1.Advances in molecular mechanisms and neuronal circuits underlying circadian rhythms in Drosophila.
Wu-Yan XU ; Chun-Xue QIAO ; Fei-Xiang LI ; Ding-Bang MA
Acta Physiologica Sinica 2025;77(4):627-640
Circadian rhythms are core regulatory mechanisms that evolved to align biological functions with the Earth's rotation. These rhythms are conserved across organisms from unicellular life to multicellular species and play essential roles in metabolism, immune responses, and sleep-wake cycle. Circadian disruptions are strongly associated with various diseases. Over the past decades, genetic studies in Drosophila and mice have identified key conserved clock genes and uncovered transcription-translation feedback loops governing circadian regulation. Additionally, rhythmic neurons in the brain integrate complex neural circuits to precisely regulate physiological and behavioral rhythms. This review highlights recent advances in understanding the neuronal circuit mechanisms of rhythmic neurons in the Drosophila brain and discusses future directions for translating circadian rhythm research into chronomedicine and precision therapies.
Animals
;
Circadian Rhythm/genetics*
;
Neurons/physiology*
;
Drosophila/physiology*
;
Brain/physiology*
;
Nerve Net/physiology*
2.The Glutamate-gated Chloride Channel Facilitates Sleep by Enhancing the Excitability of Two Pairs of Neurons in the Ventral Nerve Cord of Drosophila.
Yaqian FAN ; Yao TIAN ; Junhai HAN
Neuroscience Bulletin 2025;41(10):1729-1742
Sleep, an essential and evolutionarily conserved behavior, is regulated by numerous neurotransmitter systems. In mammals, glutamate serves as the wake-promoting signaling agent, whereas in Drosophila, it functions as the sleep-promoting signal. However, the precise molecular and cellular mechanisms through which glutamate promotes sleep remain elusive. Our study reveals that disruption of glutamate signaling significantly diminishes nocturnal sleep, and a neural cell-specific knockdown of the glutamate-gated chloride channel (GluClα) markedly reduces nocturnal sleep. We identified two pairs of neurons in the ventral nerve cord (VNC) that receive glutamate signaling input, and the GluClα derived from these neurons is crucial for sleep promotion. Furthermore, we demonstrated that GluClα mediates the glutamate-gated inhibitory input to these VNC neurons, thereby promoting sleep. Our findings elucidate that GluClα enhances nocturnal sleep by mediating the glutamate-gated inhibitory input to two pairs of VNC neurons, providing insights into the mechanism of sleep promotion in Drosophila.
Animals
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Sleep/physiology*
;
Neurons/metabolism*
;
Chloride Channels/genetics*
;
Drosophila Proteins/genetics*
;
Drosophila
;
Glutamic Acid/metabolism*
;
Animals, Genetically Modified
3.A Neural Circuit Controlling Virgin Female Aggression Induced by Mating-related Cues in Drosophila.
Xiaolu WAN ; Peng SHEN ; Kai SHI ; Jing LI ; Fengming WU ; Chuan ZHOU
Neuroscience Bulletin 2023;39(9):1396-1410
Females increase aggression for mating opportunities and for acquiring reproductive resources. Although the close relationship between female aggression and mating status is widely appreciated, whether and how female aggression is regulated by mating-related cues remains poorly understood. Here we report an interesting observation that Drosophila virgin females initiate high-frequency attacks toward mated females. We identify 11-cis-vaccenyl acetate (cVA), a male-derived pheromone transferred to females during mating, which promotes virgin female aggression. We subsequently reveal a cVA-responsive neural circuit consisting of four orders of neurons, including Or67d, DA1, aSP-g, and pC1 neurons, that mediate cVA-induced virgin female aggression. We also determine that aSP-g neurons release acetylcholine (ACh) to excite pC1 neurons via the nicotinic ACh receptor nAChRα7. Together, beyond revealing cVA as a mating-related inducer of virgin female aggression, our results identify a neural circuit linking the chemosensory perception of mating-related cues to aggressive behavior in Drosophila females.
Animals
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Male
;
Female
;
Drosophila/physiology*
;
Drosophila Proteins/physiology*
;
Cues
;
Sexual Behavior, Animal/physiology*
;
Aggression/physiology*
;
Drosophila melanogaster/physiology*
4.Resveratrol and Sir2 Reverse Sleep and Memory Defects Induced by Amyloid Precursor Protein.
