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Arylamine N-acetyltransferase 2 expression in the developing heart.

Murine arylamine N-acetyltransferase 2 (NAT2) is expressed in the developing heart and in the neural tube at the time of closure. Classically described as a xenobiotic metabolizing enzyme, there is increasing evidence for a distinct biological role for murine NAT2. We have characterized the expression of arylamine N-acetyltransferase 2 during cardiogenesis, mapping its expression in vivo, using a lacZ insertion deletion, and also in vitro, by measuring NAT2 enzyme activity. These findings show that cardiac Nat2 expression is both temporally and spatially regulated during development. In neonatal mice, cardiac Nat2 expression is most extensive in the central fibrous body and is evident in the atrioventricular valves and the valves of the great vessels. Whereas Nat2 expression is not detected in ventricular myocardial cells, Nat2 is strongly expressed in scattered cells in the region of the sinus node, the epicardium of the right atrial appendage, and in the pulmonary artery. Expression of active NAT2 protein is maximal when the developing heart attains the adult circulation pattern and moves from metabolizing glucose to fatty acids. NAT2 acetylating activity in cardiac tissue from Nat2(-/-) and Nat2(+/-) mice indicates a lack of compensating acetylating activity either from other acetylating enzymes or by NAT2 encoded by the wild-type Nat2 allele in Nat2(+/-) heterozygotes. The temporal and spatial control of murine Nat2 expression points to an endogenous role distinct from xenobiotic metabolism and indicates that Nat2 expression may be useful as a marker in cardiac development.

Acetylation↗

Analysis of heart development in cultured rat embryos.

The long-range goal of this research is to establish an in vitro system that will permit pertubation of mammalian heart development and in situ examination of the cellular and molecular events underlying cardiac morphogenesis. Rat embryos at 9.5-11.5 days of gestation were placed in culture bottles containing rat serum and Tyrode's solution. Embryos cultured for 24 and 48 h were compared to age-matched in vivo controls for morphological score, morphometric analysis of heart development, and confocal and electron microscopic analysis of myofiber pattern formation. Morphological scores indicated that embryos cultured for 24 h from day 9.5 to 10.5 had essentially normal development when compared to age-matched embryos allowed to develop in vivo. Development of embryos maintained for 48 h in culture was slightly delayed at 66-68% of age matched in vivo embryos. Analysis of hearts from embryos allowed to develop 9.5-11.5 days in vivo plus 24 and 48 h in culture showed that the ventricular thickness and height, as well as the truncal, atrial and ventricular diameters were equivalent to those of hearts from age-matched in vivo controls. Hearts from embryos allowed to develop from 11.5-12.5 days in vitro and cultured for 24 and 48 h had smaller left ventricular and atrial dimensions than controls. Cardiac myofibrillogenesis and myofibrillar pattern formation in embryos cultured from 9.5 days of in vivo development for 48 h were also normal. These studies indicate that the rat whole embryo culture system is a useful model to study several critical periods in mammalian heart development.

Animals↗

Expression of the intermediate filament vimentin and fibrillar proteins of the extracellular matrix related to embryonal heart development.

During organogenesis, the heart is one the first organs to develop and the earliest organ to function. The early appearance of cardiac activity in the tubular hearts of chick and rat embryos was noted many years ago. It arises from two plates of the splanchnic mesoderm which fuse to form a single tubular structure composed of endocardial and myocardial cells and, between them, the extracellular cardiac matrix. There is considerable variation in the formation of the extracellular matrix in the various regions of the heart during development. The endocardial lining cells of the vertebrate embryos show a regional specificity that remains an unexplained phenomenon in cardiac morphogenesis. The great majority of the endocardial lining cells remain epithlial. However, a restricted population of endothelial cells, lining the atrioventricular (AV) canal and the reputed proximal outflow tract (OT), transforms into mesenchyme; the latter being the reputed progenitor of the valves and membranous septa. The purpose of this study was to investigate the extracellular cardiac matrix of the human fetal heart in different regions and in various stages of development, and also the heterogeneity of the endocardial cell lining, in connection with the endothelial cells of other cardiac vessels. Identification of the mesenchymal cells/extracellular matrix was confirmed by immunohistochemical techniques using the following monoclonal antibodies: actin, desmin, vimentin, collagen IV and fibronectin. The present results provide evidence that the extracellular matrix of the heart is of mesodermal origin but at the level of the valves the mesenchyme is derived from the endothelial lining cells rather than the primitive mesenchyme.

