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S-Cdk Initiates DNA Replication02:38

S-Cdk Initiates DNA Replication

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The cell cycle is a series of events leading to DNA duplication followed by the division of cell content to form two daughter cells. The cell cycle progresses in four stages—the cell increases in size (gap 1 or G1-phase), duplicates its DNA (synthesis or S-phase), prepares to divide (gap 2 or G2-phase), and divides (mitosis or M-phase).
Two states at the origin of replication
In eukaryotes, the initiation of replication occurs at many sites on the chromosomes, called the origins of...
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The Spindle Assembly Checkpoint02:19

The Spindle Assembly Checkpoint

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The spindle assembly checkpoint is a molecular surveillance mechanism ensuring the fidelity of chromosome segregation during anaphase. The checkpoint monitors the completion of all the prerequisite steps before chromosome segregation to determine whether the segregation process should proceed or be delayed.
Many proteins function together to control the spindle assembly checkpoint. Mutations affecting these proteins may allow cells to proceed into anaphase prematurely, resulting in the...
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Cohesins02:20

Cohesins

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Cohesin protein complexes are a molecular glue that holds two sister chromatids together. They play an important role both in mitosis and meiosis. In mitosis, all cohesin complexes present on the chromosomes are removed before the start of the anaphase stage.
Cohesin complexes in Meiotic Division
Meiosis involves two distinct rounds of chromosomal segregation and cell divisions— Meiosis I followed by Meiosis II – producing four daughter cells. Meiosis I includes the separation of...
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Replication in Eukaryotes01:29

Replication in Eukaryotes

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In eukaryotic cells, DNA replication is highly conserved and tightly regulated. Multiple linear chromosomes must be duplicated with high fidelity before cell division, so there are many proteins that fulfill specialized roles in the replication process. Replication occurs in three phases: initiation, elongation, and termination, and ends with two complete sets of chromosomes in the nucleus.
Many Proteins Orchestrate Replication at the Origin
Eukaryotic replication follows many of the same...
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Chromosome Structure02:40

Chromosome Structure

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A functional eukaryotic chromosome must contain three elements: a centromere, telomeres, and numerous origins of replication.
The centromere is a DNA sequence that links sister chromatids. This is also where kinetochores, protein complexes to which spindle microtubules attach, are constructed after the chromosome is replicated. The kinetochores allow the spindle microtubules to move the chromosomes within the cell during cell division.
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The DNA Replication Fork01:02

The DNA Replication Fork

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An organism’s genome needs to be duplicated in an efficient and error-free manner for its growth and survival. The replication fork is a Y-shaped active region where two strands of DNA are separated and replicated continuously. The coupling of DNA unzipping and complementary strand synthesis is a characteristic feature of a replication fork.   Organisms with small circular DNA, such as E. coli, often have a single origin of replication; therefore, they have only two replication...
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Related Experiment Video

Updated: Oct 9, 2025

Use of Time-Lapse Microscopy and Stage-Specific Nuclear Depletion of Proteins to Study Meiosis in S. cerevisiae
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Use of Time-Lapse Microscopy and Stage-Specific Nuclear Depletion of Proteins to Study Meiosis in S. cerevisiae

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Coupling DNA Replication and Spindle Function in Saccharomyces cerevisiae.

Dimitris Liakopoulos1,2,3

  • 1CRBM, Université de Montpellier, CNRS, 1919 Route de Mende, 34293 Montpellier, France.

Cells
|December 24, 2021
PubMed
Summary

In yeast, DNA replication and spindle assembly overlap. Signaling mechanisms ensure correct chromosome segregation timing during DNA replication and repair, offering insights into human cell processes.

Keywords:
S-phase checkpointcell cyclereplicationspindleyeast

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Area of Science:

  • Cell Biology
  • Molecular Biology
  • Genetics

Background:

  • DNA replication and spindle assembly are critical cell processes that can overlap in Saccharomyces cerevisiae.
  • Coordination is essential, particularly when DNA replication is incomplete or DNA damage occurs, to ensure accurate chromosome segregation.
  • Signaling pathways play a crucial role in modulating spindle dynamics.

Purpose of the Study:

  • To review the molecular mechanisms coordinating DNA replication and spindle dynamics in yeast.
  • To explore the role of spindle-dependent forces in DNA repair.
  • To highlight the relevance of yeast studies for understanding similar processes in human eukaryotes.

Main Methods:

  • Literature review of molecular mechanisms.
  • Analysis of signaling pathways involved in cell cycle regulation.
  • Examination of studies on DNA repair and spindle function.

Main Results:

  • Detailed overview of molecular crosstalk between replication and spindle assembly.
  • Identification of key signaling pathways that ensure temporal coupling.
  • Evidence for spindle-dependent forces contributing to DNA repair processes.

Conclusions:

  • The coupling between genome duplication and spindle function in yeast is tightly regulated by molecular mechanisms.
  • Spindle-dependent forces are integral to DNA repair, ensuring genomic stability.
  • Insights from yeast provide a valuable model for understanding fundamental eukaryotic cell biology.