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1.
EMBO Rep ; 24(10): e57023, 2023 Oct 09.
Article in English | MEDLINE | ID: mdl-37724628

ABSTRACT

Proteins involved in cellular metabolism and molecular regulation can extend lifespan of various organisms in the laboratory. However, any improvement in aging would only provide an evolutionary benefit if the organisms were able to survive under non-ideal conditions. We have previously shown that Drosophila melanogaster carrying a loss-of-function allele of the acetyltransferase chameau (chm) has an increased healthy lifespan when fed ad libitum. Here, we show that loss of chm and reduction in its activity results in a substantial reduction in weight and a decrease in starvation resistance. This phenotype is caused by failure to properly regulate the genes and proteins required for energy storage and expenditure. The previously observed increase in survival time thus comes with the inability to prepare for and cope with nutrient stress. As the ability to survive in environments with restricted food availability is likely a stronger evolutionary driver than the ability to live a long life, chm is still present in the organism's genome despite its apparent negative effect on lifespan.

2.
J Neurosci ; 40(14): 2935-2942, 2020 04 01.
Article in English | MEDLINE | ID: mdl-32102921

ABSTRACT

In Drosophila, dopamine signaling to the mushroom body intrinsic neurons, Kenyon cells (KCs), is critical to stabilize olfactory memory. Little is known about the downstream intracellular molecular signaling underlying memory stabilization. Here we address this question in the context of sugar-rewarded olfactory long-term memory (LTM). We show that associative training increases the phosphorylation of MAPK in KCs, via Dop1R2 signaling. Consistently, the attenuation of Dop1R2, Raf, or MAPK expression in KCs selectively impairs LTM, but not short-term memory. Moreover, we show that the LTM deficit caused by the knockdown of Dop1R2 can be rescued by expressing active Raf in KCs. Thus, the Dop1R2/Raf/MAPK pathway is a pivotal downstream effector of dopamine signaling for stabilizing appetitive olfactory memory.SIGNIFICANCE STATEMENT Dopaminergic input to the Kenyon cells (KCs) is pivotal to stabilize memory in Drosophila This process is mediated by dopamine receptors like Dop1R2. Nevertheless, little is known for its underlying molecular mechanism. Here we show that the Raf/MAPK pathway is specifically engaged in appetitive long-term memory in KCs. With combined biochemical and behavioral experiments, we reveal that activation of the Raf/MAPK pathway is regulated through Dop1R2, shedding light on how dopamine modulates intracellular signaling for memory stabilization.


Subject(s)
Appetitive Behavior/physiology , Drosophila Proteins/metabolism , Memory, Long-Term/physiology , Neurons/metabolism , Receptors, Dopamine D1/metabolism , Signal Transduction/physiology , Animals , Drosophila , Extracellular Signal-Regulated MAP Kinases/metabolism , Female , Male , Mushroom Bodies/physiology , raf Kinases/metabolism
3.
Proc Natl Acad Sci U S A ; 112(2): 578-83, 2015 Jan 13.
Article in English | MEDLINE | ID: mdl-25548178

ABSTRACT

Drosophila melanogaster can acquire a stable appetitive olfactory memory when the presentation of a sugar reward and an odor are paired. However, the neuronal mechanisms by which a single training induces long-term memory are poorly understood. Here we show that two distinct subsets of dopamine neurons in the fly brain signal reward for short-term (STM) and long-term memories (LTM). One subset induces memory that decays within several hours, whereas the other induces memory that gradually develops after training. They convey reward signals to spatially segregated synaptic domains of the mushroom body (MB), a potential site for convergence. Furthermore, we identified a single type of dopamine neuron that conveys the reward signal to restricted subdomains of the mushroom body lobes and induces long-term memory. Constant appetitive memory retention after a single training session thus comprises two memory components triggered by distinct dopamine neurons.


Subject(s)
Dopaminergic Neurons/physiology , Drosophila melanogaster/physiology , Animals , Animals, Genetically Modified , Appetitive Behavior/physiology , Carbohydrates , Drosophila melanogaster/anatomy & histology , Drosophila melanogaster/genetics , Female , Learning/physiology , Memory, Long-Term/physiology , Memory, Short-Term/physiology , Mushroom Bodies/physiology , Odorants , Reward , Smell/physiology , Taste/physiology
4.
Proc Jpn Acad Ser B Phys Biol Sci ; 92(8): 346-357, 2016.
Article in English | MEDLINE | ID: mdl-27725473

ABSTRACT

Memory retrieval requires both accuracy and speed. Olfactory learning of the fruit fly Drosophila melanogaster serves as a powerful model system to identify molecular and neuronal substrates of memory and memory-guided behavior. The behavioral expression of olfactory memory has traditionally been tested as a conditioned odor response in a simple T-maze, which measures the result, but not the speed, of odor choice. Here, we developed multiplexed T-mazes that allow video recording of the choice behavior. Automatic fly counting in each arm of the maze visualizes choice dynamics. Using this setup, we show that the transient blockade of serotonergic neurons slows down the choice, while leaving the eventual choice intact. In contrast, activation of the same neurons impairs the eventual performance leaving the choice speed unchanged. Our new apparatus contributes to elucidating how the speed and the accuracy of memory retrieval are implemented in the fly brain.