Antibodies, Monoclonal↗

Heart development: molecular insights into cardiac specification and early morphogenesis.

The heart develops from two bilateral heart fields that are formed during early gastrulation. In recent years, signaling pathways that specify cardiac mesoderm have been extensively analyzed. In addition, a battery of transcription factors that regulate different aspects of cardiac morphogenesis and cytodifferentiation have been identified and characterized in model organisms. At the anterior pole, a secondary heart field is formed, which in its molecular make-up, appears to be similar to the primary heart field. The cardiac outflow tract and the right ventricle to a large extent are derivatives of this anterior heart field. Cardiac mesoderm receives positional information by which it is patterned along the three body axes. The molecular control of left-right axis development has received particular attention, and the underlying regulatory network begins to emerge. Cardiac chamber development involves the activation of a transcription program that is different from the one present in the primary heart field and regulates cardiac morphogenesis in a region-specific manner. This review also attempts to identify areas in which additional research is needed to fully understand early cardiac development.

Animals↗

A critical role for the EphA3 receptor tyrosine kinase in heart development.

Eph proteins are receptor tyrosine kinases that control changes in cell shape and migration during development. We now describe a critical role for EphA3 receptor signaling in heart development as revealed by the phenotype of EphA3 null mice. During heart development mesenchymal outgrowths, the atrioventricular endocardial cushions, form in the atrioventricular canal. This morphogenetic event requires endocardial cushion cells to undergo an epithelial to mesenchymal transformation (EMT), and results in the formation of the atrioventricular valves and membranous portions of the atrial and ventricular septa. We show that EphA3 knockouts have significant defects in the development of their atrial septa and atrioventricular endocardial cushions, and that these cardiac abnormalities lead to the death of approximately 75% of homozygous EphA3(-/-) mutants. We demonstrate that EphA3 and its ligand, ephrin-A1, are expressed in adjacent cells in the developing endocardial cushions. We further demonstrate that EphA3(-/-) atrioventricular endocardial cushions are hypoplastic compared to wildtype and that EphA3(-/-) endocardial cushion explants give rise to fewer migrating mesenchymal cells than wildtype explants. Thus our results indicate that EphA3 plays a crucial role in the development and morphogenesis of the cells that give rise to the atrioventricular valves and septa.

Animals↗

Phospholipid profile of developing heart of rats exposed to low-protein diet in pregnancy.

Although the myocardial phospholipid and fatty acid content have profound effects on the heart function, very little information is available on the effects of restricted maternal protein intake during pregnancy on the phospholipid profile and fatty acid content of the developing heart. The present study was therefore undertaken to examine the effect of pregnant dams fed diets containing either 180 (normal) or 90 (low) g/kg casein diet for 2 wk before mating and throughout pregnancy on myocardial phospholipid and fatty acid content of male offspring. Whereas no changes in phosphatidylcholine and phosphatidylethanolamine were detected, increases in lysophosphatidylcholine, phosphatidylserine, and sphingomyelin were seen in the hearts of offspring in the low-protein (LP) group. Analysis of cardiac fatty acids revealed that although the saturated fatty acid (myristate, palmitate, and stearate) levels were significantly reduced, the unsaturated fatty acid (linoleate, arachidonate, and decosahexanoate) levels were significantly increased in the developing heart in the LP group. Furthermore, assessment of nuclear transcription factors involved in regulation of cardiac metabolism revealed a decrease in myocyte enhancer factor-2C mRNA levels in the LP group, whereas an increase in the mRNA amount of peroxisome proliferator-activated receptor-alpha was observed in this group. These results demonstrate that maternal LP diet can induce changes in the phospholipid profile and fatty acid content of the developing heart, which may have implications for metabolism of the neonatal heart.

Animals↗

Vertebrate model systems in the study of early heart development: Xenopus and zebrafish.