Yuping HAO ; Lingzhan SHAO ; Jianan HOU ; Yan ZHANG ; Yuqian MA ; Jinhao LIU ; Chuan XU ; Fujun CHEN ; Li-Hui CAO ; Yong PING
Neuroscience Bulletin 2023;39(7):1117-1130
Resveratrol (RES), a natural polyphenolic phytochemical, has been suggested as a putative anti-aging molecule for the prevention and treatment of Alzheimer's disease (AD) by the activation of sirtuin 1 (Sirt1/Sir2). In this study, we tested the effects of RES and Sirt1/Sir2 on sleep and courtship memory in a Drosophila model by overexpression of amyloid precursor protein (APP), whose duplications and mutations cause familial AD. We found a mild but significant transcriptional increase of Drosophila Sir2 (dSir2) by RES supplementation for up to 17 days in APP flies, but not for 7 days. RES and dSir2 almost completely reversed the sleep and memory deficits in APP flies. We further demonstrated that dSir2 acts as a sleep promotor in Drosophila neurons. Interestingly, RES increased sleep in the absence of dSir2 in dSir2-null mutants, and RES further enhanced sleep when dSir2 was either overexpressed or knocked down in APP flies. Finally, we showed that Aβ aggregates in APP flies were reduced by RES and dSir2, probably via inhibiting Drosophila β-secretase (dBACE). Our data suggest that RES rescues the APP-induced behavioral deficits and Aβ burden largely, but not exclusively, via dSir2.
Animals
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Alzheimer Disease/metabolism*
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Amyloid beta-Peptides
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Amyloid beta-Protein Precursor/metabolism*
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Drosophila/physiology*
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Drosophila Proteins/metabolism*
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Resveratrol/pharmacology*
;
Sirtuin 1
;
Sleep
5.Neural Control of Action Selection Among Innate Behaviors.
Neuroscience Bulletin 2022;38(12):1541-1558
Nervous systems must not only generate specific adaptive behaviors, such as reproduction, aggression, feeding, and sleep, but also select a single behavior for execution at any given time, depending on both internal states and external environmental conditions. Despite their tremendous biological importance, the neural mechanisms of action selection remain poorly understood. In the past decade, studies in the model animal Drosophila melanogaster have demonstrated valuable neural mechanisms underlying action selection of innate behaviors. In this review, we summarize circuit mechanisms with a particular focus on a small number of sexually dimorphic neurons in controlling action selection among sex, fight, feeding, and sleep behaviors in both sexes of flies. We also discuss potentially conserved circuit configurations and neuromodulation of action selection in both the fly and mouse models, aiming to provide insights into action selection and the sexually dimorphic prioritization of innate behaviors.
Animals
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Mice
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Male
;
Female
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Drosophila melanogaster/physiology*
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Sexual Behavior, Animal/physiology*
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Instinct
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Neurons/physiology*
;
Aggression/physiology*
6.Serotonin Signaling Modulates Sexual Receptivity of Virgin Female Drosophila.
Baoxu MA ; Rencong WANG ; Yaohua LIU ; Bowen DENG ; Tao WANG ; Fengming WU ; Chuan ZHOU
Neuroscience Bulletin 2022;38(11):1277-1291
The choice of females to accept or reject male courtship is a critical decision for animal reproduction. Serotonin (5-hydroxytryptamine; 5-HT) has been found to regulate sexual behavior in many species, but it is unclear how 5-HT and its receptors function to regulate different aspects of sexual behavior. Here we used Drosophila melanogaster as the model animal to investigate how 5-HT and its receptors modulate female sexual receptivity. We found that knockout of tryptophan hydroxylase (Trh), which is involved in the biosynthesis of 5-HT, severely reduced virgin female receptivity without affecting post-mating behaviors. We identified a subset of sexually dimorphic Trh neurons that co-expressed fruitless (fru), in which the activity was correlated with sexual receptivity in females. We also found that 5-HT1A and 5-HT7 receptors regulate virgin female receptivity. Our findings demonstrate how 5-HT functions in sexually dimorphic neurons to promote virgin female receptivity through two of its receptors.
Animals
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Male
;
Female
;
Drosophila/physiology*
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Drosophila melanogaster/physiology*
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Serotonin
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Drosophila Proteins/physiology*
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Sexual Behavior, Animal/physiology*
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Transcription Factors
;
Nerve Tissue Proteins
7.A Shared Neural Node for Multiple Innate Behaviors in Drosophila.
Neuroscience Bulletin 2018;34(6):1103-1104
Animals
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Behavior, Animal
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physiology
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Drosophila melanogaster
;
physiology
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Female
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Instinct
;
Male
;
Nerve Net
;
physiology
;
Neurons
;
physiology
8.Hierarchical Control of Drosophila Sleep, Courtship, and Feeding Behaviors by Male-Specific P1 Neurons.
