Actin-Related Protein 6 (Arp6) Influences Double-Strand Break Repair in Yeast
Abstract
:1. Introduction
2. Materials and Methods
2.1. Yeast Strains and Meterial
2.2. Plasmid Repair Assay
2.3. Repair Fidelity Assay
2.4. DNA Damaging Drug Sensitivity Analysis
2.5. Synthetic Genetic Array Analysis of Genetic Interactions
2.6. Chromosomal Repair Assay
2.7. Homologous Recombination Assay
3. Results
3.1. Deletion of ARP6 Impairs NHEJ Repair of Linearized Plasmids and Chromosomal Breaks
3.2. ARP6 Deletion Is Sensitive to DNA-Damaging Agents
3.3. The Loss of ARP6 Increases NHEJ Accuracy
3.4. Interaction Analysis Suggests a Role with DNA Repair and Chromatin Remodeling
3.5. Studying ARP6 Function in Relation to SWR1-C, INO80-C and RSC-C
3.6. Further Conditional Genetic Evidence for the Association of ARP6 with RSC-C2 and MRE11
3.7. ARP6 Severely Reduces the Efficiency of Homologous Recombination
4. Discussion
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Hooshyar, M.; Burnside, D.; Hajikarimlou, M.; Omidi, K.; Jesso, A.; Vanstone, M.; Young, A.; Cherubini, P.M.; Jessulat, M.; Potter, T.; et al. Actin-Related Protein 6 (Arp6) Influences Double-Strand Break Repair in Yeast. Appl. Microbiol. 2021, 1, 225-238. https://doi.org/10.3390/applmicrobiol1020017
Hooshyar M, Burnside D, Hajikarimlou M, Omidi K, Jesso A, Vanstone M, Young A, Cherubini PM, Jessulat M, Potter T, et al. Actin-Related Protein 6 (Arp6) Influences Double-Strand Break Repair in Yeast. Applied Microbiology. 2021; 1(2):225-238. https://doi.org/10.3390/applmicrobiol1020017
Chicago/Turabian StyleHooshyar, Mohsen, Daniel Burnside, Maryam Hajikarimlou, Katayoun Omidi, Alexander Jesso, Megan Vanstone, Adamo Young, Pedro Matilha Cherubini, Matthew Jessulat, Taylor Potter, and et al. 2021. "Actin-Related Protein 6 (Arp6) Influences Double-Strand Break Repair in Yeast" Applied Microbiology 1, no. 2: 225-238. https://doi.org/10.3390/applmicrobiol1020017