Xenopus and zebrafish serve as outstanding models in which to study vertebrate heart development. The embryos are transparent, allowing observation during organogenesis; they can be obtained in large numbers; and they are readily accessible to embryologic manipulation and microinjection of RNA, DNA, or protein. These embryos can live by diffusion for several days, allowing analysis of mutants or experimental treatments that perturb normal heart development. Xenopus embryos have been used to understand the induction of the cardiac field, the role of Nkx genes in cardiac development, and the role transforming growth factor beta molecules in the establishment and signaling of left-right axis information. Large-scale mutant screens in zebrafish and the development of transgenics in both Xenopus and zebrafish have accelerated the molecular identification of genes that regulate conserved steps in cardiovascular development.

Animals↗

Backtransplantation of chick cardiac neural crest cells cultured in LIF rescues heart development.

The cardiac neural crest is essential for normal development of the cardiovascular system. Cardiac neural crest cells are derived from the neural folds located between the mid-otic placodes and the caudal limit of somite 3. These crest cells can differentiate into a variety of mesenchymal cell types that support cardiovascular development, in addition to neurogenic cells. When cultured, many express alpha-smooth muscle actin or neurofilaments and lose their undifferentiated neural crest phenotype as shown by a decrease in HNK-1 reactivity. We wanted to determine whether cultured cardiac neural crest cells maintained the potency to support normal heart development when backtransplanted into embryos lacking their native cardiac neural crest. Under usual circumstances removal of the cardiac neural crest results in 80-100% incidence of persistent truncus arteriosus. The present study reports a system in which cardiac neural folds are cultured for 3 days and the cells backtransplanted into chick embryos after laser-induced ablation of the intrinsic cardiac neural folds. Rescue of heart development was improved 50% when cultured cells were backtransplanted and almost 200% when the backtransplanted cells had been cultured in leukemia inhibitory factor (LIF). To determine whether the cultured cells are capable of following normal migratory routes, cultured homospecific cardiac neural crest cells were tagged with DiI. Initially, fluorescent cells were found concentrated around the neural tube. By the second day following backtransplantation, the cells had migrated to the circumpharyngeal crest, populated the pharyngeal arches and aortic arch arteries, and were in the region of the cardiac outflow tract. By the third day, the labeled cells had dispersed, but could be found around the neural tube, esophagus, cardiac outflow tract, and within the dorsal root ganglia. Interestingly, a cranial migration to the periphery of the eyes was also noted. With the exception of the cranial migration to the eyes, cultured and backtransplanted cardiac neural crest cells followed normal migratory pathways to the cardiac outflow tract. LIF is used for the in vitro maintenance of the pluripotential phenotype of embryonic stem cells. In an effort to understand why LIF improves the ability of cultured neural crest cells to support normal heart development, we have examined the relationship of neural crest expression of HNK-1 antigen, alpha-smooth muscle actin, and neurofilament protein in neural crest cells cultured in LIF. LIF treatment resulted in an expanded period of expression of HNK-1 antigen, associated with a decrease in expression of alpha-smooth muscle actin.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

T-box transcription factors and their roles in regulatory hierarchies in the developing heart.

T-box transcription factors are important players in the molecular circuitry that generates lineage diversity and form in the developing embryo. At least seven family members are expressed in the developing mammalian heart, and the human T-box genes TBX1 and TBX5 are mutated in cardiac congenital anomaly syndromes. Here, we review T-box gene function during mammalian heart development in the light of new insights into heart morphogenesis. We see for the first time how hierarchies of transcriptional activation and repression involving multiple T-box factors play out in three-dimensional space to establish the cardiac progenitors fields, to define their subservient lineages, and to generate heart form and function.

Animals↗

Coordinate gene expression during neonatal rat heart development. A possible role for the myocyte in extracellular matrix biogenesis and capillary angiogenesis.

