Long-Range Optogenetic Control of Axon Guidance Overcomes Developmental Boundaries and Defects

轴突导向的远程光遗传控制克服了发育界限和缺陷

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作者:James M Harris ,Andy Yu-Der Wang ,Jonathan Boulanger-Weill ,Cristina Santoriello ,Stephan Foianini ,Jeff W Lichtman ,Leonard I Zon ,Paola Arlotta

Abstract

Axons connect neurons together, establishing the wiring architecture of neuronal networks. Axonal connectivity is largely built during embryonic development through highly constrained processes of axon guidance, which have been extensively studied. However, the inability to control axon guidance, and thus neuronal network architecture, has limited investigation of how axonal connections influence subsequent development and function of neuronal networks. Here, we use zebrafish motor neurons expressing a photoactivatable Rac1 to co-opt endogenous growth cone guidance machinery to precisely and non-invasively direct axon growth using light. Axons can be guided over large distances, within complex environments of living organisms, overriding competing endogenous signals and redirecting axons across potent repulsive barriers to construct novel circuitry. Notably, genetic axon guidance defects can be rescued, restoring functional connectivity. These data demonstrate that intrinsic growth cone guidance machinery can be co-opted to non-invasively build new connectivity, allowing investigation of neural network dynamics in intact living organisms. Keywords: axon guidance; axons; embryonic development; nerve regeneration; neuronal outgrowth; neurons; optogenetics; rac GTP-binding proteins; tissue engineering; zebrafish.

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