Abstract
Left–right (LR) asymmetry is a conserved characteristic of the brain in various animals and is related to its higher-order functions. The Drosophila brain has an LR asymmetric structure known as an asymmetrical body (AB). LR asymmetric neurite remodeling lateralizes the AB, and ecdysone signaling determines LR specificity. However, the mechanisms underlying LR specificity remain unclear. We found that the Slit/Dreadlocks/Roundabout/p21-activated kinase (Pak) signaling axis determines the LR polarity of the AB downstream of ecdysone signaling in the type II neuroblast lineage before LR asymmetric neurite remodeling. In Drosophila , the intrinsic chirality of cells (cell chirality) defines the LR asymmetry of various non-neuronal organs. We suggested that neurons derived from type II neuroblasts exhibit cell chirality, which is established through Pak and ecdysone signaling and determines the LR polarity of the AB. As cell chirality is broadly observed in eukaryotes, our study reveals a novel mechanism underlying LR asymmetry of the brain.
Full text
1,139 characters
· extracted from
oa-doi-fallback
· click to expand
Abstract
Left–right (LR) asymmetry is a conserved characteristic of the brain in various animals and is related to its higher-order functions. The Drosophila brain has an LR asymmetric structure known as an asymmetrical body (AB). LR asymmetric neurite remodeling lateralizes the AB, and ecdysone signaling determines LR specificity. However, the mechanisms underlying LR specificity remain unclear. We found that the Slit/Dreadlocks/Roundabout/p21-activated kinase (Pak) signaling axis determines the LR polarity of the AB downstream of ecdysone signaling in the type II neuroblast lineage before LR asymmetric neurite remodeling. In Drosophila, the intrinsic chirality of cells (cell chirality) defines the LR asymmetry of various non-neuronal organs. We suggested that neurons derived from type II neuroblasts exhibit cell chirality, which is established through Pak and ecdysone signaling and determines the LR polarity of the AB. As cell chirality is broadly observed in eukaryotes, our study reveals a novel mechanism underlying LR asymmetry of the brain.
Competing Interest Statement
The authors have declared no competing interest.
Text is read by the "Ask this paper" AI Q&A widget below.
Extraction quality varies by source — PMC NXML preserves structure
cleanly, OA-HTML may include some navigation residue, and OA-PDF can
have broken hyphenation. The publisher copy
(via DOI)
is the canonical version.