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Updated: May 1, 2026

Advanced Diffusion Imaging in The Hippocampus of Rats with Mild Traumatic Brain Injury
Published on: August 14, 2019
Diffusion kurtosis imaging and high-resolution MRI demonstrate structural aberrations of caudate putamen and amygdala
Rafael Delgado y Palacios1, Marleen Verhoye1, Kim Henningsen2
1Bio-imaging, University of Antwerp, Antwerp, Belgium.
Abstract:
The pathophysiology of major depressive disorder (MDD) and other stress related disorders has been associated with aberrations in the hippocampus and the frontal brain areas. More recently, other brain regions, such as the caudate nucleus, the putamen and the amygdala have also been suggested to play a role in the development of mood disorders. By exposing rats to a variety of stressors over a period of eight weeks, different phenotypes, i.e. stress susceptible (anhedonic-like) and stress resilient animals, can be discriminated based on the sucrose consumption test. The anhedonic-like animals are a well validated model for MDD. Previously, we reported that in vivo diffusion kurtosis imaging (DKI) of the hippocampus shows altered diffusion properties in chronically stressed rats independent of the hedonic state and that the shape of the right hippocampus is differing among the three groups, including unchallenged controls. In this study we evaluated diffusion properties in the prefrontal cortex, caudate putamen (CPu) and amygdala of anhedonic-like and resilient phenotypes and found that mean kurtosis in the CPu was significantly different between the anhedonic-like and resilient animals. In addition, axial diffusion and radial diffusion were increased in the stressed animal groups in the CPu and the amygdala, respectively. Furthermore, we found that the CPu/brain volume ratio was increased significantly in anhedonic-like animals as compared with control animals. Concurrently, our results indicate that the effects of chronic stress on the brain are not lateralized in these regions. These findings confirm the involvement of the CPu and the amygdala in stress related disorders and MDD. Additionally, we also show that DKI is a potentially important tool to promote the objective assessment of psychiatric disorders.
Insights
Chronic stress alters brain structure in regions like the caudate putamen (CPu) and amygdala, impacting mood disorders. Diffusion kurtosis imaging (DKI) shows differences between stress-susceptible and resilient rats, aiding objective psychiatric assessment.
Area of Science:
- Neuroscience
- Psychiatry
- Medical Imaging
Background:
- Major depressive disorder (MDD) and stress-related disorders involve brain region abnormalities, including the hippocampus and frontal areas.
- Recent research suggests the caudate nucleus, putamen, and amygdala also play roles in mood disorders.
Purpose of the Study:
- To investigate diffusion properties in the prefrontal cortex, caudate putamen (CPu), and amygdala of stress-susceptible (anhedonic-like) and stress-resilient rat models of MDD.
- To assess the utility of in vivo diffusion kurtosis imaging (DKI) in differentiating these phenotypes and understanding stress-induced brain changes.
Main Methods:
- Rats were exposed to chronic stressors for eight weeks, creating stress-susceptible and stress-resilient phenotypes identified by the sucrose consumption test.
- In vivo diffusion kurtosis imaging (DKI) was used to evaluate diffusion properties in the prefrontal cortex, CPu, and amygdala.
- Brain region volumes, including the CPu/brain volume ratio, were analyzed.
Main Results:
- Mean kurtosis in the CPu was significantly different between anhedonic-like and resilient rats.
- Axial and radial diffusion increased in the CPu and amygdala of stressed groups, respectively.
- The CPu/brain volume ratio was significantly increased in anhedonic-like animals compared to controls, with no lateralization observed.
Conclusions:
- Findings confirm the involvement of the CPu and amygdala in MDD and stress-related disorders.
- DKI is a promising tool for the objective assessment of psychiatric disorders.
- Chronic stress induces non-lateralized changes in specific brain regions relevant to mood disorders.