Subject(s)
Behavior, Animal , Choice Behavior , Drosophila melanogaster/physiology , Memory/physiology , Animals , Conditioning, Psychological , Drosophila melanogaster/genetics , Maze Learning , Odorants/analysis , Serotonergic Neurons/metabolism , Serotonin/metabolism , Temperature , Time Factors
5.
Sci Rep ; 11(1): 3432, 2021 02 09.
Article in English | MEDLINE | ID: mdl-33564023

ABSTRACT

Dysregulated motivation to consume psychoactive substances leads to addictive behaviors that often result in serious health consequences. Understanding the neuronal mechanisms that drive drug consumption is crucial for developing new therapeutic strategies. The fruit fly Drosophila melanogaster offers a unique opportunity to approach this problem with a battery of sophisticated neurogenetic tools available, but how they consume these drugs remains largely unknown. Here, we examined drug self-administration behavior of Drosophila and the underlying neuronal mechanisms. We measured the preference of flies for five different psychoactive substances using a two-choice feeding assay and monitored its long-term changes. We found that flies show acute preference for ethanol and methamphetamine, but not for cocaine, caffeine or morphine. Repeated intake of ethanol, but not methamphetamine, increased over time. Preference for methamphetamine and the long-term escalation of ethanol preference required the dopamine receptor Dop1R1 in the mushroom body. The protein level of Dop1R1 increased after repeated intake of ethanol, but not methamphetamine, which correlates with the acquired preference. Genetic overexpression of Dop1R1 enhanced ethanol preference. These results reveal a striking diversity of response to individual drugs in the fly and the role of dopamine signaling and its plastic changes in controlling voluntary intake of drugs.


Subject(s)
Behavior, Animal , Choice Behavior , Drosophila Proteins/metabolism , Mushroom Bodies/metabolism , Neurons/pathology , Psychotropic Drugs/pharmacology , Receptors, Dopamine/metabolism , Signal Transduction/drug effects , Animals , Drosophila melanogaster
6.
Curr Biol ; 31(6): 1294-1302.e4, 2021 03 22.
Article in English | MEDLINE | ID: mdl-33476556

ABSTRACT

The mushroom body (MB) of Drosophila melanogaster has multiple functions in controlling memory and behavior.1-9 However, circuit mechanisms that generate this functional diversity are largely unclear. Here, we systematically probed the behavioral contribution of each type of MB output neuron (MBON) by blocking during acquisition, retention, or retrieval of reward or punishment memories. We evaluated the contribution using two conditioned responses: memory-guided odor choice and odor source attraction. Quantitative analysis revealed that these conditioned odor responses are controlled by different sets of MBONs. We found that the valence of memory, rather than the transition of memory steps, has a larger impact on the patterns of required MBONs. Moreover, we found that the glutamatergic MBONs forming recurrent circuits commonly contribute to appetitive memory acquisition, suggesting a pivotal role of this circuit motif for reward processing. Our results provide principles how the MB output circuit processes associative memories of different valence and controls distinct memory-guided behaviors.


Subject(s)
Drosophila melanogaster , Memory , Mushroom Bodies , Animals , Conditioning, Classical , Drosophila melanogaster/physiology , Mushroom Bodies/physiology , Odorants
7.
Front Syst Neurosci ; 11: 88, 2017.
Article in English | MEDLINE | ID: mdl-29321731

ABSTRACT

Dopamine modulates a variety of animal behaviors that range from sleep and learning to courtship and aggression. Besides its well-known phasic firing to natural reward, a substantial number of dopamine neurons (DANs) are known to exhibit ongoing intrinsic activity in the absence of an external stimulus. While accumulating evidence points at functional implications for these intrinsic "spontaneous activities" of DANs in cognitive processes, a causal link to behavior and its underlying mechanisms has yet to be elucidated. Recent physiological studies in the model organism Drosophila melanogaster have uncovered that DANs in the fly brain are also spontaneously active, and that this activity reflects the behavioral/internal states of the animal. Strikingly, genetic manipulation of basal DAN activity resulted in behavioral alterations in the fly, providing critical evidence that links spontaneous DAN activity to behavioral states. Furthermore, circuit-level analyses have started to reveal cellular and molecular mechanisms that mediate or regulate spontaneous DAN activity. Through reviewing recent findings in different animals with the major focus on flies, we will discuss potential roles of this physiological phenomenon in directing animal behaviors.

