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Updated: Jul 13, 2026

Surface Spreading and Immunostaining of Yeast Chromosomes
Published on: August 9, 2015
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
Abstract:
The dynamic, mitosis-like segregation of bacterial chromosomes and plasmids often involves proteins of the ParA (ATPase) and ParB (DNA-binding protein) families. The conversion of multigenomic aerial hyphae of the mycelial organism Streptomyces coelicolor into chains of unigenomic spores requires the synchronous segregation of multiple chromosomes, providing an unusual context for chromosome segregation. Correct spatial organization of the oriC-proximal region prior to septum formation is achieved by the assembly of ParB into segregation complexes (Jakimowicz et al., 2005; J Bacteriol 187: 3572-3580). Here, we focus on the contribution of ParA to sporulation-associated chromosome segregation. Elimination of ParA strongly affects not only chromosome segregation but also septation. In wild type hyphae about to undergo sporulation, immunostained ParA was observed as a stretched double-helical filament, which accompanies the formation of ParB foci. We show that ParA mediates efficient assembly of ParB complexes in vivo and in vitro, and that ATP binding is crucial for ParA dimerization and interaction with ParB but not for ParA localization in vivo. We suggest that S. coelicolor ParA provides scaffolding for proper distribution of ParB complexes and consequently controls synchronized segregation of several dozens of chromosomes, possibly mediating a segregation and septation checkpoint.
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.
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