» Articles » PMID: 26578964

Pharmacological Profiling of Zebrafish Behavior Using Chemical and Genetic Classification of Sleep-wake Modifiers

Overview
Journal Front Pharmacol
Date 2015 Nov 19
PMID 26578964
Citations 15
Authors
Affiliations
Soon will be listed here.
Abstract

Sleep-wake states are impaired in various neurological disorders. Impairment of sleep-wake states can be an early condition that exacerbates these disorders. Therefore, treating sleep-wake dysfunction may prevent or slow the development of these diseases. Although many gene products are likely to be involved in the sleep-wake disturbance, hypnotics and psychostimulants clinically used are limited in terms of their mode of action and are not without side effects. Therefore, there is a growing demand for developing new hypnotics and psychostimulants with high efficacy and few side effects. Toward this end, animal models are indispensable for use in genetic and chemical screens to identify sleep-wake modifiers. As a proof-of-concept study, we performed behavioral profiling of zebrafish treated with chemical and genetic sleep-wake modifiers. We were able to demonstrate that behavioral profiling of zebrafish treated with hypnotics or psychostimulants from 9 to 10 days post-fertilization was sufficient to identify drugs with specific modes of action. We were also able to identify behavioral endpoints distinguishing GABA-A modulators and hypocretin (hcrt) receptor antagonists and between sympathomimetic and non-sympathomimetic psychostimulants. This behavioral profiling can serve to identify genes related to sleep-wake disturbance associated with various neuropsychiatric diseases and novel therapeutic compounds for insomnia and excessive daytime sleep with fewer adverse side effects.

Citing Articles

Delivering Traumatic Brain Injury to Larval Zebrafish.

Gill T, Locskai L, Burton A, Alyenbaawi H, Wheeler T, Burton E Methods Mol Biol. 2023; 2707:3-22.

PMID: 37668902 DOI: 10.1007/978-1-0716-3401-1_1.


Transcriptome Profiling Reveals Enhanced Mitochondrial Activity as a Cold Adaptive Strategy to Hypothermia in Zebrafish Muscle.

Cahill T, Chan S, Overton I, Hardiman G Cells. 2023; 12(10).

PMID: 37408201 PMC: 10216211. DOI: 10.3390/cells12101366.


Investigating the effects of chronic low-dose radiation exposure in the liver of a hypothermic zebrafish model.

Cahill T, da Silveira W, Renaud L, Wang H, Williamson T, Chung D Sci Rep. 2023; 13(1):918.

PMID: 36650199 PMC: 9845366. DOI: 10.1038/s41598-022-26976-4.


Modulation of sleep behavior in zebrafish larvae by pharmacological targeting of the orexin receptor.

Pardon M, Claes P, Druwe S, Martini M, Siekierska A, Menet C Front Pharmacol. 2022; 13:1012622.

PMID: 36339591 PMC: 9632972. DOI: 10.3389/fphar.2022.1012622.


Induced Torpor as a Countermeasure for Low Dose Radiation Exposure in a Zebrafish Model.

Cahill T, da Silveira W, Renaud L, Williamson T, Wang H, Chung D Cells. 2021; 10(4).

PMID: 33920039 PMC: 8071006. DOI: 10.3390/cells10040906.


References
1.
Lahti T, Leppamaki S, Tani P, Partonen T . Actigraphic recording of manic symptoms induced by methylphenidate. Case Rep Med. 2009; 2009:286430. PMC: 2762164. DOI: 10.1155/2009/286430. View

2.
Sinita E, Coghill D . The use of stimulant medications for non-core aspects of ADHD and in other disorders. Neuropharmacology. 2014; 87:161-72. DOI: 10.1016/j.neuropharm.2014.06.014. View

3.
Yokogawa T, Marin W, Faraco J, Pezeron G, Appelbaum L, Zhang J . Characterization of sleep in zebrafish and insomnia in hypocretin receptor mutants. PLoS Biol. 2007; 5(10):e277. PMC: 2020497. DOI: 10.1371/journal.pbio.0050277. View

4.
Vetrivelan R, Saper C, Fuller P . Armodafinil-induced wakefulness in animals with ventrolateral preoptic lesions. Nat Sci Sleep. 2014; 6:57-63. PMC: 4014362. DOI: 10.2147/NSS.S53132. View

5.
Sogorb M, Pamies D, de Lapuente J, Estevan C, Estevez J, Vilanova E . An integrated approach for detecting embryotoxicity and developmental toxicity of environmental contaminants using in vitro alternative methods. Toxicol Lett. 2014; 230(2):356-67. DOI: 10.1016/j.toxlet.2014.01.037. View