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Updated: May 24, 2026

Left Atrial Ligation in the Avian Embryo as a Model for Altered Hemodynamic Loading During Early Vascular Development
Published on: June 16, 2023
Congenital heart disease and the specification of left-right asymmetry
Richard J B Francis1, Adam Christopher, William A Devine
1Department of Developmental Biology, University of Pittsburgh School of Medicine, Pittsburgh, PA 15201, USA.
Insights
Immotile cilia in Dnaic1 mutants disrupt normal heart looping, leading to complex congenital heart disease (CHD). However, organ situs can still be determined without motile cilia, suggesting alternative signaling pathways are involved in visceral organ lateralization.
Area of Science:
- Developmental Biology
- Genetics
- Cardiovascular Research
Background:
- Complex congenital heart disease (CHD) frequently co-occurs with heterotaxy, a condition involving randomized visceral organ positioning.
- The precise relationship between cardiovascular development and left-right body patterning remains incompletely understood.
Purpose of the Study:
- To investigate the role of left-right patterning in cardiovascular development using a mouse model with impaired motile cilia function.
- To examine situs anomalies and CHD in Dnaic1 loss-of-function mutants.
Main Methods:
- Studied Dnaic1 mutant mice, which have immotile nodal cilia essential for left-right patterning.
- Analyzed heart tube looping, organ situs, and the presence of CHD in mutant mice.
- Assessed cardiac morphology, including ventricular and aortic arch development.
Main Results:
- Dnaic1 mutants exhibited immotile nodal cilia but displayed either concordant (situs solitus/inversus) or randomized (heterotaxy) organ situs.
- Abnormal leftward heart tube looping (L-loop bias) was observed in both heterotaxy and nonheterotaxy mutants.
- Heterotaxy mutants consistently presented with complex CHD and specific cardiac defects like thin left ventricles and hypoplastic transverse aortic arches, while situs solitus/inversus mutants had milder defects.
Conclusions:
- Motile nodal cilia are crucial for establishing correct heart tube looping.
- Visceral organ lateralization and situs determination can occur independently of nodal cilia motility, indicating alternative signaling mechanisms.
- Immotile cilia disrupt heart development, contributing to CHD, but do not entirely abolish situs patterning.
Abstract:
Complex congenital heart disease (CHD) is often seen in conjunction with heterotaxy, the randomization of left-right visceral organ situs. However, the link between cardiovascular morphogenesis and left-right patterning is not well understood. To elucidate the role of left-right patterning in cardiovascular development, we examined situs anomalies and CHD in mice with a loss of function allele of Dnaic1, a dynein protein required for motile cilia function and left-right patterning. Dnaic1 mutants were found to have nodal cilia required for left-right patterning, but they were immotile. Half the mutants had concordant organ situs comprising situs solitus or mirror symmetric situs inversus. The remaining half had randomized organ situs or heterotaxy. Looping of the heart tube, the first anatomical lateralization, showed abnormal L-loop bias rather than the expected D-loop orientation in heterotaxy and nonheterotaxy mutants. Situs solitus/inversus mutants were viable with mild or no defects consisting of azygos continuation and/or ventricular septal defects, whereas all heterotaxy mutants had complex CHD. In heterotaxy mutants, but not situs solitus/inversus mutants, the morphological left ventricle was thin and often associated with a hypoplastic transverse aortic arch. Thus, in conclusion, Dnaic1 mutants can achieve situs solitus or inversus even with immotile nodal cilia. However, the finding of abnormal L-loop bias in heterotaxy and nonheterotaxy mutants would suggest motile cilia are required for normal heart looping. Based on these findings, we propose motile nodal cilia patterns heart looping but heart and visceral organ lateralization is driven by signaling not requiring nodal cilia motility.
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