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Bogar, A. R.

Publications and source records attributed to Bogar, A. R..

2 recordsLinked to original sources

Progressive suppression of DNA repair genes with persistent p53 activation in Doxorubicin-treated cardiomyocytes

Doxorubicin (DOX) is an effective anti-cancer drug; however it can cause cardiotoxicity by inducing DNA double-strand breaks in cardiomyocytes. Cardiotoxicity can manifest immediately or years following treatment. Most human in vitro models of DOX-induced cardiotoxicity (DIC) focus on the acute effects of DOX treatment. To understand the long-term effects, we profiled the global gene expression response to DOX exposure over time. We treated iPSC-derived cardiomyocytes from six individuals with DOX for 24 hours and assayed responses after 0, 24 and 144 hours of recovery. DNA damage, determined by {gamma}H2AX expression, is induced following DOX treatment and is resolved by the final recovery timepoint. We identified both acute and chronic gene expression response signatures. The chronic signature, representing 501 genes, is enriched for p53 target genes and DNA damage response genes compared to acute response genes. P53 target genes are persistently activated, and DNA damage response genes are progressively downregulated over time. Our results suggest an altered cell state following repair of double-strand breaks that is distinct from pre-exposed cells. DOX response genes with persistent changes in expression can be applied to the design of toxicity biomarkers or therapeutic targets.

genomics↗

Topoisomerase II inhibitors CX-5461 and Doxorubicin differ in their cardiotoxicity profiles

CX-5461 (CX) is a chemotherapeutic drug currently under investigation for the treatment of late-stage cancers. While CX was first described as an RNA polymerase I inhibitor, it has recently been shown to primarily inhibit the beta isoform of topoisomerase II. This isoform is also inhibited by anthracycline drugs including Doxorubicin (DOX) and mediates the toxic effects of these drugs on the heart. It is unclear whether CX will similarly cause cardiotoxicity. We therefore designed a study to test the effects of CX compared to DOX on iPSC-derived cardiomyocytes from six individuals. While both CX and DOX induce cell death in cardiomyocytes, CX is 20-fold less cytotoxic than DOX. At sub-lethal doses, DOX induces DNA damage, while CX does not. Transcriptome profiling following treatment with two sub-micromolar concentrations of both drugs over time reveals that DOX induces thousands of gene expression changes compared to hundreds induced by CX. Comparison of gene expression trajectories across drugs reveals that genes that respond to CX also respond to DOX, while most DOX response genes are drug specific. Shared response genes correspond to pathways related to chromosome segregation and DNA replication. CX does not affect the expression of any of the genes in functionally-validated loci associated with DOX-induced cardiotoxicity. Our data demonstrate that CX treatment of cardiomyocytes induces gene expression changes that mirror a subset of those induced by DOX; however these changes do not coincide with the cardiotoxicity observed with DOX treatment.

genomics↗