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Updated: Dec 31, 2025

Ovariectomy and 17β-estradiol Replacement in Rats and Mice: A Visual Demonstration
Published on: June 7, 2012
Estradiol treatment attenuates high fat diet-induced microgliosis in ovariectomized rats
Michael J Butler1, Alexis A Perrini2, Lisa A Eckel2
1Department of Psychology and Program in Neuroscience, Florida State University, Tallahassee, FL 32306, United States; Institute for Behavioral Medicine Research, Ohio State University Wexner Medical Center, Columbus, OH, 43210, United States.
Abstract:
Consumption of a high fat diet (HFD) increases circulating free fatty acids, which can enter the brain and promote a state of microgliosis, as defined by a change in microglia number and/or morphology. Most studies investigating diet-induced microgliosis have been conducted in male rodents despite well-documented sex differences in the neural control of food intake and neuroimmune signaling. This highlights the need to investigate how sex hormones may modulate the behavioral and cellular response to HFD consumption. Estradiol is of particular interest since it exerts a potent anorexigenic effect and has both anti-inflammatory and neuroprotective effects in the brain. As such, the aim of the current study was to investigate whether estradiol attenuates the development of HFD-induced microgliosis in female rats. Estradiol- and vehicle-treated ovariectomized rats were fed either a low-fat chow diet or a 60% HFD for 4 days, after which they were perfused and brain sections were processed via immunohistochemistry for microglia-specific Iba1 protein. Four days of HFD consumption promoted microgliosis, as measured via an increase in the number of microglia in the arcuate nucleus (ARC) of the hypothalamus and nucleus of the solitary tract (NTS), and a decrease in microglial branching in the ARC, NTS, lateral hypothalamus (LH), and ventromedial hypothalamus. Estradiol replacement attenuated the HFD-induced changes in microglia accumulation and morphology in the ARC, LH, and NTS. We conclude that estradiol has protective effects against HFD-induced microgliosis in a region-specific manner in hypothalamic and hindbrain areas implicated in the neural control of food intake.
Insights
Estradiol protects female rats from high-fat diet-induced brain inflammation by reducing microgliosis in key appetite-regulating areas. This suggests a potential therapeutic role for estradiol in mitigating diet-related neuroinflammation.
Area of Science:
- Neuroscience
- Endocrinology
- Immunology
Background:
- High-fat diets (HFD) increase circulating free fatty acids, promoting brain microgliosis (changes in microglia number/morphology).
- Most studies on diet-induced microgliosis use male rodents, overlooking sex differences in neuroimmune signaling and food intake regulation.
- Estradiol, known for its anorexigenic, anti-inflammatory, and neuroprotective effects, is a key hormone to investigate in this context.
Purpose of the Study:
- To investigate if estradiol attenuates high-fat diet-induced microgliosis in female rats.
- To determine the region-specific effects of estradiol on microglia in response to HFD.
Main Methods:
- Ovariectomized female rats received estradiol or vehicle treatment.
- Rats were fed either a low-fat or a 60% high-fat diet for 4 days.
- Brain sections were analyzed using immunohistochemistry for Iba1 protein to quantify microglia.
Main Results:
- Four days of HFD consumption induced microgliosis, increasing microglia number in the arcuate nucleus (ARC) and nucleus of the solitary tract (NTS).
- HFD decreased microglial branching in the ARC, NTS, lateral hypothalamus (LH), and ventromedial hypothalamus.
- Estradiol replacement attenuated HFD-induced changes in microglia accumulation and morphology in the ARC, LH, and NTS.
Conclusions:
- Estradiol exhibits protective effects against high-fat diet-induced microgliosis.
- These protective effects are region-specific, particularly in hypothalamic and hindbrain areas controlling food intake.
- Estradiol may play a crucial role in mitigating neuroinflammation associated with HFD consumption in females.

