The asymmetric brain: from genes to circuits and behaviour.
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AI plain-English summaryThe left and right halves of a zebrafish brain do not develop identically, and researchers are watching that asymmetry emerge cell by cell to understand how it happens in all vertebrates. This matters because brain asymmetry—where structures on the left and right differ in size, shape, or wiring—is essential for efficient cognition, yet the mechanisms that create it remain poorly understood. When asymmetry goes wrong, it is linked to conditions such as schizophrenia and autism spectrum disorders. The team uses larval zebrafish, whose transparent bodies allow direct observation of developing neurons, to tackle four questions: how symmetry is first broken, how different asymmetries align with each other, what circuits the asymmetric neurons join, and how those circuits drive behaviour. This is fundamental science with no immediate clinical application. But understanding how the brain builds its left–right differences at the genetic and cellular level could eventually reveal why those processes fail in neurodevelopmental disorders. Past work on asymmetry in fish has already uncovered signalling pathways—such as Nodal and Fgf—that operate in human brains too, making this a plausible route toward identifying targets for future therapies.
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