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Biology subjects

Millner, T. O.

Publications and source records attributed to Millner, T. O..

2 recordsLinked to original sources

The invasion phenotypes of glioblastoma depend on plastic and reprogrammable cell states

Glioblastoma (GBM), the most common primary brain cancer in adults, is characterized by rapid local invasion along diverse routes, such as infiltration of white matter tracts and penetration of perivascular spaces. We investigate the hypothesis that GBM invasion routes correlate with the transcriptional states of individual cells and identify regulators of route-specific invasion. Utilizing patient-derived GBM xenograft models, we integrate single-cell transcriptomics and spatial proteomics, revealing that mesenchymal and oligodendrocyte progenitor-like GBM cells migrate perivascularly, while neural progenitor and astrocyte-like GBM cells invade diffusely. Computational reconstruction identifies ANXA1 as a perivascular invasion driver and lineage-restricted transcription factors RFX4 and HOPX as drivers of diffuse invasion, predictive of patient survival. Genetic ablation of these genes alters invasion phenotypes and extends survival in xenografted mice, clarifying the role of cell states in GBM invasion, and highlighting potential therapeutic targets for selective invasion route targeting in GBM patients.

cancer biology↗

The inflammatory micro-environment induced by targeted CNS radiotherapy is underpinned by disruption of DNA methylation

Although targeted radiotherapy (RT) is integral to the increasing survival of cancer patients, it has significant side-effects, the cellular and molecular mechanisms of which are not fully understood. During RT epigenetic changes occur in neoplastic tissue, but few studies have assessed these in non-neoplastic tissue and results are highly variable. Using bulk DNA methylation and RNA sequencing as well as spatial transcriptomics (ST) in a unique cohort of patient tissue samples, we show distinct differences in DNA methylation patterns in irradiated brain tissue, whilst ST characterisation identifies specific micro-environmental niches present after irradiation and highlights neuropeptides that could be propagating neuroinflammation. We also show that in a cerebral organoid (CO) model of early changes in neurons after irradiation there are similar DNA methylation alterations and disruption of the DNA methylation machinery, suggesting that early but persistent epigenetic dysregulation plays a role in neurotoxicity. We provide a link between radiotherapy induced neuroinflammation and disruption of DNA methylation for the first time and suggest possible driving mechanisms for this chronic neuroinflammation.

neuroscience↗