生物
转录因子
神经科学
电池类型
黑腹果蝇
大脑
抄写(语言学)
细胞命运测定
生物神经网络
脊椎动物
神经网络
遗传学
前脑
计算生物学
集合(抽象数据类型)
连接体
转录调控
发育生物学
增强子
核心
神经元回路
表型
神经干细胞
黑腹菌
进化生物学
细胞分化
解剖
干细胞
神经元
中脑
作者
Najia A Elkahlah,Yunzhi Lin,Yijie Pan,Joseph A. Carter,Troy R. Shirangi,E. Josephine Clowney
出处
期刊:Nature
[Nature Portfolio]
日期:2026-05-27
标识
DOI:10.1038/s41586-026-10526-3
摘要
Brain regions that regulate motivated behaviours, including the vertebrate hypothalamus and arthropod cerebrum, house bespoke neural circuits dedicated to perceptual and internal regulation of many behavioural states1,2. These circuits are built to purpose from complex sets of cell types whose patterning has been challenging to elucidate. Here we developed methods in Drosophila melanogaster to embed well-studied neurons that regulate mating in the transcriptional contexts of the neuronal lineages that generate them3–5. By comparing transcription within and between lineages, we identified a large set of transcription factors expressed in complex combinations that delineate cerebral hemilineages—classes of postmitotic neurons born from the same stem cell and sharing Notch status6,7. Hemilineages comprise the major anatomic classes in the cerebrum8–10 and these transcription factors are required to generate their gross features. We show that subtypes of the same hemilineage can provide a common computational module to circuits regulating different drives, and identify an orthogonal set of transcription factors that stratify hemilineage subtypes of differing birth order. Our findings suggest that distinct sets of transcription factors operate in a hierarchical system to build, diversify and sexually differentiate lineally related neurons that compose motivated behaviour circuits. By linking developmental patterning to separable transcriptional axes that produce gross versus fine aspects of information flow, we provide a logical framework for cerebral control of diverse drives. Researchers mapped how transcription factors define neuron lineages in fruit fly brains, revealing hierarchical genetic programs that shape and specialize circuits controlling motivated behaviours such as mating.
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