$$\rightleftharpoonup{xx}$$
$$\longleftharp{xx}$$,
$$\longrightharp{xx}$$,
CHD is the most common noninfectious cause of death at birth1. Multiple surgeries are often needed to correct the structural defects in subjects whose quality of life may remain compromised1. Children with CHD frequently develop neurological disorders even if they have not undergone surgery, indicating important in utero consequences on development2,3. Both genetic and environmental factors, such as exposure to viruses or chemicals (alcohol) during pregnancy, cause CHD. Studying the genetic contributors is still at its early phase, but growing rapidly. To identify these contributors and understand their role in heart development, phenotyping mutant mice with a simple and powerful tool will be highly beneficial.
Mouse is indeed an animal model of choice to study CHD, and most of the human cases can be reproduced in mice4,5. Consequently, fetal mouse cardiac phenotyping has become increasingly important to investigate the etiology of human CHD and requires adequate tools. Although histological studies on fixed specimens are invaluable, real-time imaging of live animals is crucial to understand the physiology of the heart. Video microscopy offers live imaging. However, it requires laparotomy to expose embryos, thereby compromising their physiologic and hemodynamic state. Recently, echocardiography has become the standard imaging technique for cardiac assessments in the clinic as well as in mice.
Mouse fetal echocardiography is conducted using standard clinical ultrasound systems as well as ultra-high frequency ultrasound systems. The latter provide 30 MHz or higher frequency transducers that generate two-dimensional images and allow the assessment of early embryonic stages. These transducers have a relatively poor penetration depth (~13 mm), which is, however, sufficient to obtain adequate imaging planes and determine fundamental heart parameters, such as heart rate, left and right ventricular internal diameter at diastole and systole and septum and wall thickness, without performing laparotomy.
In our study, we have used an ultra-high frequency ultrasound system to assess heart rates of mouse embryos at embryonic day E18.5. We chose a 30 MHz transducer that provides a field view of 20 mm x 20 mm, which is ideal given the size of the fetuses, with a focal length of 12.7 mm. However, a higher frequency transducer may be chosen to analyze earlier developmental stages. The selected M-mode allows the visualization of tissues in motion thanks to a high temporal resolution of 1,000 frames/sec. The full procedure is simple and should be performed as quickly as possible to avoid any perturbation of the physiologic and hemodynamic states of the fetus. The analysis of about 8 embryos requires approximately 1 hr.