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result(s) for
"Heart Septum - embryology"
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Patent foramen ovale: anatomy, outcomes, and closure
by
Calvert, Patrick A.
,
Kydd, Anna C.
,
Shapiro, Leonard M.
in
692/699/75/1539
,
692/699/75/593/1370/534
,
692/700/565/2773
2011
Patent foramen ovale (PFO) is a failure of the atrial septa to fuse postpartum, potentially leading to right-to-left shunting, which may increase the risk of cerebrovascular events. The authors of this Review outline the embryology and anatomy of PFO, and discuss the indications for PFO closure on the basis of available data from clinical trials and other studies. Devices for PFO closure, as well as the procedure itself, are also reviewed.
Patent foramen ovale (PFO) is a normal fetal communication between the right and left atria that persists after birth. PFO is a common finding that occurs in 20–34% of the population, although its prevalence decreases with age. In most cases, a PFO poses no threat to health. However, some PFOs have the ability to open widely under certain hemodynamic conditions, which enables any bloodborne material, such as thrombi, air, or vasoactive substances, to pass from the venous to the arterial circulation, with the potential to cause a cerebrovascular event. PFO has been linked to several conditions, including cryptogenic stroke, migraine with aura, decompression illness, and systemic arterial embolism. However, the data that support PFO closure in these conditions are mostly from nonrandomized cohort series, and are often contradictory. In this Review, we discuss the existing data on PFO closure, including results of the first randomized, controlled trial comparing device closure of PFO with medical therapy for cryptogenic stroke, and we examine controversies in the literature as well as ongoing studies. We also focus on the anatomy of a PFO and how it impacts on the procedure of PFO closure with a percutaneous device.
Key Points
Patent foramen ovale (PFO) is a normal fetal communication between the right and left atria that persists postpartum
PFOs are present in 20–34% of the population, but they pose no threat to health in the majority of cases
Under certain hemodynamic circumstances, PFOs can open and act as a conduit for thrombi to pass from the systemic venous circulation to the systemic arterial circulation, which can potentially cause a stroke
PFOs have been associated with cryptogenic stroke, decompression illness, systemic arterial embolism, and migraine with aura
Percutaneous device closure of a PFO is a low-risk procedure, although data from randomized, controlled trials that support its efficacy are lacking
Journal Article
Neural crest–derived SEMA3C activates endothelial NRP1 for cardiac outflow tract septation
2015
In mammals, the outflow tract (OFT) of the developing heart septates into the base of the pulmonary artery and aorta to guide deoxygenated right ventricular blood into the lungs and oxygenated left ventricular blood into the systemic circulation. Accordingly, defective OFT septation is a life-threatening condition that can occur in both syndromic and nonsyndromic congenital heart disease. Even though studies of genetic mouse models have previously revealed a requirement for VEGF-A, the class 3 semaphorin SEMA3C, and their shared receptor neuropilin 1 (NRP1) in OFT development, the precise mechanism by which these proteins orchestrate OFT septation is not yet understood. Here, we have analyzed a complementary set of ligand-specific and tissue-specific mouse mutants to show that neural crest-derived SEMA3C activates NRP1 in the OFT endothelium. Explant assays combined with gene-expression studies and lineage tracing further demonstrated that this signaling pathway promotes an endothelial-to-mesenchymal transition that supplies cells to the endocardial cushions and repositions cardiac neural crest cells (NCCs) within the OFT, 2 processes that are essential for septal bridge formation. These findings elucidate a mechanism by which NCCs cooperate with endothelial cells in the developing OFT to enable the postnatal separation of the pulmonary and systemic circulation.
Journal Article
Evolution and Development of Ventricular Septation in the Amniote Heart
by
Wisse, Lambertus J.
,
van de Put, Jeanne M. M. S.
