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Nkx-2.5 gene induction in mice is mediated by a Smad consensus regulatory region.

In the forming vertebrate heart, bone morphogenetic protein signaling induces expression of the early cardiac regulatory gene nkx-2.5. A similar regulatory interaction has been defined in Drosophila embryos where Dpp signaling mediated by the Smad homologues Mad and Medea directly regulates early cardiac expression of tinman. A conserved cluster of Smad consensus binding sequences was identified in early cardiac regulatory sequences of the mouse nkx-2.5 gene. The importance of the nkx-2.5 Smad consensus region in early cardiac gene expression was examined in transgenic mice and in cultured mouse embryos. In transgenic mice, deletion of the Smad consensus region delays induction of embryonic DeltaSmadnkx-2.5/lacZ gene expression during early heart formation. Induction of DeltaSmadnkx-2.5/lacZ expression is also delayed in the outflow tract myocardium and visceral mesoderm. Targeted mutation of the three Smad consensus sequences inhibited nkx-2.5/lacZ expression in the cardiac crescent, demonstrating a specific requirement for the Smad consensus sites in early cardiac gene induction. Cultured DeltaSmadnkx-2.5/lacZ transgenic mouse embryos also exhibit delayed induction of transgene expression. In the four-chambered heart, deletion of the Smad consensus region resulted in expanded DeltaSmadnkx-2.5/lacZ transgene expression. Thus, the nkx-2.5 Smad consensus region can have positive or negative regulatory function, depending on the developmental context and cellular environment.

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Cell movements during gastrulation: come in and be induced.

The conversion of an epithelial monolayer into a multilayered structure consisting of the three germ layers, ectoderm, mesoderm and endoderm, constitutes a conserved theme in the early development of animals. This is accomplished by morphogenetic movements that occur during gastrulation and serve not only to generate shape but also to ensure that cells receive the right signals at the right time. Recent evidence of the role of molecular interactions facilitated by cell movements in continuously defining the chick 'organizer' during gastrulation challenges the notion that it is a fixed cell population derived from an exclusive cell lineage.

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Teaching resource. Beta-catenin signaling and axis specification.

This animation provides a representation of the beta-catenin signaling pathway in response to fertilization and the process of axis specification that occurs early in development. The process shown is based on analysis of embryos of the amphibian Xenopus. This animation would be useful in illustrating events that occur early in embryogenesis and how embryos become polarized as a consequence of localized signaling processes.

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Induction of bile ducts in embryonic liver by mesenchyme: a new perspective for the treatment of biliary atresia?

Presently only those forms of Extrahepatic Biliary Atresia (EHBA) with minimal or no intrahepatic manifestations can be treated successfully by extensive hepatoportoenterostomy. Intraoperative macro- and microscopic observations show that the typical pathogenetic manifestations in EHBA are most prominent at the porta hepatis. We therefore postulate that EHBA is the result of a defective embryonic development of the porta hepatis. In rat embryos hepatic bile duct formation is initiated at the porta hepatis and in this context mesenchyme from the periportal region seems to play a major inductive role. In order to demonstrate the role of invading periportal mesenchyme for the process of bile duct rudiment formation we established an organ culture model of the embryonic porta hepatis by recombining periportal mesenchyme with peripheral liver fragments from 15 days old rat embryos (Carnegie Stage 21). The degree of mesenchyme invasion as well as the formation of mesenchyme-surrounded liver cell clusters, rosettes or vesicles (bile duct rudiments) were assessed. Mesenchyme from the porta hepatis invaded the peripheral liver fragments and induced the formation of mesenchyme-surrounded liver cell clusters and rosettes with the beginning of lumen formation. Kidney mesenchyme recombined with liver fragments as a mesenchymal alternative showed almost the same effect, lung mesenchyme showed only a very weak inductive effect. To assess the effect of a diffusible factor versus direct cell contact, a millipore filter with and without paraffin coating was interposed between mesenchyme containing tissue and peripheral liver tissue fragments. Without direct cell contact to mesenchyme no hepatoblast cluster or rosette formation could be observed. Comparing this result to the normal development of the liver in rats our investigations suggest that the embryogenesis of the porta hepatis is probably defined by the following two developmental steps: First, differentiation of the intrahepatic bile duct system which is induced by invading mesenchyme originating from the extrahepatic periportal region and realized by epithelium mesenchyme interaction. Second, fusion of extra- and intrahepatic bile duct systems at the level of the later porta hepatis. Disturbances of this complex process can possibly lead to biliary atresia. Further investigations regarding details of the role of the mesenchyme, its inductive factors and the kidney mesenchyme's inductive potential in liver development may provide a new perspective for future treatment of biliary atresia.

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Dynamic infrared imaging of cardiac pacemaker induction and cortical muscle contractions of embryonic avian heart.

The dynamic nature of electromagnetic (EM) pacemaker induction of cardiac tissue contractions in cultured embryonic avian heart was analyzed with noninvasive real time infrared (IR) imaging at normal physiological conditions. This technique was used to visualize the endogenous sarcomeric Ca2+ oscillation induced cortical IR-EM radiation within an 8-12 micron IR emission spectra. The results reported here establishes the fact that cardiac energetics produce topographical IR-EM radiation that can be visualized directly without invasive dyes or external light sources to noninvasively study the mechanisms of striated muscle tissue morphogenesis. Since IR microscopy capitalizes on imaging the inherent radiation from biological molecules in tissue, no external light sources are needed to reflect a visual spectrum. These findings provide the framework for future noninvasive investigations and characterizations of the endogenous energetics in living cells.

