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Retinoic acid modifies mesodermal patterning in early Xenopus embryos.

Treatment of early Xenopus embryos with retinoic acid (RA) produces a concentration-dependent series of defects in anterior axial structures that range from small deletions to embryos lacking heads. The graded series of axial defects obtained after RA administration to early embryos appears to result, in part, from actions of RA on embryonic mesoderm. RA modifies the differentiation of anterior dorsal mesoderm from animal cap ectoderm induced by mesoderm-inducing peptide growth factors (PGFs). Concentrations of RA that suppress anterior dorsal mesoderm result in the differentiation of mesoderm of more posterior or ventral character. The suppression of anterior dorsal mesoderm may account for the absence of anterior neural ectoderm after RA treatment. Although RA changes the character of mesoderm, it does not seem to affect mesodermal induction by PGFs or the levels of Xhox3 mRNA induced in the mesoderm by PGFs. RA therefore appears to affect steps downstream from those involved in the initial induction of mesoderm. In experiments to examine the possible physiological role of RA in early Xenopus development, dorsal and ventral ectoderm were found to respond differently to identical concentrations of PGFs. One potential basis for this heterogeneity is the existence of a localized inhibitor, possibly RA, in the early Xenopus embryo. RA could therefore contribute to axial patterning by inhibiting the development of mesoderm of different character induced by PGFs.

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Zebrafish fgf24 functions with fgf8 to promote posterior mesodermal development.

Fibroblast growth factor (Fgf) signaling plays an important role during development of posterior mesoderm in vertebrate embryos. Blocking Fgf signaling by expressing a dominant-negative Fgf receptor inhibits posterior mesoderm development. In mice, Fgf8 appears to be the principal ligand required for mesodermal development, as mouse Fgf8 mutants do not form mesoderm. In zebrafish, Fgf8 is encoded by the acerebellar locus, and, similar to its mouse otholog, is expressed in early mesodermal precursors during gastrulation. However, zebrafish fgf8 mutants have only mild defects in posterior mesodermal development, suggesting that it is not the only Fgf ligand involved in the development of this tissue. We report here the identification of an fgf8-related gene in zebrafish, fgf24, that is co-expressed with fgf8 in mesodermal precursors during gastrulation. Using morpholino-based gene inactivation, we have analyzed the function of fgf24 during development. We found that inhibiting fgf24 function alone has no affect on the formation of posterior mesoderm. Conversely, inhibiting fgf24 function in embryos mutant for fgf8 blocks the formation of most posterior mesoderm. Thus, fgf8 and fgf24 are together required to promote posterior mesodermal development. We provide both phenotypic and genetic evidence that these Fgf signaling components interact with no tail and spadetail, two zebrafish T-box transcription factors that are required for the development of all posterior mesoderm. Last, we show that fgf24 is expressed in early fin bud mesenchyme and that inhibiting fgf24 function results in viable fish that lack pectoral fins.

Amino Acid Sequence↗

FoxD3 regulation of Nodal in the Spemann organizer is essential for Xenopus dorsal mesoderm development.

Induction and patterning of the mesodermal germ layer is a key early step of vertebrate embryogenesis. We report that FoxD3 function in the Xenopus gastrula is essential for dorsal mesodermal development and for Nodal expression in the Spemann organizer. In embryos and explants, FoxD3 induced mesodermal genes, convergent extension movements and differentiation of axial tissues. Engrailed-FoxD3, but not VP16-FoxD3, was identical to native FoxD3 in mesoderm-inducing activity, indicating that FoxD3 functions as a transcriptional repressor to induce mesoderm. Antagonism of FoxD3 with VP16-FoxD3 or morpholino-knockdown of FoxD3 protein resulted in a complete block to axis formation, a loss of mesodermal gene expression, and an absence of axial mesoderm, indicating that transcriptional repression by FoxD3 is required for mesodermal development. FoxD3 induced mesoderm in a non-cell-autonomous manner, indicating a role for secreted inducing factors in the response to FoxD3. Consistent with this mechanism, FoxD3 was necessary and sufficient for the expression of multiple Nodal-related genes, and inhibitors of Nodal signaling blocked mesoderm induction by FoxD3. Therefore, FoxD3 is required for Nodal expression in the Spemann organizer and this function is essential for dorsal mesoderm formation.