OBJECTIVE: Neonatal heart development is a period of active extracellular matrix deposition and capillary angiogenesis which follows the cessation of ventricular myocyte proliferation. The aim was to determine whether coordinate expression of growth factors by the ventricular myocyte could function to inhibit myocyte proliferation directly as well as indirectly by paracrine stimulation of non-myocyte extracellular matrix deposition and capillary angiogenesis. METHODS: Immunohistochemistry and northern blot hybridisations were performed on ventricular samples from fetal to mature animals of the spontaneously hypertensive (SHR) and normotensive control Wistar Kyoto (WKY) strains. RESULTS: Ventricular expression of types I, III, and IV collagen genes reached their "maximum" within the first 2-3 postnatal weeks and then rapidly declined. Expression of TGF beta 3 and SPARC were found to precede and accompany the changes in extracellular matrix gene expression during this same developmental period. TGF beta 3 was immunolocalised to fetal cardiomyocytes with very limited expression in neonatal/adult non-myocytes. Associated with the neonatal expression of TGF beta variants, transcripts for the type 2 IGF receptor gradually declined over the first three postnatal weeks. Myocyte TGF beta gene expression, latent TGF beta release, and paracrine mechanisms of action could be facilitated by residual type 2 IGF receptor expression to help mediate stimulation of non-myocyte extracellular matrix synthesis and deposition. CONCLUSIONS: Expression of select growth factors, growth factor receptors, and components of the extracellular matrix appear to be highly coordinated during ventricular remodelling which occurs during neonatal heart development. A paradigm is presented which integrates the expression patterns of various myocyte derived stimuli and their postulated impact on formation of the structural components of the neonatal heart by modulation of myocyte and non-myocyte cell types.

Animals↗

Tbx5 and Tbx4 transcription factors interact with a new chicken PDZ-LIM protein in limb and heart development.

The T-domain transcription factors, Tbx5 and Tbx4, play important roles in vertebrate limb and heart development. To identify interacting and potential Tbx-regulating proteins, we performed a yeast two-hybrid screen with the C-terminal domain of Tbx5 as bait. We identified a new PDZ-LIM protein composed of one N-terminal PDZ and three C-terminal LIM domains, which we named chicken LMP-4. Among the Tbx2, 3, 4, 5 subfamily, we observed exclusive interaction with Tbx5 and Tbx4 proteins. Tbx3 nor Tbx2 can substitute for LMP-4 binding. While chicken LMP-4 associates with Tbx5 or Tbx4, it uses distinct LIM domains to bind to the individual proteins. Subcellular co-localization of LMP-4 and Tbx proteins supports the protein interaction and reveals interference of LMP-4 with Tbx protein distribution, tethering the transcription factors to the cytoskeleton. The protein-protein interaction indicates regulation of Tbx function at the level of transcription factor nuclear localization. During chicken limb and heart development, Tbx5/LMP-4 and Tbx4/LMP-4 are tightly co-expressed in a temporal and spatial manner, suggesting that they operate in the same pathway. Surprisingly, chicken LMP-4 expression domains outside those of Tbx5 in the heart led to the discovery of Tbx4 expression in the outflow tract and the right ventricle of this organ. The Tbx4-expressing cells coincide with those of the recently discovered secondary anterior heart-forming field. The discrete posterior or anterior expression domains in the heart and the exclusive fore- or hindlimb expression of Tbx5 and Tbx4, respectively, suggest common pathways in the heart and limbs. The identification of a new Tbx5/4-specific binding factor further suggests a novel mechanism for Tbx transcription factor regulation in development and disease.

Amino Acid Sequence↗

Reaction-diffusion control of heart development: evidence for activation and inhibition in precardiac mesoderm.

In axolotl embryos homozygous for the cardiac-lethal (c) gene, the heart never begins to beat. Recently, we demonstrated that the c gene affects the heart mesoderm directly, making the latter incapable of responding to normal inductive stimuli. Based on these results, we proposed that a reaction-diffusion mechanism controls the later stages of vertebrate cardiogenesis. In the present study, we use a series of transplantations to examine the precardiac mesoderm of wild-type and cardiac-lethal mutant axolotl embryos for the activation and inhibition predicted by our model. When one or both heart primordia in c/c embryos were replaced with +/+ tissue at early stages, functional hearts developed, indicating that an activator-like activity is present in wild-type heart mesoderm. At later stages, replacement of the entire heart-field mesoderm also rescued mutant embryos, but replacement of only the heart-forming mesoderm did not, indicating that the mutant heart field has inhibitory properties. These results demonstrate that activator- and inhibitor-like factors are present in pre-cardiac mesoderm and thus provide evidence for reaction-diffusion control of postinductive heart development.

Ambystoma↗

[Spatial expression of cardiac alpha-actin during heart development in embryos].

