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The nature of the mesoderm-inducing signal in Xenopus: a transfilter induction study.

A transfilter apparatus is described, which is suitable for neutralization experiments on embryonic induction, and it is used to investigate the sensitivity of the Xenopus mesoderm-inducing signal to various inhibitors. The vegetal (inducing) tissue is placed on one side of a membrane sandwich and the animal (responding) tissue on the other side. The sandwich consists of a nylon gauze in between two Nucleopore filters and enables inhibitors in the solution to have effective access to the gap between the tissues. Control experiments show a high proportion of positive inductions of a ventral character. Using this apparatus, it is shown that the protein follistatin, which effectively inhibits activin A and B in vitro, has little or no effect on the natural signal. Likewise, antibodies to basic fibroblast growth factor, which inhibit in vitro, do not inhibit the natural signal. The two inhibitors together have a slight effect. It is concluded that neither activin nor bFGF are major components of the signal emitted by the vegetal cells of the Xenopus blastula and transmitted across the liquid gap, although they might have some other role to play in the process. Two agents of lower specificity do inhibit the transfilter induction: heparin and suramin. Suramin will also inhibit induction in animal-vegetal combinations with no intervening membranes while heparin does not. This suggests that the heparin inhibition can only occur when there is a liquid gap between the tissues, presumably because it can neutralize the signal in solution but cannot penetrate the explants themselves. The endogenous mesoderm-inducing factor(s) should therefore be sensitive to heparin in vitro.

Animals↗

Identification of genes that interact with glp-1, a gene required for inductive cell interactions in Caenorhabditis elegans.

The glp-1 gene functions in two inductive cellular interactions and in development of the embryonic hypodermis of C. elegans. We have isolated six mutations as recessive suppressors of temperature-sensitive (ts) mutations of glp-1. By mapping and complementation tests, we found that these suppressors are mutations of known dumpy (dpy) genes; dpy genes are required for development of normal body shape. Based on this result, we asked whether mutations previously isolated in screens for mutants defective in body shape could also suppress glp-1(ts). From these tests, we learned that unselected mutations of eight genes required for normal C. elegans morphogenesis, including the four already identified, suppress glp-1(ts). All of these suppressors rescue all three mutant phenotypes of glp-1(ts) (defects in embryonic induction of pharyngeal tissue, in embryonic hypodermis development, and in induction of germline proliferation). However, they do not rescue putative glp-1 null mutants and therefore do not bypass the requirement for glp-1 in development. In the light of current ideas about the molecular nature of the glp-1 and suppressor gene products, we propose an interaction between the glp-1 protein and components of the extracellular matrix and speculate that this interaction may impose spatial constraints on the decision between mitosis and meiosis in the germline.

Alleles↗

A dynamic switch in the replication timing of key regulator genes in embryonic stem cells upon neural induction.

Mammalian embryonic stem (ES) cells can either self-renew or generate progenitor cells that have a more restricted developmental potential. This provides an important model system to ask how pluripotency, cell commitment and differentiation are regulated at the level of chromatin-based changes that distinguish stem cells from their differentiated progeny. Here we show that the differentiation of ES cells to neural progenitors results in dynamic changes in the epigenetic status of multiple genes that encode transcription factors critical for early embryonic development or lineage specification. In particular, we demonstrate that DNA replication at a subset of neural-associated genes including Pax3, Pax6, Irx3, Nkx2.9 and Mash1 is advanced upon neural induction, consistent with increased locus accessibility. Conversely, many ES-associated genes including Oct4, Nanog, Utf1, Foxd3, Cripto and Rex1 that replicate early in ES cells switch their replication timing to later in S-phase in response to differentiation. Detailed analysis of the Rex1 locus reveals that delayed replication extends to a 2.8 Mb region surrounding the gene and is associated with substantial reductions in the level of histone H3K9 and H4 acetylation at the promoter. These results show that loss of pluripotency (and lineage choice) is associated with extensive and predictable changes in the replication timing of key regulator genes.

Animals↗

Neural induction is mediated by cross-talk between the protein kinase C and cyclic AMP pathways.

Embryonic inductions appear to be mediated by the concerted action of different inducing factors that modulate one another's activity. Such modulation is likely to reflect interactions between the signal transduction pathways through which the inducing factors act. We tested this idea for the induction of neural tissue. We report that both adenylate cyclase activity and cAMP concentration increase substantially in induced neuroectoderm during neural induction. The enhancement of adenylate cyclase activity requires protein kinase C (PKC) activation, indicating cross-talk between these two signal transduction pathways. This cross-talk appears to be essential for neural induction. Whereas cAMP analogs alone were not neural inducers, they had a synergistic inducing effect if ectoderm was first incubated with TPA (12-O-tetradecanoylphorbol 13-acetate), a PKC activator. These results strongly suggest that at least two signals mediate neural induction. The first signal activates PKC and the second signal then activates the cAMP pathway effectively.

