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A Pipeline to Characterize Structural Heart Defects in the Fetal Mouse
Published on: December 16, 2022
Cardiac dysfunction in transgenic mouse fetuses overexpressing shortened type XIII collagen
Jenni Tahkola1, Juha Räsänen, Malin Sund
1Oulu Center to Cell-Matrix Research, Biocenter Oulu, Department of Medical Biochemistry and Molecular Biology, University of Oulu, P. O. Box 5000, 90014, Oulu, Finland.
Abstract:
Overexpression of type XIII collagen molecules with an 83-amino-acid residue in-frame deletion of part of the ectodomain leads to fetal lethality in Col13a1COL2del transgenic mice. We characterize here the functional disturbances in the cardiovascular system of mouse fetuses overexpressing mutant type XIII collagen. Doppler ultrasonography was performed at 12.5 days of gestation on 33 fetuses resulting from heterozygous matings of seven female mice and on 16 fetuses from two matings between heterozygous and wild-type mice. Nine fetuses had atrioventricular valve regurgitation (AVVR), and all of them were transgene-positive. The fetuses with AVVR had a lower outflow mean velocity (Vmean; P<0.005) and a greater proportion of isovolumetric relaxation time (IRT%) in the cardiac cycle (P<0.0001) than those without AVVR, and their ductus venosus pulsatility indices for veins (DV PIV) and the umbilical artery pulsatility indices were increased. A positive correlation was found between IRT% and DV PIV, and a negative correlation was seen between outflow V(mean) and DV PIV. Morphological analysis of the heart revealed no differences between the two groups of fetuses, but histological analysis showed the trabeculation of the ventricles to be reduced and the myocardium to be thinner in the fetuses with AVVR. Based on in situ hybridization, type XIII collagen mRNAs were normal constituents of these structures. Moreover, a positive correlation was found between outflow Vmean and myocardial thickness. IRT% and DV PIV correlated negatively with myocardial thickness. Thus, overexpression of mutant type XIII collagen results in mid-gestation cardiac dysfunction in mouse fetuses, and these disturbances in cardiac function may lead to death in utero.
Insights
Overexpression of mutant type XIII collagen causes fetal heart defects and cardiac dysfunction in mice, leading to mid-gestation lethality. This study investigates the cardiovascular impacts of this genetic alteration.
Area of Science:
- Cardiovascular Biology
- Developmental Biology
- Genetics
Background:
- Type XIII collagen is crucial for cardiovascular development.
- Mutations in type XIII collagen can lead to severe developmental abnormalities.
- Transgenic mouse models are essential for studying collagen-related genetic disorders.
Purpose of the Study:
- To investigate the cardiovascular effects of overexpressing a mutant form of type XIII collagen (Col13a1COL2del) during mouse fetal development.
- To identify specific cardiac functional disturbances associated with this mutation.
- To correlate observed cardiac dysfunction with histological changes.
Main Methods:
- Doppler ultrasonography was used to assess cardiac function in mouse fetuses at 12.5 days of gestation.
- Fetuses from heterozygous matings and heterozygous x wild-type matings were analyzed.
- Histological analysis examined cardiac morphology and myocardial structure.
- In situ hybridization confirmed mRNA expression patterns.
Main Results:
- Fetuses overexpressing mutant type XIII collagen exhibited atrioventricular valve regurgitation (AVVR).
- AVVR fetuses showed reduced outflow velocity, increased isovolumetric relaxation time (IRT%), and elevated ductus venosus pulsatility indices (DV PIV).
- Histological analysis revealed reduced ventricular trabeculation and thinner myocardium in affected fetuses, correlating with impaired cardiac function.
Conclusions:
- Overexpression of mutant type XIII collagen leads to significant mid-gestation cardiac dysfunction in mouse fetuses.
- The observed cardiac abnormalities, including AVVR and impaired myocardial development, contribute to fetal lethality.
- This study highlights the critical role of type XIII collagen in normal cardiovascular development.

