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Updated: Jan 25, 2026

Genome-wide Screen for miRNA Targets Using the MISSION Target ID Library
Published on: April 6, 2012
miRNAs, target genes expression and morphological analysis on the heart in gestational protein-restricted offspring
Heloisa Balan Assalin1, José Antonio Rocha Gontijo1, Patrícia Aline Boer1
1Internal Medicine Department, School of Medicine, State University of Campinas, São Paulo, Brazil.
Insights
Gestational protein restriction leads to low birth weight and adult hypertension in offspring. This study reveals early heart microRNA (miRNA) changes linked to cardiovascular development and morphology.
Area of Science:
- Cardiovascular Physiology
- Developmental Biology
- Epigenetics
Background:
- Gestational protein restriction is linked to adult cardiovascular issues like hypertension.
- Epigenetic modifications are potential mechanisms connecting prenatal nutrition to offspring cardiovascular health.
Purpose of the Study:
- To investigate the cardiac morphological effects of gestational protein restriction.
- To analyze left ventricle microRNA (miRNA) and target gene expression in offspring at different developmental stages.
Main Methods:
- Wistar rats were fed either a normal protein (17%) or low protein (6%) diet during gestation.
- Offspring cardiac morphology, blood pressure, and miRNA/target gene expression were assessed at 12 days and 16 weeks of age.
Main Results:
- Low birth weight, rapid weight recovery, and hypertension were observed in protein-restricted offspring.
- Increased myocytes cross-sectional area and collagen fraction were noted at 16 weeks.
- Significant alterations in left ventricle miRNA expression (e.g., miR-184, let-7b) and target genes (e.g., Dnmt3a, Oxct1) were identified at both time points.
Conclusions:
- Gestational protein restriction induces lasting cardiac morphological changes and hypertension in male offspring.
- Early changes in heart miRNA expression patterns are associated with altered cardiovascular gene regulation, impacting development and function.
Abstract:
Gestational protein restriction was associated with low birth weight, hypertension and higher prevalence of cardiac disorders in adults. Several mechanisms, including epigenetics, could be related with the cardiovascular phenotype on protein-restricted offspring. Thus, we investigated the morphological cardiac effects of gestational protein restriction and left ventricle miRNAs and target genes expression pattern in both 12-day and 16-week old gestational protein-restricted male offspring. Pregnant Wistar rats were allocated into two groups, according to protein supply during pregnancy: NP (normal protein diet- 17%) or LP (low protein diet-6%). Dams on the gestational protein-restricted diet had lower body weight gain and higher food intake. Gestational protein-restricted offspring had low birth weight, followed by rapidly body weight recovery, hypertension, and increased myocytes cross-sectional area and collagen fraction at 16-week old age. At 12-days old, miR-184, miR-192, miR-376c, miR-380-3p, miR-380-5p, miR-451, and miR-582-3p had increased expression, and miR-547 and miR-743a had decreased expression in the gestational protein-restricted left ventricle. At 16-week old, let-7b, miR-125a-3p, miR-142-3p, miR-182 and miR-188-5p had increased expression and let-7g, miR-107, miR-127, miR-181a, miR-181c, miR-184, miR-324-5p, miR-383, miR-423-5p and miR-484 had decreased expression in gestational protein-restricted left ventricle. Target predicted gene expression analysis showed higher expression of Dnmt3a, Oxct1, Rictor and Trps1 and lower expression of Bbs1 and Calml3 in 12-day old protein-restricted offspring. 16-week old protein-restricted offspring had higher expression of Adrbk1, Bbs1, Dnmt3a, Gpr22, Inppl1, and Oxct1 genes. In conclusion, gestational protein restriction was related to offspring low birth weight, increased systolic blood pressure and morphological heart alterations that could be related to early heart miRNA expression changes that perpetuate into adulthood and which are associated with the regulation of essential genes involved in cardiovascular development, heart morphology, function, and metabolism.
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