8-Bromo Cyclic Adenosine Monophosphate↗

Transfilter studies on neural induction in the newt.

In order to study the transmission mechanism of neuralising signals during primary embryonic induction, the interacting components (competent newt gastrula ectoderm and dorsal lip tissues) were separated by filter membranes of varying pore size. Nuclepore filters with nominal pore size from 0.1 to 8 mum were employed and the neuralising effect was shown to traverse all of these membranes. Electron microscopic examination did not reveal any cytoplasmic processes in the pores and the authors conclude that the morphogenetic signals are carried by transmissable compounds rather than through direct cytoplasmic contacts.

Animals↗

Inductive characteristics of proteins secreted by retinal cells.

The studies of the development of eye rudiments and formation of adult eye tissues have always been among priorities in developmental biology and then in developmental genetics, which is associated with the peculiarities of the development and structure of the eye. In the late 80s, it was established by the group of developmental factors of the Institute of Gene Biology of RAS that many differentiated tissues are able to produce proteins causing homologous differentiations in polypotent cells of early gastrula ectoderm. The aim of our present study was isolation of proteins secreted by mammalian and fish retinal cells and determination of their inductive properties in early gastrula ectoderm of Xenopus laevis. The sets of proteins secreted by retina induce tissues homologous to the inducer, that is, neural tissue, brain, retina, pigmented epithelium, and also lenses and ear vesicles. The retinal inductive proteins retain their homologous inductive capacity after lyophilization. Biological testing shows that a total mixture of proteins secreted by retinal cells induces in polypotent gastrula ectoderm of X. laevis a narrower spectrum of tissues than the fractions obtained from this mixture. The above-outlined results obtained in thecourse of investigations of inductive peculiarities of retina and its fractions help in the elucidation of questions concerning embryonic induction and factors determining it, as well as questions concerning the maintenance of tissue specifity and regenerative capacity of the tissue studied.

Animals↗

Born in a follicle--a historical perspective.

A review of major studies of tetrapod skin development since the 1870s illustrates how knowledge of structure and mechanism progressed through phases emphasizing Natural History, morphology, endocrinology, and tissue manipulation prior to the prevailing "molecular era." Each successive phase of investigation, while suffering from its own limitations and constraints, has produced conceptual advances. At various times, different systems in various organisms have been research models of choice for practical and/or technical reasons. Comparative studies of scaled and non-scaled integuments and appendages thereof, e.g., nails, claws, glands, hair, and especially feathers, revealed data that suggested new directions for research programs. Some non-mammalian models still offer unique opportunities for pursuit of specific questions pertinent to studies of hair: arguments between American and British schools concerning feather development that originated in the 1930s remain unresolved and may thus affect interpretation of recent investigations. The current emphasis on the study of diffusible molecules involved in papilla-follicle interactions in hair development and replacement can only be understood in the context of the interwoven history of questions relating sequentially to evolutionary homology, physiological controls of tissue homeostasis, embryonic induction, and, most recently, molecular genetics.

Animals↗

Cardiac mutant salamanders: evidence for heart induction.

Homozygosity for gene c in Ambystoma mexicanum results in no detectable heartbeat in situ. Alteration of the cardiac environment through organ culture results in rapid initiation of spontaneous heartbeat, indicating that absence of cardiac function in situ is not the result of failure of embryonic induction.

Ambystoma↗

Antibodies to liver cell adhesion molecule perturb inductive interactions and alter feather pattern and structure.

Cell adhesion molecules (CAMs) may act as regulators of morphogenesis by constraining cell motion, forming borders, and controlling intercellular communications that lead to embryonic induction. This postulated causal role of CAMs in inductive events was tested here in an in vitro system of feather induction. In the developing chicken skin, an ectodermal sheet of epithelium interacts with mesodermal cell collectives to form more or less circular feather germs arranged in a hexagonal pattern. Cells of the epidermal epithelium are linked by liver CAM (L-CAM) and mesodermal cells in dermal condensations are linked by neural CAM (N-CAM); neither of these CAMs links cells in one tissue of this inductive couple to cells in the other. After perturbation of the L-CAM linkage in epidermis by antibodies to L-CAM, nonhexagonal striped patterns of dermal condensations were observed in culture. The stripes did not follow straight lines but meandered in lateral and oblique directions. Histological examination of the perturbed tissues showed extensive changes in dermal cell density distributions. After 10 days of culture, the perturbed tissues developed a cobbled or plaque-like morphology resembling scales rather than the feather-like filamentous structures that formed in unperturbed skin cultures. The results indicate that perturbation of CAM binding in tissues linked by one CAM can alter fates and interactions of cells linked by another, presumably by altering the amount or effect of inductive signals crossing the border between the inducing cell collectives. A computer model based on the notion that the response of L-CAM-linked epidermal cells to signals from N-CAM-linked dermal cells depends cooperatively on the degree of L-CAM linkage was found to generate hexagonal patterns for the unperturbed case and stripes after perturbation of L-CAM bonds.

