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Biology subjects

Hermant, L.

Publications and source records attributed to Hermant, L..

2 recordsLinked to original sources

Prenatal Polysubstance Exposure Alters Behaviour in Zebrafish Larvae

Substance use during pregnancy has been linked to various adverse outcomes in infants, including congenital disabilities, neurodevelopmental delays, and long-term effects such as learning difficulties. An additional concern is that newborns are often exposed to multiple substances in utero. The biological consequences of such exposure remain largely unknown. Zebrafish offer an exciting alternative to fill this gap and deepen our understanding of the biological impact of prenatal multidrug exposure. We utilized zebrafishs scalability to expose embryos to some of the most commonly used substances: nicotine, alcohol, opioids, and all their possible combinations. After embryonic drug exposure, we conducted a detailed behavioural analysis across three developmental stages. Our results revealed drug-specific outcomes, including both synergistic and antagonistic effects. Furthermore, we identified distinctive effects across development, highlighting potential developmental shifts and individual differences in resilience. Overall, these findings demonstrate that prenatal polydrug exposure results in complex, stage-dependent effects, sometimes antagonistic, which cannot be predicted from single-drug outcomes. Our study emphasizes the value of zebrafish as a model for investigating polydrug interactions and provides a framework for exploring biomarkers of vulnerability and resilience in offspring.

neuroscience↗

Pheno-morphological screening and acoustic sorting of 3D multicellular aggregates using drop millifluidics

Three-dimensional multicellular aggregates like organoids and spheroids have become essential tools to study the biological mechanisms involved in the progression of diseases. In cancer research, they are now widely used as in vitro models for drug testing. However, their analysis still relies on tedious manual procedures, which hinders their routine use in large-scale biological assays. Here, we introduce a novel drop millifluidic approach to screen and sort large populations containing over one thousand multicellular aggregates. Our system utilizes real-time image processing to detect pheno-morphological traits in cellular aggregates. They are then encapsulated in millimetric drops, actuated on-demand using the acoustic radiation force. We demonstrate the performance of our system by sorting spheroids with uniform sizes from a heterogeneous population, and by isolating organoids from spheroids with different phenotypes. We anticipate that this work offers the potential to standardize drug testing on multicellular aggregates, which promises accelerated progress in biomedical research.

bioengineering↗