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Rudibaugh, T.

Publications and source records attributed to Rudibaugh, T..

2 recordsLinked to original sources

Reactive Oxygen Species Mediate Transcriptional Responses to Dopamine and Cocaine in Human Cerebral Organoids

Dopamine signaling in the adult ventral forebrain regulates behavior, stress response, and memory formation and in neurodevelopment regulates neural differentiation and cell migration. Excessive dopamine levels including due to cocaine use both in utero and in adults could lead to long-term adverse consequences. The mechanisms underlying both homeostatic and pathological changes remain unclear, partly due to the diverse cellular responses elicited by dopamine and the reliance on animal models that exhibit species- specific differences in dopamine signaling. To address these limitations, 3-D cerebral organoids have emerged as human-derived models, recapitulating salient features of human cell signaling and neurodevelopment. Organoids have demonstrated responsiveness to external stimuli, including substances of abuse, making them valuable investigative models. In this study we utilize the Xiang-Tanaka ventral forebrain organoid model and characterize their response to acute and chronic dopamine or cocaine exposure. The findings revealed a robust immune response, novel response pathways, and a potential critical role for reactive oxygen species (ROS) in the developing ventral forebrain. These results highlight the potential of cerebral organoids as in vitro human models for studying complex biological processes in the brain.

cell biology↗

Single cell assessment of human stem cell derived mesolimbic models and their responses to substances of abuse.

The mesolimbic pathway connects ventral tegmental area dopaminergic neurons and striatal medium spiny neurons, playing a critical role in reward and stress behaviors. Exposure to substances of abuse during development and adulthood has been linked to adverse outcomes and molecular changes. The rise of human cell repositories and whole genome sequences enables human functional genomics in a dish, offering insights into human-specific responses to substances of abuse. Characterizations of in vitro models are necessary to ensure appropriate experimental designs and accurate interpretation of results. This study provides a comprehensive characterization of these models and their responses to substances of abuse, introducing new culture conditions for generating medium spiny neurons and dopaminergic neurons from human pluripotent stem cells. Single cell analysis reveals cell type-specific transcriptomic responses to dopamine, cocaine, and morphine, including compound and cell type-specific transcriptomic signatures related to neuroinflammation and alterations in signaling pathways. These findings offer a resource for future genomics studies leveraging human stem cell-derived models. TeaserGeneration and characterization of a novel mesolimbic pathway model and its response to acute dopamine, morphine, and cocaine.

cell biology↗