OBJECTIVE: Conotruncal defects (CTD) is a common type of cyanotic congenital heart defects. It was shown that CTD might be produced by ablation of cardiac neural crest during early stage embryos in experimental studies. There were many kinds of genes involved and cardiac alpha-actin (CAA) was one of them. The purpose of this study was to investigate the spatial expression of CAA gene during embryonic heart development, and to explore its role in the pathogenesis of congenital heart defects. METHODS: Experimental chicken embryos were subjected to cardiac neural crest ablation by using electric stimulation at 36-40 hr incubation stage. The embryos and organs of experimental and normal control groups during different developing periods were taken out, RNA was extracted by Trizol, and then reverse transcription was done. The dynamic changes of CAA mRNA expression at different development stages of embryos were assayed by fluorescent real-time PCR. The embryos and tissues at different stages were taken out, and paraffin sections were made. The localizations of CAA antibody expression in the developmental embryos were detected by immunohistochemical analysis (peroxidase-DAB coloration). RESULTS: (1) The expression of CAA gene was detected at early embryo development, and increased subsequently to a stable level. Its expression was mainly limited to heart site, and could be increased along with the maturation of the cardiac muscle. There was no expression or little trace expression in liver, brain, and stomach. (2) There was a significantly low level of CAA gene expression on days 2-7 of chicken embryos whose cardiac neural crest were ablated in comparison with normal controls (P = 0.013). The level of CAA gene expression was also down-regulated on days 7, 9 and 15 of embryonic cardiac tissues (P = 0.029). CONCLUSION: CAA gene is closely associated with heart development, its expression was adjusted by cardiac neural crest, and its dysfunction may be an important factor leading to congenital heart defects.

Actins↗

Connective tissue growth factor expression and Smad signaling during mouse heart development and myocardial infarction.

Connective tissue growth factor (CTGF) is reported to be a target gene of transforming growth factor beta (TGFbeta) and bone morphogenetic protein (BMP) in vitro. Its physiological role in angiogenesis and skeletogenesis during mouse development has been described recently. Here, we have mapped expression of CTGF mRNA during mouse heart development, postnatal adult life, and after experimental myocardial infarction. Furthermore, we investigated the relationship between CTGF and the BMP/TGFbeta signaling pathway in particular during heart development in mutant mice. Postnatally, CTGF expression in the heart became restricted to the atrium. Strikingly, 1 week after myocardial infarction, when myocytes have disappeared from the infarct zone, CTGF and TGFbeta expression as well as activated forms of TGFbeta but not BMP, Smad effector proteins are colocalized exclusively in the fibroblasts of the scar tissue, suggesting possible cooperation between CTGF and TGFbeta during the pathological fibrotic response.

Aging↗

Functional conservation of zinc-finger homeodomain gene zfh1/SIP1 in Drosophila heart development.

Comparative genetic studies of diverse animal model systems have revealed that similar developmental mechanisms operate across the Metazoa. In many cases, the genes from one organism can functionally replace homologues in other phyla, a result consistent with a high degree of evolutionarily conserved gene function. We investigated functional conservation among the Drosophila zinc-finger homeodomain protein 1 (zfh1) and its mouse functional homologue Smad-interacting protein 1 (SIP1). Northern blot analyses of SIP1 expression patterns detected three novel variants (8.3, 2.7, and 1.9 kb) in addition to the previously described 5.3 kb SIP1 transcript. The two shorter novel SIP1 transcripts were encountered only in developing embryos and both lacked zinc-finger clusters or homeodomain regions. The SIP1 transcripts showed complex embryonic expression patterns consistent with that observed for Drosophila zfh1. They were highly expressed in the developing nervous systems and in a number of mesoderm-derived tissues including lungs, heart, developing myotomes, skeletal muscle, and visceral smooth muscle. The expression of the mammalian 5.3 kb SIP1 transcript in Drosophila zfh1 null mutant embryos completely restored normal heart development in the fly, demonstrating their functional equivalence in cardiogenic pathways. Our present data, together with the previously described heart defects associated with both SIP1 and Drosophila zfh1 mutations, solidify the conclusion that the zfh1 family members participate in an evolutionary conserved program of metazoan cardiogenesis.

Animals↗

Differential expression of tropomyosin during segmental heart development in Mexican axolotl.

