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Updated: Dec 14, 2025

Protocol for Three-dimensional Confocal Morphometric Analysis of Astrocytes
Published on: December 11, 2015
Three-dimensional morphometric analysis reveals time-dependent structural changes in microglia and astrocytes in the
Ferdinand Althammer1, Hildebrando Candido Ferreira-Neto1, Myurajan Rubaharan2
1Center for Neuroinflammation and Cardiometabolic Diseases, Georgia State University, Atlanta, USA.
Insights
Heart failure causes neuroinflammation in the central amygdala, altering microglia and astrocytes. This glial remodeling correlates with disease severity and may explain cognitive and mood disorders in heart failure patients.
Area of Science:
- Neuroscience
- Cardiovascular Science
- Pathology
Background:
- Heart failure is a leading global cause of death.
- Comorbidities include cognitive and mood disorders like depression and anxiety.
- Neuroinflammation in the hypothalamic paraventricular nucleus is linked to cardiovascular dysregulation in heart failure.
Purpose of the Study:
- To quantitatively assess neuroinflammation markers in the central amygdala during heart failure progression.
- To determine the time course and correlation of neuroinflammation with heart failure severity.
- To investigate structural changes in microglia and astrocytes in the central amygdala.
Main Methods:
- Developed a microglial/astrocyte profiler for 3D morphometric analysis.
- Utilized an established ischemic heart failure rat model.
- Quantified pro-inflammatory cytokines and A1/A2 astrocyte markers via qPCR.
Main Results:
- Observed structural remodeling of central amygdala microglia and astrocytes (cell volume, surface area, filament length, glial branches).
- Glial changes indicated a shift towards a pro-inflammatory state (somatic swelling, deramification).
- These changes were time-dependent, correlated with heart failure severity, and delayed compared to hypothalamic changes.
Conclusions:
- Heart failure induces structural remodeling of microglia and astrocytes in the central amygdala, indicating a shift to pro-inflammatory phenotypes.
- This central amygdala neuroinflammation is a novel pathophysiological mechanism potentially underlying emotional and cognitive deficits in heart failure.
- Amygdala neuroinflammation represents a potential therapeutic target for managing heart failure-associated cognitive and mood disorders.
Background:
Cardiovascular diseases, including heart failure, are the most common cause of death globally. Recent studies support a high degree of comorbidity between heart failure and cognitive and mood disorders resulting in memory loss, depression, and anxiety. While neuroinflammation in the hypothalamic paraventricular nucleus contributes to autonomic and cardiovascular dysregulation in heart failure, mechanisms underlying cognitive and mood disorders in this disease remain elusive. The goal of this study was to quantitatively assess markers of neuroinflammation (glial morphology, cytokines, and A1 astrocyte markers) in the central amygdala, a critical forebrain region involved in emotion and cognition, and to determine its time course and correlation to disease severity during the progression of heart failure.
Methods:
We developed and implemented a comprehensive microglial/astrocyte profiler for precise three-dimensional morphometric analysis of individual microglia and astrocytes in specific brain nuclei at different time points during the progression of heart failure. To this end, we used a well-established ischemic heart failure rat model. Morphometric studies were complemented with quantification of various pro-inflammatory cytokines and A1/A2 astrocyte markers via qPCR.
Results:
We report structural remodeling of central amygdala microglia and astrocytes during heart failure that affected cell volume, surface area, filament length, and glial branches, resulting overall in somatic swelling and deramification, indicative of a change in glial state. These changes occurred in a time-dependent manner, correlated with the severity of heart failure, and were delayed compared to changes in the hypothalamic paraventricular nucleus. Morphometric changes correlated with elevated mRNA levels of pro-inflammatory cytokines and markers of reactive A1-type astrocytes in the paraventricular nucleus and central amygdala during heart failure.
Conclusion:
We provide evidence that in addition to the previously described hypothalamic neuroinflammation implicated in sympathohumoral activation during heart failure, microglia, and astrocytes within the central amygdala also undergo structural remodeling indicative of glial shifts towards pro-inflammatory phenotypes. Thus, our studies suggest that neuroinflammation in the amygdala stands as a novel pathophysiological mechanism and potential therapeutic target that could be associated with emotional and cognitive deficits commonly observed at later stages during the course of heart failure.
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