Wenxuan ZHANG ; Chao GUO ; Dandan CHEN ; Qionglin PENG ; Yufeng PAN
Neuroscience Bulletin 2018;34(6):1105-1110
Animals choose among sleep, courtship, and feeding behaviors based on the integration of both external sensory cues and internal states; such choices are essential for survival and reproduction. These competing behaviors are closely related and controlled by distinct neural circuits, but whether they are also regulated by shared neural nodes is unclear. Here, we investigated how a set of male-specific P1 neurons controls sleep, courtship, and feeding behaviors in Drosophila males. We found that mild activation of P1 neurons was sufficient to affect sleep, but not courtship or feeding, while stronger activation of P1 neurons labeled by four out of five independent drivers induced courtship, but only the driver that targeted the largest number of P1 neurons affected feeding. These results reveal a common neural node that affects sleep, courtship, and feeding in a threshold-dependent manner, and provide insights into how competing behaviors can be regulated by a shared neural node.
Animals
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Animals, Genetically Modified
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Brain
;
cytology
;
Courtship
;
Drosophila
;
Drosophila Proteins
;
genetics
;
metabolism
;
Feeding Behavior
;
physiology
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Locomotion
;
Male
;
Neural Inhibition
;
physiology
;
Neural Pathways
;
physiology
;
Neurons
;
physiology
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Sex Factors
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Sleep
;
physiology
9.Taurine Transporter dEAAT2 is Required for Auditory Transduction in Drosophila.
Ying SUN ; Yanyan JIA ; Yifeng GUO ; Fangyi CHEN ; Zhiqiang YAN
Neuroscience Bulletin 2018;34(6):939-950
Drosophila dEAAT2, a member of the excitatory amino-acid transporter (EAAT) family, has been described as mediating the high-affinity transport of taurine, which is a free amino-acid abundant in both insects and mammals. However, the role of taurine and its transporter in hearing is not clear. Here, we report that dEAAT2 is required for the larval startle response to sound stimuli. dEAAT2 was found to be enriched in the distal region of chordotonal neurons where sound transduction occurs. The Ca imaging and electrophysiological results showed that disrupted dEAAT2 expression significantly reduced the response of chordotonal neurons to sound. More importantly, expressing dEAAT2 in the chordotonal neurons rescued these mutant phenotypes. Taken together, these findings indicate a critical role for Drosophila dEAAT2 in sound transduction by chordotonal neurons.
Acoustic Stimulation
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Action Potentials
;
genetics
;
Animals
;
Animals, Genetically Modified
;
Auditory Pathways
;
physiology
;
Calcium
;
metabolism
;
Drosophila
;
genetics
;
Drosophila Proteins
;
genetics
;
metabolism
;
Excitatory Amino Acid Transporter 2
;
genetics
;
metabolism
;
Hearing
;
genetics
;
Larva
;
Luminescent Proteins
;
genetics
;
metabolism
;
Mutation
;
genetics
;
Nervous System
;
cytology
;
Neurons
;
metabolism
10.Repeated Failure in Reward Pursuit Alters Innate Drosophila Larval Behaviors.
Yue FEI ; Dikai ZHU ; Yixuan SUN ; Caixia GONG ; Shenyang HUANG ; Zhefeng GONG
Neuroscience Bulletin 2018;34(6):901-911
Animals always seek rewards and the related neural basis has been well studied. However, what happens when animals fail to get a reward is largely unknown, although this is commonly seen in behaviors such as predation. Here, we set up a behavioral model of repeated failure in reward pursuit (RFRP) in Drosophila larvae. In this model, the larvae were repeatedly prevented from reaching attractants such as yeast and butyl acetate, before finally abandoning further attempts. After giving up, they usually showed a decreased locomotor speed and impaired performance in light avoidance and sugar preference, which were named as phenotypes of RFRP states. In larvae that had developed RFRP phenotypes, the octopamine concentration was greatly elevated, while tβh mutants devoid of octopamine were less likely to develop RFRP phenotypes, and octopamine feeding efficiently restored such defects. By down-regulating tβh in different groups of neurons and imaging neuronal activity, neurons that regulated the development of RFRP states and the behavioral exhibition of RFRP phenotypes were mapped to a small subgroup of non-glutamatergic and glutamatergic octopaminergic neurons in the central larval brain. Our results establish a model for investigating the effect of depriving an expected reward in Drosophila and provide a simplified framework for the associated neural basis.
Acetates
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pharmacology
;
Animals
;
Animals, Genetically Modified
;
Avoidance Learning
;
physiology
;
Biogenic Amines
;
metabolism
;
Conditioning, Operant
;
physiology
;
Drosophila
;
physiology
;
Drosophila Proteins
;
genetics
;
metabolism
;
Feeding Behavior
;
drug effects
;
physiology
;
Instinct
;
Larva
;
physiology
;
Locomotion
;
drug effects
;
genetics
;
Nervous System
;
cytology
;
Neurons
;
physiology
;
Octopamine
;
metabolism
;
RNA Interference
;
physiology
;
Reward
;
Statistics, Nonparametric
;
Transcription Factors
;
genetics
;
metabolism

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