Disorders of sleep and associative learning co-occur in many diseases, including primary sleep disorders, plasticity disorders, and neurodegenerative disorders. These widespread connections between learning and sleep in human neurological disease indicate that there are neuronal circuits shared by sleep and learning in humans. Because these circuits are shared, therapeutic approaches designed for one system may also benefit the other, for example, treatments for sleep disturbance may also ameliorate symptoms of neurodegenerative disorders. Therefore, understanding the neural circuits connecting sleep and learning has the potential for significant scientific and translational impact. However, sleep and learning are both complex behaviors, and tracing a neuron-scale circuit for either is not currently possible in mammals. The fruit fly Drosophila melanogaster has a simpler nervous system than a mammal (about 100,000 neurons), while still displaying robust learning and sleep behaviors. Furthermore, the circuits for associative memory and sleep have been well studied in fruit flies. We propose to study the connections between a pair of neurons known to be necessary for both memory and sleep, the Dorsal Paired Medial neurons (DPMs), and other memory and sleep associated neurons in the fruit fly brain. We hypothesize that DPMs increase in activity after learning, which has two main effects. First, increased DPM activity causes the flies to sleep more. Second, DPMs inhibit dopamine neurons that cause forgetting of recent experiences, thereby improving the formation of new memories. We will test this hypothesis by: 1. Measuring connections between DPMs, dopamine neurons, and an important fly memory system, the Mushroom Body, 2. Blocking the DPMs, and measuring if learning still has an effect on sleep, and 3. Blocking the effect of DPMs on dopamine neurons, and measuring if formation of new memories is affected. Testing this hypotheses will provide important new information. First, we will better understand how an experience is turned into a long term memory in a simple brain, giving us deeper insight into how out own minds work. Second, we will know if the effects that a memory-promoting neuron has on sleep and memory are independent or related to one another. Third, we will gain greater insight into how dopamine neurons that signal value can simultaneously promote learning new memories and forgetting old memories.

Public Health Relevance

The ability to learn quickly depends on sleep, and sleep is modulated by the experience of learning. Both sleep and memory are affected by aging and by some neurological diseases, such as Alzheimer?s disease. However, the mechanisms in the brain that connect sleep and learning are almost completely unknown. Our work will determine how a pair of neurons control both memory and sleep in a simple model organism, the fruit fly, in order to develop deeper insight that may lead to new approaches to treating neurological disease.

Agency
National Institute of Health (NIH)
Institute
National Institute of Neurological Disorders and Stroke (NINDS)
Type
Postdoctoral Individual National Research Service Award (F32)
Project #
1F32NS098624-01
Application #
9190107
Study Section
Special Emphasis Panel (ZRG1)
Program Officer
He, Janet
Project Start
2016-08-01
Project End
2018-07-31
Budget Start
2016-08-01
Budget End
2017-07-31
Support Year
1
Fiscal Year
2016
Total Cost
Indirect Cost
Name
Brandeis University
Department
Biology
Type
Schools of Arts and Sciences
DUNS #
616845814
City
Waltham
State
MA
Country
United States
Zip Code
Bronk, Peter; Kuklin, Elena A; Gorur-Shandilya, Srinivas et al. (2018) Regulation of Eag by Ca2+/calmodulin controls presynaptic excitability in Drosophila. J Neurophysiol 119:1665-1680