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Marshall, D. A.

Publications and source records attributed to Marshall, D. A..

2 recordsLinked to original sources

Cannabidiol (CBD) Promotes Post-TBI Astrocyte Viability and Decreases Injury-Induced Glial Stress Responses Across Zebra Finch Song Control Nuclei

The non-euphorigenic phytocannabinoid cannabidiol (CBD) has demonstrated therapeutic efficacy in childhood-onset epilepsies. Using a songbird preclinical model we have found that CBD promotes recovery of learned vocalizations following focal motor cortical injury. But questions about cellular mechanisms supporting this protection remained. Songbird vocal learning, like human speech, depends on development and maintenance of specialized neural circuits. Partial lesioning (microlesions) of the vocal pre-motor cortical-like song region HVC transiently disrupts song structure and triggers injury-associated cellular stress responses across interconnected song regions. Building on prior findings that CBD reduces neuroinflammation and synaptic loss in zebra finch song circuitry, we investigated potential astrocyte contributions. Here we report that HVC microlesions induce significant cell loss in HVC and its projection targets (vocal motor RA and striatal Area X), with a substantial fraction of apoptotic cells being astrocytes. CBD treatment reduces lesion-induced apoptosis and preserves astrocyte populations, indicating enhanced astrocyte viability as a major factor in CBD-mediated neuroprotection. Microlesions also elevate astrocyte stress, including increased lysosomal burden (LAMP1/LC3 expression) and astrocytic reactivity markers (C3, S100A10, aromatase). CBD attenuates these stress responses while enhancing neuroprotective metabolic and antioxidant mediators (glutamine synthetase [GS], glutamate-cysteine ligase modifier subunit [GCLM]), consistent with improved antioxidant and excitotoxicity resistance. Given that development-dependent sensorimotor skills (e.g. song in songbirds, language and many others in humans) depend on sensitive period establishment and ongoing post-learning maintenance of specialized neural circuits vulnerable to traumatic disruption, the zebra finch model provides a valuable preclinical platform for investigating glial-targeted interventions to promote circuit resilience and functional recovery after TBI.

pharmacology and toxicology↗

Ultra-deep duplex sequencing reveals unique features of somatic evolution in the normal tissues of a family with Li-Fraumeni syndrome

Li-Fraumeni Syndrome (LFS) is caused by germline pathogenic variants in TP53 which predispose carriers to early onset cancer across multiple tissues. While genomically profiling those cancers has revealed factors contributing to their formation, little is understood about how LFS impacts clonal evolution in healthy tissues preceding cancer. Here, we use ultra-deep duplex sequencing (mean [~]15,000x depth) to investigate somatic mutation and selection in a family carrying the germline TP53 p.R181H pathogenic variant and a cohort of non-carrier controls. In blood samples, the germline variant is associated with more mutations in a panel designed to capture genomewide mutagenesis, and with reduced positive selection on somatic TP53 mutations, despite confounding by chemotherapy treatment in one individual. DNMT3A and TET2 mutations appear positively selected and GATA2 mutations negatively selected across the cohort, independent of the p.R181H status. Extensive multi-tissue sampling of 22 non-cancerous and 6 cancerous samples was also performed at autopsy in one individual with LFS who succumbed to esophageal cancer. Cross-tissue analysis reveals excess mutations in sun-exposed skin, esophagus and chronically-inflamed stomach tissue, and concordant mutations in the p.R248 hotspot of TP53 across most (18/28) tissue samples. Most somatic TP53 mutations in LFS that can be assessed for phase arose on the chromosomal copy lacking the p.R181H variant. Our study reveals how the germline p.R181H variant reshapes baseline somatic mutation and selection in normal tissues and highlights the importance of understanding early somatic evolution in LFS prior to cancer development and treatment.

cancer biology↗