Understanding brain asymmetry: from genes and developmental mechanisms to circuits and behaviour
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AI plain-English summaryThe left and right sides of a zebrafish brain develop differently, and researchers are systematically mapping how that asymmetry arises, how it wires into neural circuits, and what it does to behaviour. This matters because left–right differences are universal across animal nervous systems, yet scientists know almost nothing about how they form, how they are encoded in brain circuits, or what functional roles they play. The team will study the habenula—a brain region that connects emotion and decision-making—in zebrafish, a transparent species that allows direct observation of neural activity. They will use a large-scale CRISPR/Cas9 screen to find new genes controlling asymmetry, focus on a protein called Cachd1 that modulates asymmetric neuron growth, and combine calcium imaging with spatial transcriptomics to compare left- and right-sided neurons at the level of both gene expression and electrical activity. This is fundamental science. There is no immediate clinical or engineering application. But understanding how a brain builds and uses structural asymmetry could eventually illuminate conditions such as schizophrenia or autism, where normal lateralisation is disrupted. Past discoveries in brain asymmetry have already informed treatments for stroke recovery and language disorders.
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