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Updated: Jun 20, 2026

Primary Neuronal Cultures from the Brains of Late Stage Drosophila Pupae
Published on: May 28, 2007
Genetic Network Shaping Kenyon Cell Identity and Function in Drosophila Mushroom Bodies
Pei-Chi Chung1, Kai-Yuan Ku1, Sao-Yu Chu1
1Institute of Cellular and Organismic Biology, Academia Sinica, Taipei, Taiwan.
None:
Revealing the molecular mechanisms underlying neuronal specification and acquisition of specific functions is key to understanding how the nervous system is constructed. In the Drosophila brain, Kenyon cells (KCs) are sequentially generated to assemble the backbone of the mushroom body (MB). Broad-complex, tramtrack and bric-ȧ-brac zinc finger transcription factors (BTBzf TFs) specify early-born KCs, whereas the essential TFs for specifying late-born KCs remain unidentified. Here, we report that Pipsqueak domain-containing TF Eip93F promotes the identity of late-born KCs by reciprocally regulating gene expression in KC subtypes. Moreover, Eip93F not only regulates the expression of calcium channel Ca-α1T in late-born KCs to functionally control animal behavior, but it also forms a genetic network with BTBzf TFs to specify the identities of KC subtypes. Our study provides crucial information linking KC subtype diversification to unique function acquisition in the adult MB.
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