Species-Specific Mechanisms of Neuron Subtype Specification Reveal Evolutionary Plasticity of Amniote Brain Development

Highly ordered brain architectures in vertebrates consist of multiple neuron subtypes with specific neuronal connections. However, the origin of and evolutionary changes in neuron specification mechanisms remain unclear. Here, we report that regulatory mechanisms of neuron subtype specification are...

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Veröffentlicht in:Cell reports (Cambridge) 2018-03, Vol.22 (12), p.3142-3151
Hauptverfasser: Nomura, Tadashi, Yamashita, Wataru, Gotoh, Hitoshi, Ono, Katsuhiko
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Sprache:eng
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Zusammenfassung:Highly ordered brain architectures in vertebrates consist of multiple neuron subtypes with specific neuronal connections. However, the origin of and evolutionary changes in neuron specification mechanisms remain unclear. Here, we report that regulatory mechanisms of neuron subtype specification are divergent in developing amniote brains. In the mammalian neocortex, the transcription factors (TFs) Ctip2 and Satb2 are differentially expressed in layer-specific neurons. In contrast, these TFs are co-localized in reptilian and avian dorsal pallial neurons. Multi-potential progenitors that produce distinct neuronal subtypes commonly exist in the reptilian and avian dorsal pallium, whereas a cis-regulatory element of avian Ctip2 exhibits attenuated transcription suppressive activity. Furthermore, the neuronal subtypes distinguished by these TFs are not tightly associated with conserved neuronal connections among amniotes. Our findings reveal the evolutionary plasticity of regulatory gene functions that contribute to species differences in neuronal heterogeneity and connectivity in developing amniote brains. [Display omitted] •Ctip2 and Satb2 are co-localized in reptilian and avian dorsal pallial neurons•Multi-potential progenitors exist in the reptilian and avian dorsal pallium•The cis element of avian Ctip2 shows attenuated transcription suppressive activity•Species-specific neural connections suggest functional plasticity of regulatory genes Neuronal heterogeneity is essential for assembling intricate neuronal circuits. Nomura et al. find that species-specific transcriptional mechanisms underlie diversities of excitatory neuron subtypes in mammalian and non-mammalian brains. Species differences in neuronal subtypes and connections suggest functional plasticity of regulatory genes for neuronal specification during amniote brain evolution.
ISSN:2211-1247
2211-1247
DOI:10.1016/j.celrep.2018.02.086