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Animal Models for the Study of Depressive Disorder

Overview
Specialties Neurology
Pharmacology
Date 2021 Mar 2
PMID 33650178
Citations 20
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Abstract

Depressive disorder is one of the most widespread forms of psychiatric pathology, worldwide. According to a report by the World Health Organization, the number of people with depression, globally, is increasing dramatically with each year. Previous studies have demonstrated that various factors, including genetics and environmental stress, contribute to the risk of depression. As such, it is crucial to develop a detailed understanding of the pathogenesis of depressive disorder and animal studies are essential for identifying the mechanisms and genetic disorders underlying depression. Recently, many researchers have reported on the pathology of depression via various models of depressive disorder. Given that different animal models of depression show differences in terms of patterns of depressive behavior and pathology, the comparison between depressive animal models is necessary for progress in the field of the depression study. However, the various animal models of depression have not been fully compared or evaluated until now. In this paper, we reviewed the pathophysiology of the depressive disorder and its current animal models with the analysis of their transcriptomic profiles. We provide insights for selecting different animal models for the study of depression.

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References
1.
Arango V, Underwood M, Mann J . Serotonin brain circuits involved in major depression and suicide. Prog Brain Res. 2002; 136:443-53. DOI: 10.1016/s0079-6123(02)36037-0. View

2.
van Loo H, de Jonge P, Romeijn J, Kessler R, Schoevers R . Data-driven subtypes of major depressive disorder: a systematic review. BMC Med. 2012; 10:156. PMC: 3566979. DOI: 10.1186/1741-7015-10-156. View

3.
Sanford L, Suchecki D, Meerlo P . Stress, arousal, and sleep. Curr Top Behav Neurosci. 2014; 25:379-410. DOI: 10.1007/7854_2014_314. View

4.
Okereke O, Prescott J, Wong J, Han J, Rexrode K, De Vivo I . High phobic anxiety is related to lower leukocyte telomere length in women. PLoS One. 2012; 7(7):e40516. PMC: 3394740. DOI: 10.1371/journal.pone.0040516. View

5.
Li X, Hu L . The Role of Stress Regulation on Neural Plasticity in Pain Chronification. Neural Plast. 2017; 2016:6402942. PMC: 5178373. DOI: 10.1155/2016/6402942. View