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Expression of activin mRNA during early development in Xenopus laevis.

Activins are members of the transforming growth factor-beta superfamily, a class of peptide growth factors that can regulate the growth and differentiation of a variety of cell types. In mesoderm induction assays, activins A and B were shown to be very potent inducers and it was only recently demonstrated that they are crucial for initial mesoderm induction in Xenopus embryos. To determine the source of activin protein for initial mesoderm induction and to investigate whether activins may play further roles in embryonic development we have examined the localization of the mRNAs encoding the activin beta A and beta B subunits in Xenopus embryos. Activin beta A and beta B mRNAs are found in the follicle cells surrounding oocytes but not in oocytes themselves or fertilized eggs. During embryogenesis activin mRNA is first detected after the midblastula transition and expression increases as development proceeds. Activin beta B mRNA is homogeneously distributed during blastula and early gastrula stages but restricted to the dorso-anterior region in neurula stage embryos. At the early tailbud stage activin expression becomes confined to the brain, eye analgen, visceral pouches, otic vesicles, and the anterior notochord.

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Xenopus laevis POU91 protein, an Oct3/4 homologue, regulates competence transitions from mesoderm to neural cell fates.

Cellular competence is defined as a cell's ability to respond to signaling cues as a function of time. In Xenopus laevis, cellular responsiveness to fibroblast growth factor (FGF) changes during development. At blastula stages, FGF induces mesoderm, but at gastrula stages FGF regulates neuroectoderm formation. A Xenopus Oct3/4 homologue gene, XLPOU91, regulates mesoderm to neuroectoderm transitions. Ectopic XLPOU91 expression in Xenopus embryos inhibits FGF induction of Brachyury (Xbra), eliminating mesoderm, whereas neural induction is unaffected. XLPOU91 knockdown induces high levels of Xbra expression, with blastopore closure being delayed to later neurula stages. In morphant ectoderm explants, mesoderm responsiveness to FGF is extended from blastula to gastrula stages. The initial expression of mesoderm and endoderm markers is normal, but neural induction is abolished. Churchill (chch) and Sip1, two genes regulating neural competence, are not expressed in XLPOU91 morphant embryos. Ectopic Sip1 or chch expression rescues the morphant phenotype. Thus, XLPOU91 epistatically lies upstream of chch/Sip1 gene expression, regulating the competence transition that is critical for neural induction. In the absence of XLPOU91 activity, the cues driving proper embryonic cell fates are lost.

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Efficient induction of oligodendrocytes from human embryonic stem cells.

Oligodendrocytes form myelin sheaths around axons to support rapid nerve conduction in the central nervous system (CNS). Damage to myelin can cause severe CNS disorders. In this study, we attempted to devise a protocol for the induction of oligodendrocytes from human embryonic stem (ES) cells to treat demyelinated axons. Four days after embryoid body formation, human ES cells were differentiated into neural precursors through selection and expansion procedures. Neural precursors were then grown in the presence of epidermal growth factor and then platelet-derived growth factor to generate oligodendrocyte precursor cells. After withdrawal of the growth factors, the cells were treated with thyroid hormone to induce differentiation into oligodendrocytes. This method resulted in approximately 81%-91% oligodendrocyte precursor cells and approximately 81% oligodendrocytes among total cells. The ability of the oligodendrocyte precursors to myelinate axons has been verified by coculturing with rat hippocampal neurons, confirming their biological functionality.

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Wnts as kidney tubule inducing factors.

Since the discovery that inductive tissue interactions regulate nephrogenesis, one of the aims has been to identify the molecules that mediate this induction. The small size of embryonic tissue has limited the possibilities to identify the inducers biochemically, even though such efforts were directed to study, e.g. neural induction (for a comprehensive review, Saxén and Toivonen, Primary embryonic induction, Academic Press, London, 1962). The rapid progress in molecular biology made it possible to identify genes from minute amounts of tissue and provided techniques to generate recombinant proteins to assay their action in classic experimental systems. This led to the identification of some signals that are involved in primary and secondary inductive interactions during embryogenesis. Here, we will review evidence suggesting that secreted signaling molecules from the Wnt gene family mediate kidney tubule induction.

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[The effect of microinjection of anti-TGF beta-1 antibodies on the early development of Xenopus laevis].

In order to testify the function of the TGF beta related protein, we microinjected the antibodies against the TGF beta-1 to one blastomere of two-cell stage embryos. Dosages of antibodies injected were 24-36 ng, 12 -18 ng, 6-9 ng and 1.5-2.25 ng. Malformed embryos with exposed yolk mass were produced. They were designated as YE-1, YE-2 and YE-3 according to the degree of malformation which was found to be related to the dosage of antibodies injected to the blastomere. These malformed embryos could normally develop to blastula, but the yolk mass was exposed on the injection half during gastrulation. In the group with the highest dosage, the most seriously affected embryos belong to the YE-1. For most of them, no muscle tissue could be found from head to tail in the injection half, the development of mesoderm seemed to be thoroughly inhibited. YE-2 was the group with decreased dosage, small block of muscle tissue was usually observed in the injection half. YE-3 was the least affected group with the injection half containing blocks of muscle tissue similar to that of the non-injection half. The different groups of malformations seemed to be related to the degree and range of interference on gastrulation. In the group with highest dosage, the gastrulation of the entire injection half seemed to be prohibited, and YE-1 was produced. In the groups with lower dosages, only part of injection half was interfered, and YE-3 v and YE-3 d were resulted. From the results mentioned above, we concluded that TGF beta-related protein are not only present in the early embryos of Xenopus laevis, but also may be concerned with mesoderm induction.

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