Animals↗

Nature and origin of patterns of changes in cell shape in embryos.

Spatial patterns of the future elongation of cells exist in the early embryo. In the newt, such a pattern of changes of cell shape contributes to the formation of the neural plate. Regardless of where neural plate cells are transplanted, they change shape as prescribed by the pattern. Embryonic induction has a role in establishing this pattern.

Animals↗

[Experimental embryologic, biochemical and molecular biology approaches to the identification of embryonic inducers].

Problems of the mechanisms of embryonic induction in vertebrate development have been considered on the basis of author's experimental data. Though several polypeptide factors with certain inducing activity have been identified recently, molecular genetic mechanisms of their effect on embryonic target cells remains largely unclear. One of possible causes of very slow progress in this area of developmental biology is an inadequate system of biotesting of inducers at tissue level (ectoderm of early amphibian gastrulae) using histological criteria. A necessity for carrying out similar studies on cellular level and estimating effect of inducers using immunochemical and molecular biological methods has been postulated. Methods allowing to carry out biotesting of inducers on cell suspension or aggregate of a one type of embryonic cells have been proposed. New approaches, combining the methods of experimental embryology and molecular biology, to studies of embryonic inducers, receptors, and their mRNA, have been analyzed.

Amphibians↗

The organizer concept and modern embryology: Anglo-American perspectives.

This paper analyses the origins of the Spemann-Mangold organizer concept of 1924 in relation to his earlier background and concepts. It traces the consequences and fate of the organizer, and related concepts (embryonic induction, gradients, fields) through subsequent phases in the evolution of developmental biology up to the present, primarily from a UK perspective, but also in the USA. The origins of Wolpert's concept of positional information of around 1970 are analysed; this markedly different model of embryogenesis effectively took the place of the organizer, following on from a generally assumed out-datedness of the corpus of Spemann's data and concepts. Explanations in terms of historical forces are suggested; events are seen as a historical causal chain. A crucial factor appears to have been the long-term neglect of morphogenetic cell movement as an integral component of an adequate induction-based model. The paper discusses the general inter-relation of history and science, and particularly the implications for current scientific practice, including the potential for conceptual distortions due to historical factors. It is argued that historical considerations need to be included as part of the use and critical assessment of basic concepts in science.

Animals↗

[Mechanisms of transdifferentiation and their relation to induction and competence].

The ways of transdifferentiation are considered: spontaneous and induced. Spontaneous transdifferentiation taking place after the disaggregation of cells in the clonal and cell cultures is determined by the competence of the transforming cells themselves. Induced transdifferentiation is determined not only by the competence but also by the effect of external inducing factors. It is suggested that the direction of induced transdifferentiation depends on the ratio between the external and internal inducing factors and on the character of cell cycles. It is probable that the inducing factors entering the cells during the early embryonic induction are reproduced in the cells in a dormant state and some of them do not reveal their presence until appropriate conditions are set. When the cells are isolated in the cultures, the ratio of these factors inside the cell changes and a competence to transdifferentiation is revealed which arises as early as during induction.

Animals↗

Role of activin and other peptide growth factors in body patterning in the early amphibian embryo.

The amphibian body plan is established as the result of a series of inductive interactions. During early cleavage stages cells in the vegetal hemisphere induce overlying animal hemisphere cells to form mesoderm. The interaction represents the first major body-patterning event and is mediated by peptide growth factors. Various peptide growth factors have been implicated in mesoderm development, including most notably members of the transforming growth factor-beta superfamily. Identification of the so-called "natural" inducer from among the several candidate peptide growth factors is being achieved by employing several experimental strategies, including the use of a tissue explant assay for testing potential inducers, cloning of marker genes as indices of early induction events, and microinjection of altered peptide growth factor receptors to disrupt normal embryonic inductions. Activin emerges as the most likely choice for assignment of the role of endogenous mesoderm inducer, because it currently best fulfills the rigorous set of criteria expected of such an important embryonic signaling molecule. Activin, however, may not act alone in mesoderm induction. Other peptide growth factors such as fibroblast growth factor might be involved, especially in the regional patterning of the mesoderm. In addition, several genes (e.g., Wnt and noggin), which are expressed after the mesoderm is initially induced, probably assist in further definition of the mesoderm pattern. Following mesoderm induction, the primary embryonic organizer tissue (first described in 1924 by Spemann) develops and contributes further to body patterning by its action as a neural inducer. Peptide growth factors such as activin may also be involved in the inductive event, either directly (by facilitating gene expression) or indirectly (by serving to constrain pathways).

