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Updated: Apr 5, 2026

Studying Age-dependent Genomic Instability using the S. cerevisiae Chronological Lifespan Model
Published on: September 29, 2011
Slow-growing cells within isogenic populations have increased RNA polymerase error rates and DNA damage
David van Dijk1, Riddhiman Dhar2, Alsu M Missarova3
11] Department of Biological Sciences, Columbia University, New York, New York 10027, USA [2] Department of Systems Biology, Columbia University, New York, New York 10027, USA [3] Department of Applied Mathematics, Weizmann Institute of Science, Rehovot, 7610001, Israel [4] Department of Molecular Cell Biology, Weizmann Institute of Science, Rehovot, 7610001, Israel.
Abstract:
Isogenic cells show a large degree of variability in growth rate, even when cultured in the same environment. Such cell-to-cell variability in growth can alter sensitivity to antibiotics, chemotherapy and environmental stress. To characterize transcriptional differences associated with this variability, we have developed a method--FitFlow--that enables the sorting of subpopulations by growth rate. The slow-growing subpopulation shows a transcriptional stress response, but, more surprisingly, these cells have reduced RNA polymerase fidelity and exhibit a DNA damage response. As DNA damage is often caused by oxidative stress, we test the addition of an antioxidant, and find that it reduces the size of the slow-growing population. More generally, we find a significantly altered transcriptome in the slow-growing subpopulation that only partially resembles that of cells growing slowly due to environmental and culture conditions. Slow-growing cells upregulate transposons and express more chromosomal, viral and plasmid-borne transcripts, and thus explore a larger genotypic--and so phenotypic--space.
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