8.
Elife ; 52016 04 15.
Article in English | MEDLINE | ID: mdl-27083044

ABSTRACT

Previously, we demonstrated that visual and olfactory associative memories of Drosophila share mushroom body (MB) circuits (Vogt et al., 2014). Unlike for odor representation, the MB circuit for visual information has not been characterized. Here, we show that a small subset of MB Kenyon cells (KCs) selectively responds to visual but not olfactory stimulation. The dendrites of these atypical KCs form a ventral accessory calyx (vAC), distinct from the main calyx that receives olfactory input. We identified two types of visual projection neurons (VPNs) directly connecting the optic lobes and the vAC. Strikingly, these VPNs are differentially required for visual memories of color and brightness. The segregation of visual and olfactory domains in the MB allows independent processing of distinct sensory memories and may be a conserved form of sensory representations among insects.


Subject(s)
Drosophila/physiology , Mushroom Bodies/physiology , Neural Pathways/physiology , Neurons/physiology , Optic Lobe, Nonmammalian/physiology , Animals , Drosophila/anatomy & histology , Memory , Mushroom Bodies/anatomy & histology , Neural Pathways/anatomy & histology , Neurons/cytology , Olfactory Perception , Optic Lobe, Nonmammalian/anatomy & histology , Visual Perception
9.
Elife ; 4: e10719, 2015 Nov 17.
Article in English | MEDLINE | ID: mdl-26573957

ABSTRACT

Dopamine signals reward in animal brains. A single presentation of a sugar reward to Drosophila activates distinct subsets of dopamine neurons that independently induce short- and long-term olfactory memories (STM and LTM, respectively). In this study, we show that a recurrent reward circuit underlies the formation and consolidation of LTM. This feedback circuit is composed of a single class of reward-signaling dopamine neurons (PAM-α1) projecting to a restricted region of the mushroom body (MB), and a specific MB output cell type, MBON-α1, whose dendrites arborize that same MB compartment. Both MBON-α1 and PAM-α1 neurons are required during the acquisition and consolidation of appetitive LTM. MBON-α1 additionally mediates the retrieval of LTM, which is dependent on the dopamine receptor signaling in the MB α/ß neurons. Our results suggest that a reward signal transforms a nascent memory trace into a stable LTM using a feedback circuit at the cost of memory specificity.


Subject(s)
Drosophila/physiology , Animals , Appetitive Behavior , Conditioning, Classical , Dopaminergic Neurons/physiology , Memory, Long-Term , Neural Pathways , Recurrence
10.
Elife ; 3: e04580, 2014 Dec 23.
Article in English | MEDLINE | ID: mdl-25535794

ABSTRACT

Animals discriminate stimuli, learn their predictive value and use this knowledge to modify their behavior. In Drosophila, the mushroom body (MB) plays a key role in these processes. Sensory stimuli are sparsely represented by ∼2000 Kenyon cells, which converge onto 34 output neurons (MBONs) of 21 types. We studied the role of MBONs in several associative learning tasks and in sleep regulation, revealing the extent to which information flow is segregated into distinct channels and suggesting possible roles for the multi-layered MBON network. We also show that optogenetic activation of MBONs can, depending on cell type, induce repulsion or attraction in flies. The behavioral effects of MBON perturbation are combinatorial, suggesting that the MBON ensemble collectively represents valence. We propose that local, stimulus-specific dopaminergic modulation selectively alters the balance within the MBON network for those stimuli. Our results suggest that valence encoded by the MBON ensemble biases memory-based action selection.


Subject(s)
Choice Behavior , Drosophila melanogaster/cytology , Drosophila melanogaster/physiology , Memory , Mushroom Bodies/cytology , Mushroom Bodies/innervation , Neurons/physiology , Animals , Appetitive Behavior/radiation effects , Association Learning/radiation effects , Avoidance Learning/radiation effects , Behavior, Animal/radiation effects , Choice Behavior/radiation effects , Light , Memory/radiation effects , Models, Neurological , Mushroom Bodies/radiation effects , Neurons/radiation effects , Odorants , Sleep/radiation effects , Time Factors , Vision, Ocular
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