paper-with-me

Papers

Accurate chromosome segregation by probabilistic self-organization

2015-06-23

Background: For faithful chromosome segregation during cell division, correct attachments must be established between sister chromosomes and microtubules from opposite spindle poles through kinetochores (chromosome bi-orientation). Incorrect attachments of kinetochore microtubules (kMTs) lead to chromosome mis-segregation and aneuploidy, which is often associated with developmental abnormalities such as Down syndrome and diseases including cancer. The interaction between kinetochores and microtubules is highly dynamic with frequent attachments and detachments. However, it remains unclear how chromosome bi-orientation is achieved with such accuracy in such a dynamic process. Results: To gain new insight into this essential process, we have developed a simple mathematical model of kinetochore-microtubule interactions during cell division in general, i.e. both mitosis and meiosis. Firstly, the model reveals that the balance between attachment and detachment probabilities of kMTs is crucial for correct chromosome bi-orientation. With the right balance, incorrect attachments are resolved spontaneously into correct bi-oriented conformations while an imbalance leads to persistent errors. In addition, the model explains why errors are more commonly found in the first meiotic division (meiosis I) than in mitosis and how a faulty conformation can evade the spindle assembly checkpoint, which may lead to a chromosome loss. Conclusions: The proposed model, despite its simplicity, helps us understand one of the primary causes of chromosomal instability - aberrant kinetochore-microtubule interactions. The model reveals that chromosome bi-orientation is a probabilistic self-organization, rather than a sophisticated process of error detection and correction.

📄 PDF Abstract BibTeX arXiv:1412.5955

Code (0)

등록된 구현이 없습니다.

Similar Papers 제목 키워드 기반

Using Fluorescence Recovery After Photobleaching (FRAP) to study dynamics of the Structural Maintenance of Chromosome (SMC) complex in vivo

2016-05-25

The SMC complex, MukBEF, is important for chromosome organization and segregation in Escherichia coli. Fluorescently tagged MukBEF forms distinct spots (or 'foci') in the cell, where it is thought to carry out most of it…

Simulation-based inference of yeast centromeres

2025-08-29 · Eloïse Touron, Pedro L. C. Rodrigues, Julyan Arbel, Nelle Varoquaux 외 arxiv

The chromatin folding and the spatial arrangement of chromosomes in the cell play a crucial role in DNA replication and genes expression. An improper chromatin folding could lead to malfunctions and, over time, diseases.…

Chromosome-wide simulations uncover folding pathway and 3D organization of interphase chromosomes

2016-04-11

Three-dimensional interphase organization of metazoan genomes has been linked to cellular identity. However, the principles governing 3D interphase genome architecture and its faithful transmission through disruptive eve…

Gauging Association Patterns of Chromosome Territories via Chromatic Median

2013-06-01 · CVPR 2013 6 · Hu Ding, Branislav Stojkovic, Ronald Berezney, Jinhui Xu

Computing accurate and robust organizational patterns of chromosome territories inside the cell nucleus is critical for understanding several fundamental genomic processes, such as co-regulation of gene activation, gene …

Rare recombination events generate sequence diversity among balancer chromosomes in Drosophila melanogaster

2015-11-16

Multiply inverted balancer chromosomes that suppress exchange with their homologs are an essential part of the genetic toolkit in Drosophila melanogaster. Despite their widespread use, the organization of balancer chromo…

Diversity