The Mexican axolotl, Ambystoma mexicanum, serves as an intriguing model to investigate myofibril organization and heart development in vertebrates. The axolotl has a homozygous recessive cardiac lethal gene "c" which causes a failure of ventricular myofibril formation and contraction. However, the conus of the heart beats, and has organized myofibrils. Tropomyosin (TM), an essential component of the thin filament, has three known striated muscle isoforms (TPM1alpha, TPM1kappa, and TPM4alpha) in axolotl hearts. However, it is not known whether there are differential expression patterns of these tropomyosin isoforms in various segments of the heart. Also, it is not understood whether these isoforms contribute to myofibril formation in a segment-specific manner. In this study, we have utilized anti-sense oligonucleotides to separately knockdown post-transcriptional expression of TPM1alpha and TPM4alpha. We then evaluated the organization of myofibrils in the conus and ventricle of normal and cardiac mutant hearts using immunohistochemical techniques. We determined that the TPM1alpha isoform, a product of the TPM1 gene, was essential for myofibrillogenesis in the conus, whereas TPM4alpha, the striated muscle isoform of the TPM4 gene, was essential for myofibrillogenesis in the ventricle. Our results support the segmental theory of vertebrate heart development.

Ambystoma mexicanum↗

Direct activation of a GATA6 cardiac enhancer by Nkx2.5: evidence for a reinforcing regulatory network of Nkx2.5 and GATA transcription factors in the developing heart.

The zinc finger transcription factors GATA4, -5, and -6 and the homeodomain protein Nkx2.5 are expressed in the developing heart and have been shown to activate a variety of cardiac-specific genes. To begin to define the regulatory relationships between these cardiac transcription factors and to understand the mechanisms that control their expression during cardiogenesis, we analyzed the mouse GATA6 gene for regulatory elements sufficient to direct cardiac expression during embryogenesis. Using beta-galactosidase fusion constructs in transgenic mice, a 4.3-kb 5' regulatory region that directed transcription specifically in the cardiac lineage, beginning at the cardiac crescent stage, was identified. Thereafter, transgene expression became compartmentalized to the outflow tract, a portion of the right ventricle, and a limited region of the common atrial chamber of the embryonic heart. Further dissection of this regulatory region identified a 1.8-kb cardiac-specific enhancer that recapitulated the expression pattern of the larger region when fused to a heterologous promoter and a smaller 500-bp subregion that retained cardiac expression, but was quantitatively weaker. The GATA6 cardiac enhancer contained a binding site for Nkx2.5 that was essential for cardiac-specific expression in transgenic mice. These studies demonstrate that GATA6 is a direct target gene for Nkx2.5 in the developing heart and reveal a mutually reinforcing regulatory network of Nkx2.5 and GATA transcription factors during cardiogenesis.

Animals↗

Creation of chimeric mutant axolotls: a model to study early embryonic heart development in Mexican axolotls.

The Mexican axolotl (Ambystoma mexicanum) provides an excellent model for studying heart development since it carries a cardiac lethal mutation in gene c that results in failure of contraction of mutant embryonic myocardium. In cardiac mutant axolotls (c/c) the hearts do not beat, apparently because of an absence of organized myofibrils. To date, there has been no way to analyze the genotypes of embryos from heterozygous spawnings (+/c x +/c) until stage 35 when the normal (+/c or +/+) embryos first begin to have beating hearts; mutant (c/c) embryos fail to develop normal heartbeats. In the present study, we created chimeric axolotls by using microsurgical techniques. The general approach was to transect tailbud embryos and join the anterior and posterior halves of two different individuals. The chimeric axolotl is composed of a normal head and heart region (+/+), permitting survival and a mutant body containing mutant gonads (c/c) that permits the production of c/c mutant offspring: 100% c/c offspring were obtained by mating c/c chimeras (c/c x c/c). The mutant phenotypes were confirmed by the absence of beating hearts and death at stage 41 in 100% of the embryos. Examination of the mutant hearts with electron microscopy and comfocal microscopy after immunofluorescent staining for tropomyosin showed identical images to those described previously in naturally-occurring c/c mutant axolotls (i.e., lacking organized sarcomeric myofibrils). These "c/c chimeric" axolotls provide a useful and unique way to investigate early embryonic heart development in cardiac mutant Mexican axolotls.

Ambystoma↗