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Giles, K. A.

Publications and source records attributed to Giles, K. A..

3 recordsLinked to original sources

Three-dimensional chromatin organisation shapes origin activation and replication fork directionality

Faithful DNA replication requires the orderly firing of replication origins across the genome. At present, we lack details around how origins are selected for activation and the subsequent impact of this on replication dynamics. Here, we have investigated how chromatin organisation contributes to replication initiation and dynamics by intersecting ChIP-seq, Hi-C, Repli-seq, and OK-seq data from primary and tumour cells lines. We found replication initiation is significantly enriched at TAD boundaries, co-localizing with CTCF and cohesin in early and mid S-phase. Strong replication fork directionality (RFD) from initiation zones in TAD boundaries could occur in a bi- or uni-directional manner, which highly correlated with replication timing. While TAD boundaries were largely invariant, a minority of initiation zones were shared across cell lines, indicative of cell type specific regulation. These data are consistent with chromatin structure organizing replication initiation and dynamics, ensuring orderly completion of replication from TAD boundaries into TAD internal regions.

bioinformatics↗

H3K4me3 enrichment defines neuronal age, while a youthful H3K27ac signature is recapitulated in aged neurons

Neurons live for the lifespan of the individual and underlie our ability for lifelong learning and memory. However, aging alters neuron morphology and function resulting in age-related cognitive decline. It is well established that epigenetic alterations are essential for learning and memory, yet few neuron-specific genome-wide epigenetic maps exist into old age. Comprehensive mapping of H3K4me3 and H3K27ac in mouse neurons across lifespan revealed plastic H3K4me3 marking that differentiates neuronal age linked to known characteristics of cellular and neuronal aging. We determined that neurons in old age recapitulate the H3K27ac enrichment at promoters, enhancers and super enhancers from young adult neurons, likely representing a re-activation of pathways to maintain neuronal output. Finally, this study identified new characteristics of neuronal aging, including altered rDNA regulation and epigenetic regulatory mechanisms. Collectively, these findings indicate a key role for epigenetic regulation in neurons, that is inextricably linked with aging.

molecular biology↗

BRG1 promotes transcriptional patterns that are permissive to proliferation in cancer cells

BackgroundBRG1 (encoded by SMARCA4) is a catalytic component of the SWI/SNF chromatin remodelling complex, with key roles in modulating DNA accessibility. Dysregulation of BRG1 is observed, but functionally uncharacterised, in a wide range of malignancies. We have probed the functions of BRG1 on a background of prostate cancer to investigate how BRG1 controls gene expression programs and cancer cell behaviour. ResultsOur investigation of SMARCA4 revealed that BRG1 is universally overexpressed in 486 tumours from The Cancer Genome Atlas prostate cohort, as well as in a complementary panel of 21 prostate cell lines. Next, we utilised a temporal model of BRG1 depletion to investigate the molecular effects on global transcription programs. Unexpectedly, depleting BRG1 had no impact on alternative splicing and conferred only modest effect on global expression. However, of the transcriptional changes that occurred, most manifested as down-regulated expression. Deeper examination found the common thread linking down-regulated genes was involvement in proliferation, including several known to increase prostate cancer proliferation (KLK2, PCAT1 and VAV3). Interestingly, the promoters of genes driving proliferation were bound by BRG1 as well as the oncogenic transcription factors, AR and FOXA1. We also noted that BRG1 depletion repressed genes involved in cell cycle progression and DNA replication but intriguingly, these pathways operated independently of AR and FOXA1. In agreement with transcriptional changes, depleting BRG1 conferred G1 arrest. ConclusionsOur data have revealed that BRG1 has capacity to drive oncogenesis by coordinating oncogenic pathways dependent on BRG1 for proliferation, cell cycle progression and DNA replication.

molecular biology↗