,
Everts, Sonja
in
Ablation
,
Animals
,
Biological evolution
2014
During cardiogenesis the epicardium, covering the surface of the myocardial tube, has been ascribed several functions essential for normal heart development of vertebrates from lampreys to mammals. We investigated a novel function of the epicardium in ventricular development in species with partial and complete septation. These species include reptiles, birds and mammals. Adult turtles, lizards and snakes have a complex ventricle with three cava, partially separated by the horizontal and vertical septa. The crocodilians, birds and mammals with origins some 100 million years apart, however, have a left and right ventricle that are completely separated, being a clear example of convergent evolution. In specific embryonic stages these species show similarities in development, prompting us to investigate the mechanisms underlying epicardial involvement. The primitive ventricle of early embryos becomes septated by folding and fusion of the anterior ventricular wall, trapping epicardium in its core. This folding septum develops as the horizontal septum in reptiles and the anterior part of the interventricular septum in the other taxa. The mechanism of folding is confirmed using DiI tattoos of the ventricular surface. Trapping of epicardium-derived cells is studied by transplanting embryonic quail pro-epicardial organ into chicken hosts. The effect of decreased epicardium involvement is studied in knock-out mice, and pro-epicardium ablated chicken, resulting in diminished and even absent septum formation. Proper folding followed by diminished ventricular fusion may explain the deep interventricular cleft observed in elephants. The vertical septum, although indistinct in most reptiles except in crocodilians and pythonidsis apparently homologous to the inlet septum. Eventually the various septal components merge to form the completely septated heart. In our attempt to discover homologies between the various septum components we aim to elucidate the evolution and development of this part of the vertebrate heart as well as understand the etiology of septal defects in human congenital heart malformations.
Journal Article
Essential Role of Sox9 in the Pathway That Controls Formation of Cardiac Valves and Septa
by
Behringer, Richard R.
,
Rowitch, David H.
,
Akiyama, Haruhiko
in
Alleles
,
Animals
,
Biological Sciences
2004
Epithelial-mesenchymal transformation is a critical developmental process reiterated in multiple organs throughout embryogenesis. Formation of endocardial cushions, primordia of valves and septa, is a classic example of epithelial-mesenchymal transformation. Several gene mutations are known to affect cardiac valve formation. Sox9 is activated when endocardial endothelial cells undergo mesenchymal transformation and migrate into an extracellular matrix, called cardiac jelly, to form endocardial cushions. In Sox9-null mutants, endocardial cushions are markedly hypoplastic. In these mutants, Nfatc1 is ectopically expressed and no longer restricted to endothelial cells. Further, Sox9-deficient endocardial mesenchymal cells fail to express ErbB3, which is required for endocardial cushion cell differentiation and proliferation. Our results reveal a succession of molecular steps in the pathway of endocardial cushion development. We propose that loss of Sox9 inhibits epithelial-mesenchymal transformation after delamination and initial migration, but before definitive mesenchymal transformation.
Journal Article
The Ciliary Protein Ftm Is Required for Ventricular Wall and Septal Development
by
Gerhardt, Christoph
,
Kuschel, Stefanie
,
Lier, Johanna M.
in
Adaptor Proteins, Signal Transducing - physiology
,
Animals
,
Apoptosis
2013
Ventricular septal defects (VSDs) are the most common congenital heart defects in humans. Despite several studies of the molecular mechanisms involved in ventricular septum (VS) development, very little is known about VS-forming signaling. We observed perimembranous and muscular VSDs in Fantom (Ftm)-negative mice. Since Ftm is a ciliary protein, we investigated presence and function of cilia in murine hearts. Primary cilia could be detected at distinct positions in atria and ventricles at embryonic days (E) 10.5-12.5. The loss of Ftm leads to shortened cilia and a reduced proliferation in distinct atrial and ventricular ciliary regions at E11.5. Consequently, wall thickness is diminished in these areas. We suggest that ventricular proliferation is regulated by cilia-mediated Sonic hedgehog (Shh) and platelet-derived growth factor receptor α (Pdgfrα) signaling. Accordingly, we propose that primary cilia govern the cardiac proliferation which is essential for proper atrial and ventricular wall development and hence for the fully outgrowth of the VS. Thus, our study suggests ciliopathy as a cause of VSDs.
Journal Article
Ventricular Septal Defect and Cardiomyopathy in Mice Lacking the Transcription Factor CHF1/Hey2
by
Sakata, Yasuhiko
,
Nakagami, Hironori
,
Kamei, Caramai N.
in
Animals
,
Basic Helix-Loop-Helix Transcription Factors
,
Biological Sciences
2002
Ventricular septal defects are common in human infants, but the genetic programs that control ventricular septation are poorly understood. Here we report that mice with a targeted disruption of the cardiovascular basic helix-loop-helix factor (CHF)1/Hey2 gene show isolated ventricular septal defects. These defects result primarily in failure to thrive. Mice often succumbed within the first 3 wk after birth and showed pulmonary and liver congestion. The penetrance of this phenotype varied, depending on genetic background, suggesting the presence of modifier genes. Expression patterns of other cardiac-specific genes were not affected. Of the few animals on a mixed genetic background that survived to adulthood, most developed a cardiomyopathy but did not have ventricular septal defects. Our results indicate that CHF1 plays an important role in regulation of ventricular septation in mammalian heart development and is important for normal myocardial contractility. These mice provide a useful model for the study of the ontogeny and natural history of ventricular septal defects and cardiomyopathy.
