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Coffinas, E.

Publications and source records attributed to Coffinas, E..

2 recordsLinked to original sources

In vivo discovery of blood-brain barrier opening small molecules with FishNAP

The blood-brain barrier (BBB) is crucial for neural homeostasis, tightly regulating molecular exchange between the circulation and brain. However, this selective protection also greatly limits drug delivery to the central nervous system, posing a major challenge for treating neurological disorders. Pharmacological strategies that transiently and safely increase BBB permeability could therefore transform brain drug delivery, yet systematic discovery of such modulators remains hampered by the limitations of current in vitro and in vivo approaches. Here we present FishNAP, a non-invasive, high-throughput zebrafish platform for real-time assessment of BBB permeability in vivo. FishNAP captures developmental changes in barrier function and detects dysfunction in genetic mutants. Using this platform, we screened 2,320 FDA-approved small molecules for compounds capable of opening an intact BBB and identified 11 that reproducibly increased permeability. Seven of these allowed entry of a 1 kDa tracer into brain tissue, and five also permitted passage of a larger 10 kDa Dextran. Barrier integrity recovered within 24 hours for all seven compounds, indicating reversible modulation. Finally, testing three representative molecules (Calcitriol, Lovastatin, and Sunitinib) in adult mice revealed increased BBB permeability and reduced Claudin-5 expression, demonstrating conserved mechanisms of BBB-regulation across vertebrates. FishNAP thus enables systematic discovery of BBB modulators with direct translational potential for brain drug delivery.

neuroscience↗

Planarian behavioral screening is a useful invertebrate model for evaluating seizurogenic chemicals

Detecting adverse health effects of drugs and other chemicals early during chemical/drug development saves significant time and resources. Freshwater planarians are an emerging invertebrate model for rapid, cost-effective neurotoxicity screening. Because planarians exhibit seizure-like behavior when exposed to chemicals that cause seizures in mammals, such as N-methyl-D-aspartate (NMDA) and picrotoxin, they could be a useful first-tier model for seizure screening and thus reduce the need for slow and expensive mammalian tests. However, planarian seizure studies to date have been low-throughput and lacking the necessary standardization and automated analysis to make this model a viable screening solution. Here, we present results from medium-throughput behavioral testing conducted in 48-well plates using two popular models for planarian pharmacological and toxicological studies: Dugesia japonica and Girardia dorotocephala. Planarian behavior was scored using automated image analysis, measuring both translational behavior and body shape changes. We found that known seizurogenic compounds in mammals (NMDA, nicotine, picrotoxin, pilocarpine, and pentylenetetrazole (PTZ)) induced seizure-like behavior in both planarian species within 30 minutes of exposure. We also tested three pesticides (parathion, carbaryl, and permethrin). Parathion and carbaryl, but not permethrin, caused planarian seizure-like activity. While the planarian species responded similarly to most compounds, some compounds showed potency differences of 10-100-fold (pilocarpine and nicotine, respectively). G. dorotocephala planarians were generally more sensitive, but D. japonica planarians displayed more reproducible behaviors. By standardizing both experimental approach and analysis methods and making them available, this work can serve as a framework for future testing of chemicals for seizurogenic potential in planarians.

pharmacology and toxicology↗