Alignment of multiple chromosomes along helical ParA scaffolding in sporulating Streptomyces hyphae

Dagmara Jakimowicz1, Paulina Zydek, Agnieszka Kois

  • 1Ludwik Hirszfeld Institute of Immunology and Experimental Therapy, Polish Academy of Sciences, ul. Weigla 12, 53-114, Wrocław, Poland. jakimow@iitd.pan.wroc.pl

Insights

Streptomyces coelicolor ParA (ATPase) protein is essential for segregating multiple chromosomes during spore formation. It facilitates ParB (DNA-binding protein) complex assembly, ensuring proper DNA distribution and cell division.

Area of Science:

  • Microbiology
  • Molecular Biology
  • Cell Biology

Background:

  • Bacterial chromosome and plasmid segregation often involves ParA and ParB proteins.
  • Streptomyces coelicolor's sporulation involves segregating multiple chromosomes into spores.
  • ParB complex assembly is critical for organizing DNA before septum formation.

Purpose of the Study:

  • To investigate the role of ParA in chromosome segregation during Streptomyces coelicolor sporulation.
  • To elucidate the mechanism by which ParA influences ParB complex formation and function.

Main Methods:

  • Gene knockout to eliminate ParA function.
  • Immunostaining to visualize ParA localization in vivo.
  • In vitro assays to study ParA-ParB interactions and ATP binding effects.

Main Results:

  • ParA is crucial for both chromosome segregation and septation during sporulation.
  • ParA forms a double-helical filament in sporulating hyphae, co-localizing with ParB foci.
  • ParA mediates efficient ParB complex assembly in vivo and in vitro.
  • ATP binding is essential for ParA dimerization and ParB interaction, but not for ParA localization.

Conclusions:

  • S. coelicolor ParA acts as a scaffold for ParB complex distribution.
  • ParA controls the synchronized segregation of numerous chromosomes during sporulation.
  • ParA may function as a checkpoint for segregation and septation processes.

Related Concept Videos

Spindle Assembly02:50

Spindle Assembly

Spindle assembly occurs through three, often coexisting, pathways – the centrosome-mediated pathway, the chromatin-mediated pathway, and the microtubule-mediated pathway – collectively contributing to form a robust spindle apparatus.
In most cells, centrosomes are the primary microtubule nucleation centers. In the centrosome-mediated pathway, the G2-prophase transition triggers centrosome maturation and increased microtubule nucleation. Progressive nucleation results in a microtubule array...
Forces Acting on Chromosomes02:11

Forces Acting on Chromosomes

During mitosis, chromosome movements occur through the interplay of multiple piconewton level forces. In prometaphase, these forces help in chromosome assembly or congression at the equatorial plane, eventually leading to their alignment at the metaphase plate. The forces acting on the chromosomes are space and time-dependent; therefore, they vary with the position of the chromosomes as the cell progresses through mitosis. 
Microtubules and motor proteins exert two types of forces on...
Attachment of Sister Chromatids02:57

Attachment of Sister Chromatids

As cells progress into mitosis, the nuclear envelope breaks down, and the condensed chromosomes are exposed to the array of bipolar microtubules of the mitotic spindle. The kinetochore, a large, disc-shaped protein complex, is present at the centromere region of the sister chromatids and acts as a binding site for the microtubules.  Usually, the plus-end of a single microtubule is embedded within the kinetochore. However, some kinetochores first establish lateral contact with the side-wall of a...
Cohesins02:20

Cohesins

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 homologous...
Chromosome Structure02:40

Chromosome Structure

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.
Telomeres consist of non-coding repetitive nucleotide...
Anaphase A and B01:39

Anaphase A and B

Microtubules form through the end-to-end polymerization of tubulin heterodimers. Kinetochore microtubules originate from the spindle poles, and their plus-ends connect with the kinetochores on sister-chromatids. Ndc80 protein complexes, present on the kinetochore, form low-affinity links with the plus end of these kinetochore microtubules.
Plus-end depolymerization releases tubulin heterodimers from the terminal region of the microtubule. As tubulin subunits are lost, the Ndc80 complexes detach...