Open access · CC-BY
via OpenAlex
Actin-Related Protein 4 and Linker Histone Sustain Yeast Replicative Ageing
Mateusz Mołoń, Karolina Stępień, Patrycja Kielar, Bela Vasileva, Bonka Lozanska, Dessislava Staneva, Penyo Ivanov, Monika Kula-Maximenko, Eliza Molestak, Marek Tchórzewski, George Miloshev, Milena Georgieva
Cells · 2022 · ▲ 4 citations
Abstract
Ageing is accompanied by dramatic changes in chromatin structure organization and genome function. Two essential components of chromatin, the linker histone Hho1p and actin-related protein 4 (Arp4p), have been shown to physically interact in Saccharomyces cerevisiae cells, thus maintaining chromatin dynamics and function, as well as genome stability and cellular morphology. Disrupting this interaction has been proven to influence the stability of the yeast genome and the way cells respond to stress during chronological ageing. It has also been proven that the abrogated interaction between these two chromatin proteins elicited premature ageing phenotypes. Alterations in chromatin compaction have also been associated with replicative ageing, though the main players are not well recognized. Based on this knowledge, here, we examine how the interaction between Hho1p and Arp4p impacts the ageing of mitotically active yeast cells. For this purpose, two sets of strains were used—haploids (WT(n), arp4, hho1Δ and arp4 hho1Δ) and their heterozygous diploid counterparts (WT(2n), ARP4/arp4, HHO1/hho1Δ and ARP4 HHO1/arp4 hho1Δ)—for the performance of extensive morphological and physiological analyses during replicative ageing. These analyses included a comparative examination of the yeast cells’ chromatin structure, proliferative and reproductive potential, and resilience to stress, as well as polysome profiles and chemical composition. The results demonstrated that the haploid chromatin mutants arp4 and arp4 hho1Δ demonstrated a significant reduction in replicative and total lifespan. These findings lead to the conclusion that the importance of a healthy interaction between Arp4p and Hho1p in replicative ageing is significant. This is proof of the concomitant importance of Hho1p and Arp4p in chronological and replicative ageing.
◌ CITATION ONLY
Full text is not openly licensed for redistribution here. Read it at the source:
Provenance
- Source
- OpenAlex
- DOI
- 10.3390/cells11172754
- Canonical
- link ↗
- Fetched
- 2026-07-15 MST
Cite this
APA
Mołoń, M., Stępień, K., Kielar, P., Vasileva, B., Lozanska, B., Staneva, D., Ivanov, P., Kula-Maximenko, M., Molestak, E., Tchórzewski, M., Miloshev, G., & Georgieva, M. (2022). Actin-Related Protein 4 and Linker Histone Sustain Yeast Replicative Ageing. <em>Cells</em>. https://doi.org/10.3390/cells11172754
Vancouver
Mołoń M, Stępień K, Kielar P, Vasileva B, Lozanska B, Staneva D, et al. Actin-Related Protein 4 and Linker Histone Sustain Yeast Replicative Ageing. Cells. 2022. doi:10.3390/cells11172754.
BibTeX
@article{mateusz2022ActinR,
title = {Actin-Related Protein 4 and Linker Histone Sustain Yeast Replicative Ageing},
author = {Mateusz Mołoń and Karolina Stępień and Patrycja Kielar and Bela Vasileva and Bonka Lozanska and Dessislava Staneva and Penyo Ivanov and Monika Kula-Maximenko and Eliza Molestak and Marek Tchórzewski and George Miloshev and Milena Georgieva},
journal = {Cells},
year = {2022},
doi = {10.3390/cells11172754},
}
Research neighborhood
References, citing works, and semantically nearest findings. Click a node to open it.
Related findings
Nature Cell Biology 2013
Preprint · CC-BY
DAF-16 employs the chromatin remodeller SWI/SNF to promote stress resistance and longevity
Oxidative Medicine and Cellular Longevity 2012
Open access · CC-BY
Growth Culture Conditions and Nutrient Signaling Modulating Yeast Chronological Longevity
BMC Biology 2016
Open access · CC-BY
IMPACT is a GCN2 inhibitor that limits lifespan in Caenorhabditis elegans
Mitochondrion 2022
Open access · CC-BY
Mitochondria dysfunction and impaired response to oxidative stress promotes proteostasis disruption in aged human cells
Nature Communications 2016
Open access · CC-BY
Genetic and environmental influences interact with age and sex in shaping the human methylome
Letters in Applied Microbiology 2000
Citation only