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R Brent Calder

Publications and source records attributed to R Brent Calder.

2 recordsLinked to original sources

Increased cell-to-cell variation in gene expression in ageing mouse heart.

The accumulation of somatic DNA damage has been implicated as a cause of ageing in metazoa. One possible mechanism by which increased DNA damage could lead to cellular degeneration and death is by stochastic deregulation of gene expression. Here we directly test for increased transcriptional noise in aged tissue by dissociating single cardiomyocytes from fresh heart samples of both young and old mice, followed by global mRNA amplification and quantification of mRNA levels in a panel of housekeeping and heart-specific genes. Although gene expression levels already varied among cardiomyocytes from young heart, this heterogeneity was significantly elevated at old age. We had demonstrated previously an increased load of genome rearrangements and other mutations in the heart of aged mice. To confirm that increased stochasticity of gene expression could be a result of increased genome damage, we treated mouse embryonic fibroblasts in culture with hydrogen peroxide. Such treatment resulted in a significant increase in cell-to-cell variation in gene expression, which was found to parallel the induction and persistence of genome rearrangement mutations at a lacZ reporter locus. These results underscore the stochastic nature of the ageing process, and could provide a mechanism for age-related cellular degeneration and death in tissues of multicellular organisms.

Aging↗

Transcripts of aging.

Recently, it has been demonstrated that similar alterations in gene expression profiles occur in cells from patients with Werner syndrome and from normally aged individuals. Changes involving the genes that are involved in RNA and DNA metabolism were particularly frequent - highlighting the importance of the smooth progression of replication and transcription for maintaining youthful vigor. In this article, we discuss the implications of this work for our understanding of the molecular basis of aging and the increasingly important role of microarrays for unraveling the functional pathways underlying the aging phenotype.

Aging↗