Inter-organ regulation by the brain in Drosophila development and physiology.

IF 1.8 4区 医学 Q3 GENETICS & HEREDITY Journal of neurogenetics Pub Date : 2023-03-01 DOI:10.1080/01677063.2022.2137162
Sunggyu Yoon, Mingyu Shin, Jiwon Shim
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引用次数: 1

Abstract

The brain plays an essential role in regulating physiological homeostasis by communicating with other organs. Neuronal cells either directly innervate target tissues and transmit signals or secrete systemic factors into the hemolymph to regulate bodily functions, including physiology, development, metabolism, and immunity. In this review, we discuss the systemic functions of inter-organ communication mediated by the brain in four distinct categories: (1) nutrient sensing and feeding, (2) gastrointestinal activity and metabolism, (3) development and metamorphosis, and (4) immunity and hematopoiesis. First, we describe how chemosensory signals are sensed and transmitted to the brain in Drosophila and how the brain stimulates or modifies feeding behavior. Second, we summarize the brain-organ axis that regulates appetite activities and neuroendocrine pathways that maintain metabolic homeostasis. Third, we discuss how overall development in Drosophila is achieved by insulin and how it affects ecdysone signaling to initiate pupariation. Finally, we discuss how the central or peripheral nervous system controls hematopoiesis and innate immunity in Drosophila larvae. Given the functional parallels between Drosophila and humans, homologous pathways are likely to be conserved in human development and disease models, and the fly model system will continue to provide mechanistic insights into understanding complex interactions.

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果蝇发育和生理中大脑的器官间调节。
大脑通过与其他器官的交流在调节生理稳态中起着至关重要的作用。神经细胞可以直接支配目标组织并传递信号,也可以向血淋巴分泌系统因子来调节身体机能,包括生理、发育、代谢和免疫。在这篇综述中,我们从四个不同的方面讨论了由大脑介导的器官间通讯的系统功能:(1)营养感知和摄食,(2)胃肠活动和代谢,(3)发育和变态,(4)免疫和造血。首先,我们描述了化学感觉信号在果蝇中是如何被感知并传递到大脑的,以及大脑是如何刺激或改变摄食行为的。其次,我们总结了调节食欲活动的脑器官轴和维持代谢稳态的神经内分泌途径。第三,我们讨论了果蝇的整体发育是如何通过胰岛素实现的,以及胰岛素如何影响蜕皮激素信号来启动蛹期。最后,我们讨论了中枢或周围神经系统如何控制果蝇幼虫的造血和先天免疫。鉴于果蝇和人类在功能上的相似之处,同源通路可能在人类发育和疾病模型中是保守的,而果蝇模型系统将继续为理解复杂的相互作用提供机制上的见解。
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来源期刊
Journal of neurogenetics
Journal of neurogenetics 医学-神经科学
CiteScore
4.40
自引率
0.00%
发文量
13
审稿时长
>12 weeks
期刊介绍: The Journal is appropriate for papers on behavioral, biochemical, or cellular aspects of neural function, plasticity, aging or disease. In addition to analyses in the traditional genetic-model organisms, C. elegans, Drosophila, mouse and the zebrafish, the Journal encourages submission of neurogenetic investigations performed in organisms not easily amenable to experimental genetics. Such investigations might, for instance, describe behavioral differences deriving from genetic variation within a species, or report human disease studies that provide exceptional insights into biological mechanisms
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