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Modeling Encephalopathy of Prematurity Using Prenatal Hypoxia-ischemia with Intra-amniotic Lipopolysaccharide in Rats
Published on: November 20, 2015
A comparison of rat models that best mimic immune-driven preeclampsia in humans
Fahmida Jahan1, Goutham Vasam2, Yusmaris Cariaco2
1Department of Biochemistry, Microbiology and Immunology, Faculty of Medicine, University of Ottawa, Ottawa, ON, Canada.
Insights
Lipopolysaccharide (LPS) injections in pregnant rats effectively model inflammatory preeclampsia (PE), inducing maternal hypertension and placental dysfunction. This rodent model is crucial for studying PE subtypes and testing therapies.
Area of Science:
- Reproductive biology
- Immunology
- Pathophysiology
Background:
- Preeclampsia (PE) is a hypertensive pregnancy disorder with varied causes.
- While placental malperfusion is a known cause, inflammation at the maternal-fetal interface is an understudied PE subtype.
- Validated rodent models are needed to study inflammatory PE and test potential therapies.
Purpose of the Study:
- To evaluate three rodent models for inducing inflammation-mediated preeclampsia-like features in pregnant rats.
- To assess the effectiveness of Tumor necrosis factor-α (TNF-α), Polyinosinic:polycytidylic acid (Poly I:C), and Lipopolysaccharide (LPS) models.
Main Methods:
- Pregnant rats were treated with TNF-α, Poly I:C, or LPS to induce inflammation.
- Maternal blood pressure, fetal and placental weights, and fetal survival were recorded.
- Placental histomorphology, inflammation markers (TNF-α, gene expression), and mitochondrial function (respiration, NAD+/NADH) were analyzed.
Main Results:
- Poly I:C and LPS models reduced fetal weight and survival, with decreased placental growth.
- TNF-α treatment showed minimal effects on fetal/placental weight and mitochondrial respiration.
- Only the LPS model induced maternal hypertension and significant placental metabolic/mitochondrial dysfunction.
Conclusions:
- The rat LPS model most effectively recapitulates key features of human inflammatory preeclampsia.
- This model is valuable for future mechanistic studies and therapeutic interventions in specific PE patient populations.
Abstract:
Preeclampsia (PE), a hypertensive pregnancy disorder, can originate from varied etiology. Placenta malperfusion has long been considered the primary cause of PE. However, we and others have showed that this disorder can also result from heightened inflammation at the maternal-fetal interface. To advance our understanding of this understudied PE subtype, it is important to establish validated rodent models to study the pathophysiology and test therapies. We evaluated three previously described approaches to induce inflammation-mediated PE-like features in pregnant rats: 1) Tumor necrosis factor-α (TNF-α) infusion via osmotic pump from gestational day (GD) 14-19 at 50ng/day/animal; 2) Polyinosinic:polycytidylic acid (Poly I:C) intraperitoneal (IP) injections from GD 10-18 (alternate days) at 10mg/kg/day/animal; and, 3) Lipopolysaccharide (LPS) IP injections from GD 13-18 at 20ug-70ug/kg/day per animal. Maternal blood pressure was measured by tail-cuff. Upon sacrifice, fetal and placenta weights were recorded. Placenta histomorphology was assessed using H&E sections. Placenta inflammation was determined by quantifying TNF-α levels and inflammatory gene expression. Placenta metabolic and mitochondrial health were determined by measuring mitochondrial respiration rates and placenta NAD+/NADH content. Of the three rodent models tested, we found that Poly I:C and LPS decreased both fetal weight and survival; and correlated with a reduction in region specific placenta growth. As the least effective model characterized, TNF-α treatment resulted in a subtle decrease in fetal/placenta weight and placenta mitochondrial respiration. Only the LPS model was able to induce maternal hypertension and exhibited pronounced placenta metabolic and mitochondrial dysfunction, common features of PE. Thus, the rat LPS model was most effective for recapitulating features observed in cases of human inflammatory PE. Future mechanistic and/or therapeutic intervention studies focuses on this distinct PE patient population may benefit from the employment of this rodent model of PE.
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