Journal Article
Role of the NF-ATc transcription factor in morphogenesis of cardiac valves and septum
by
Yoshida, Hiroki
,
Crabtree, Gerald R.
,
de la Pompa, José Luis
in
Animals
,
Biological and medical sciences
,
Birth defects
1998
In lymphocytes, the expression of early immune response genes is regulated by NF-AT transcription factors
1
,
2
which translocate to the nucleus after dephosphorylation by the Ca
2+
-dependent phosphatase, calcineurin
3
. We report here that mice bearing a disruption in the
NF-ATc
gene fail to develop normal cardiac valves and septa and die of circulatory failure before day 14.5 of development.
NF-ATc
is first expressed in the heart at day 7.5, and is restricted to the endocardium, a specialized endothelium that gives rise to the valves and septum. Within the endocardium, specific inductive events appear to activate NF-ATc: it is localized to the nucleus only in endocardial cells that are adjacent to the interface with the cardiac jelly and myocardium, which are thought to give the inductive stimulus to the valve primordia
4
. Treatment of wild-type embryos with FK506, a specific calcineurin inhibitor
5
, prevents nuclear localization of NF-ATc. These data indicate that the Ca
2+
/calcineurin/NF-ATc signalling pathway is essential for normal cardiac valve and septum morphogenesis; hence,
NF-ATc
and its regulatory pathways are candidates for genetic defects underlying congenital human heart disease.
Journal Article
Multiple congenital malformations of Wolf-Hirschhorn syndrome are recapitulated in Fgfrl1 null mice
by
Rosenthal, Nadia
,
Catela, Catarina
,
Kratsios, Paschalis
in
Alleles
,
Anemia - complications
,
Animals
2009
Wolf-Hirschhorn syndrome (WHS) is caused by deletions in the short arm of chromosome 4 (4p) and occurs in about one per 20,000 births. Patients with WHS display a set of highly variable characteristics including craniofacial dysgenesis, mental retardation, speech problems, congenital heart defects, short stature and a variety of skeletal anomalies. Analysis of patients with 4p deletions has identified two WHS critical regions (WHSCRs); however, deletions targeting mouse WHSCRs do not recapitulate the classical WHS defects, and the genes contributing to WHS have not been conclusively established. Recently, the human FGFRL1 gene, encoding a putative fibroblast growth factor (FGF) decoy receptor, has been implicated in the craniofacial phenotype of a WHS patient. Here, we report that targeted deletion of the mouse Fgfrl1 gene recapitulates a broad array of WHS phenotypes, including abnormal craniofacial development, axial and appendicular skeletal anomalies, and congenital heart defects. Fgfrl1 null mutants also display a transient foetal anaemia and a fully penetrant diaphragm defect, causing prenatal and perinatal lethality. Together, these data support a wider role for Fgfrl1 in development, implicate FGFRL1 insufficiency in WHS, and provide a novel animal model to dissect the complex aetiology of this human disease.
Journal Article
Defects in cardiac outflow tract formation and pro-B-lymphocyte expansion in mice lacking Sox-4
by
van de Wetering, Marc
,
Clevers, Hans
,
Oosterwegel, Mariëtte A.
in
Animals
,
B-Lymphocytes - cytology
,
Biological and medical sciences
1996
A striking example of the relationship between regulation of transcription and phenotype is the central role of the Y-chromo-somal gene
Sry
in mammalian sex determination
1,2.
Sry
is the founding member of a large family of so-called
Sox
genes
1,3
. During murine embryogenesis, the transcriptional activator
Sox-4
is expressed at several sites, but in adult mice expression is restricted to immature B and T lymphocytes
4
. Using targeted genedisruption, we have found that
Sox-4
−/−
embryos succumb to circulatory failure at day E14. This was a result of impaired development of the endocardial ridges (a specific site of
Sox-4
expression) into the semilunar valves and the outlet portion of the muscular ventricular septum. The observed range of septation defects is known as 'common arterial trunk' in man. We studied haemopoiesis in lethally irradiated mice reconstituted with
Sox-4
−/−
fetal liver cells and found that a specific block occurred in B-cell development at the pro-B cell stage. In line with this, the frequency and proliferative capacity of IL-7-responsive B cell progenitors in fetal liver were severely decreased
in vitro
.
Journal Article