Activins↗

[Morphogens: experimental illusion or reality?].

The main attention is paid to the critical analysis of experimental data on morphogenetically active substances, so called "morphogens". It is proposed to consider the morphogens as specific transmitters providing for definite phases of morphogenetic tissues interactions, rather than as vectors of "morphogenetic information". In the normal development, the most studied morphogenetic tissue interactions can be referred to as so called permissive inductions, since the cells of the vertebrate embryos (amphibians, avians) are early determined for development in the ectomeso--and endodermal directions. A slow progress in studying the morphogens can be due to the following causes. 1. Theoretical "inadequacy" of the former concepts on the essence and mechanisms of embryonic induction. The necessity to develop a new system of concepts in this area of developmental biology is stressed. 2. Incompleteness of knowledge about the properties of reacting tissues and the mechanisms of action of morphogens. The early gastrula ectoderm of amphibians, most frequently used for testing the morphogens, appears to be a heterogenous population of the cells with different properties and potencies. It is, therefore, impossible to standardize strictly the biotesting of morphogens. It is suggested that the use to this end of aggregates of cell "strains" from the gastrula ectoderm, rather than of the gastrula ectoderm itself, may be more adequate 3. Insufficiency of embryonic material for biochemical identification and isolation of natural morphogens. A study of so called heterogenous inductors might be of help; these latter can be considered as analogs of natural morphogens. But the similarity of natural and heterogenous inductors can be limited only by their final effect on target tissue. The data are provided on the chemical nature, properties and mechanisms of action for a number of natural and heterogenous inductors (vegetalizing, neuralizing, mesodermalizing, lens-inducing factors). A conclusion is drawn that specific antigens do exist normally but they should not be established as a special class of "informationally important" molecules. The information necessary for development is contained in target cells and the function of a morphogen consists in providing for a definite link in the chain of processes leading to the switching on or expression of one or another programme. Only syntheses of specific proteins can, apparently, be programmed, thus reflecting the "onset" of differentiation path for a cell.

Amphibians↗

Chasing tails in ascidians: developmental insights into the origin and evolution of chordates.

The ascidian tadpole larva is regarded as a prototype of the ancestral chordate. Here we consider recent studies on the development of the tadpole larva that provide new insights into chordate origins and evolution. The notochord of ascidian larvae and vertebrates appear to be homologous structures based on their induction by endoderm and expression of the Brachyury (T) gene. The muscle cells of ascidian larvae also appear homologous to those of vertebrates based on their expression of bHLH myogenic and muscle-type actin genes, although they are specified by cytoplasmic determinants localized in the egg as well as embryonic induction. Studies of the tailless larvae of anural ascidians have resulted in the identification of Manx, a gene that may control tail development and evolution. These and other results support the ascidian tadpole prototype for the ancestral chordate.

Actins↗

Activin A induces craniofacial cartilage from undifferentiated Xenopus ectoderm in vitro.

Activin A has potent mesoderm-inducing activity in amphibian embryos and induces various mesodermal tissues in vitro from the isolated presumptive ectoderm. By using a sandwich culture method established to examine activin A activity, we previously demonstrated that activin-treated ectoderm can function as both a head and trunk-tail organizer, depending on the concentration of activin A. By using activin A and undifferentiated presumptive ectoderm, it is theoretically possible to reproduce embryonic induction. Here, we test this hypothesis by studying the induction of cartilage tissue by using the sandwich-culture method. In the sandwiched explants, the mesenchymal cell condensation expressed type II collagen and cartilage homeoprotein-1 mRNA, and subsequently, cartilage were induced as they are in vivo. goosecoid (gsc) mRNA was prominently expressed in the cartilage in the explants. Xenopus distal-less 4 (X-dll4) mRNA was expressed throughout the explants. In Xenopus embryos, gsc expression is restricted to the cartilage of the lower jaw, and X-dll4 is widely expressed in the ventral head region, including craniofacial cartilage. These finding suggest that the craniofacial cartilage, especially lower jaw cartilage, was induced in the activin-treated sandwiched explants. In addition, a normal developmental pattern was recapitulated at the histological and genetic level. This work also suggests that the craniofacial cartilage-induction pathway is downstream of activin A. This study presents a model system suitable for the in vitro analysis of craniofacial cartilage induction in vertebrates.

Activins↗