROTUBULE DYNAMICS; MAMMALIAN-CELLS; CROSS-LINKING;PRC1; ANAPHASE; CYTOKINESIS; MITOSIS; BINDING; POLARITY
- Pamula, Melissa C.;Carlini, Lina;Forth, Scott;Verma, Priyanka;Suresh, Subbulakshmi;Legant, Wesley R.;Khodjakoy, Alexey;Betzig, Eric;Kapoor, Tarun M.
- 《JOURNAL OF CELL BIOLOGY》
- 2019年
- 218卷
- 8期
- 期刊
In the spindle midzone, microtubules from opposite half-spindles form bundles between segregating chromosomes. Microtubule bundles can either push or restrict chromosome movement during anaphase in different cellular contexts, but how these activities are achieved remains poorly understood. Here, we use high-resolution live-cell imaging to analyze individual microtubule bundles, growing filaments, and chromosome movement in dividing human cells. Within bundles, filament overlap length marked by the cross-linking protein PRC1 decreases during anaphase as chromosome segregation slows. Filament ends within microtubule bundles appear capped despite dynamic PRC1 turnover and submicrometer proximity to growing microtubules. Chromosome segregation distance and rate are increased in two human cell lines when microtubule bundle assembly is prevented via PRC1 knockdown. Upon expressing a mutant PRC1 with reduced microtubule affinity, bundles assemble but chromosome hypersegregation is still observed. We propose that microtubule overlap length reduction, typically linked to pushing forces generated within filament bundles, is needed to properly restrict spindle elongation and position chromosomes within daughter cells.
...3.Human beta-Tubulin Isotypes Can Regulate Microtubule Protofilament Number and Stability
- 关键词:
- STRUCTURAL BASIS; PROTEIN; DYNAMICS; NUCLEATION; SYSTEM; GROWTH; SITE;RECONSTITUTION; RECONSTRUCTION; PURIFICATION
- Ti, Shih-Chieh;Alushin, Gregory M.;Kapoortv, Tarun M.
- 《DEVELOPMENTAL CELL》
- 2018年
- 47卷
- 2期
- 期刊
Cell biological studies have shown that protofilament number, a fundamental feature of microtubules, can correlate with the expression of different tubulin isotypes. However, it is not known if tubulin isotypes directly control this basic microtubule property. Here, we report high-resolution cryo-EM reconstructions (3.5-3.65 angstrom) of purified human alpha 1B/beta 3 and alpha 1B/beta 2B microtubules and find that the beta-tubulin isotype can determine protofilament number. Comparisons of atomic models of 13- and 14-protofilament microtubules reveal how tubulin subunit plasticity, manifested in "accordion-like" distributed structural changes, can accommodate distinct lattice organizations. Furthermore, compared to alpha 1B/beta 3 microtubules, alpha 1B/beta 2B filaments are more stable to passive disassembly and against depolymerization by MCAK or chTOG, microtubule-associated proteins with distinct mechanisms of action. Mixing tubulin isotypes in different proportions results in microtubules with protofilament numbers and stabilities intermediate to those of isotypically pure filaments. Together, our findings indicate that microtubule protofilament number and stability can be controlled through beta-tubulin isotype composition.
...4.Analyzing the micromechanics of the cell division apparatus
- Shimamoto,Yuta;Kapoor,Tarun M;
- 《Methods in cell biology》
- 2018年
- 145卷
- 期
- 期刊
5.The mechanics of microtubule networks in cell division
- 关键词:
- MITOTIC SPINDLE; FORCE; PROTEIN; MOTORS; KINESIN-5; TRANSPORT; DYNAMICS; FRICTION; BRAKING; LIMITS
- Forth, Scott;Kapoor, Tarun M.
- 《JOURNAL OF CELL BIOLOGY》
- 2017年
- 216卷
- 6期
- 期刊
The primary goal of a dividing somatic cell is to accurately and equally segregate its genome into two new daughter cells. In eukaryotes, this process is performed by a self-organized structure called the mitotic spindle. It has long been appreciated that mechanical forces must be applied to chromosomes. At the same time, the network of microtubules in the spindle must be able to apply and sustain large forces to maintain spindle integrity. Here we consider recent efforts to measure forces generated within microtubule networks by ensembles of key proteins. New findings, such as length-dependent force generation, protein clustering by asymmetric friction, and entropic expansion forces will help advance models of force generation needed for spindle function and maintaining integrity.
...6.Metaphase Spindle Assembly
- Kapoor,Tarun M;
- 《Biology》
- 2017年
- 6卷
- 1期
- 期刊
