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Amphioxus neurocircuits, enhanced arousal, and the origin of vertebrate consciousness.

Thurston Lacalli

Consciousness and Cognition July 1, 2018 DOI: 10.1016/j.concog.2018.03.006 (opens in new tab) via PubMed

Summary

AI-generated from the abstract

Gene expression studies have identified in amphioxus a brain region homologous to the combined caudal diencephalon and midbrain of vertebrates, areas involved in locomotory control and some forms of primary consciousness. Electron-microscope reconstructions of the larval amphioxus brain show that inputs for light and physical contact converge on the same synaptic zone. This neural circuitry offers a basis for understanding the evolution of locomotory control and arousal in vertebrates. The findings suggest that one early task of midbrain-based consciousness in vertebrates was to distinguish light from physical contact—likely sharp pain—by assigning different qualia to each. Further study of midbrain circuitry may clarify the neural basis of certain sensory experiences.

Study at a glance

Characteristics Review Peer reviewed
Keywords Brain evolution Consciousness Dimes Dien-mesencephalon Enhanced arousal
Key finding The amphioxus larval brain contains a region homologous to the vertebrate caudal diencephalon plus midbrain, where light and physical contact inputs converge, suggesting that distinguishing these stimuli via qualia was an early function of midbrain-based consciousness.

Abstract

Gene expression studies have recently identified the amphioxus homolog of a domain comprising the combined caudal diencephalon plus midbrain, regions implicated in locomotory control and some forms of primary consciousness in vertebrates. The results of EM-level reconstructions of the larval brain of amphioxus, reviewed here, highlight the importance of inputs to this region for light and physical contact, both of which impinge on the same synaptic zone. The neural circuitry provides a starting point for understanding the organization and evolution of locomotory control and arousal in vertebrates, and implies that one of the tasks of midbrain-based consciousness, as it first emerged in vertebrates, would have been to distinguish between light and physical contact, probably sharp pain in the latter case, by assigning different qualia to each. If so, investigating midbrain circuitry more fully could lead to a better understanding of the neural basis of some forms of sensory experience.

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