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Developmental origin of segmental identity in the leech mesoderm.

Segmentation in the leech embryo is established by a stereotyped cell lineage. Each of the 32 segments arises from homologous, bilaterally symmetrical complements of mesodermal and ectodermal blast cell clones. Although segments are homologous, they are regionally differentiated along the longitudinal body axis. Various segments display idiosyncratic ensembles of features, which constitute discrete segmental identities. The differentiation of segment-specific features, such as the mesoderm-derived nephridia, genital primordia and identified Small Cardioactive Peptide immunoreactive neurons, reflects a diversification of the developmental fates of homologous blast cell clones. We have investigated whether segment-specific differentiation of homologous mesodermal blast cell clones depends on cell-intrinsic mechanisms (based on the cells' lineage history) or on cell-extrinsic mechanisms (based on the cells' interactions with their environment) in embryos of Theromyzon rude. For this purpose, we first mapped the segment-specific fates of individual mesodermal blast cell clones, and then induced mesodermal clones to take part in the formation of segments for which they are not normally destined. Two types of ectopic segmental position were produced: one in which a mesodermal blast cell clone was out of register with all other consegmental cells and one in which a mesodermal blast cell clone was out of register with its overlying ectoderm, but was in normal register with the mesoderm and ectoderm on the other side of the embryo. Mesodermal blast cell clones that developed in either type of ectopic segmental position gave rise to segment-specific features characteristic of their original segmental fates rather than their ectopic positions. Thus, the development of segmental identity in the leech mesoderm is attributable to a cell-intrinsic mechanism and, either before or soon after their birth, mesodermal blast cells are autonomously committed to segment-specific fates.

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The role of E-cadherin and integrins in mesoderm differentiation and migration at the mammalian primitive streak.

We have examined the role of cell-cell and cell-extracellular matrix (ECM) interactions during mesoderm differentiation and migration at the primitive streak of the mouse embryo with the use of function-perturbing antibodies. Explants of epiblast or mesoderm tissue dissected from the primitive streak of 7.5- to 7.8-day mouse embryos were cultured on a fibronectin substratum in serum-free, chemically defined medium. After 16-24 hours in culture, cells in explants of epiblast exhibited the typical close-packed morphology of epithelia, and the tissue remained as a coherent patch of cells that were shown to express transcripts of the cytokeratin Endo B by in situ analysis. In contrast, cells in explants of primitive streak mesoderm exhibited a greatly flattened, fibroblastic morphology, did not express Endo B transcripts, and migrated away from the center of the explant. As epiblast cells in vivo undergo the epithelial-mesenchymal transition at the primitive streak, they cease expressing the prominent calcium-sensitive cell adhesion molecule E-cadherin (uvomorulin, Cell-CAM 120/80). We asked whether the loss of E-cadherin expression was a passive result of differentiation or if it might play a more causative role in mesoderm differentiation and migration. Culture with function-perturbing antibodies against E-cadherin caused cells within epiblast explants to lose cell-cell contacts, to flatten, and to assume a mesenchymal morphology; they were also induced to migrate. Anti-E-cadherin antibodies had no effect on explants of primitive streak mesoderm. In immunofluorescence studies, anti-E-cadherin-treated epiblast cells ceased to express SSEA-1, a carbohydrate moiety that is lost as mesoderm differentiates from the epiblast in vivo, and they also ceased to express E-cadherin itself. In contrast, these cells began to express the intermediate filament protein vimentin, a cytoskeletal protein characteristic of the primitive streak mesoderm at this stage of development. As epiblast cells differentiate into mesoderm, their predominant adhesive interactions change from cell-cell to cell-substratum. Therefore, we also investigated the adhesive interactions between primitive streak tissues and extracellular matrix (ECM) components. Epiblast explants adhered well to fibronectin, more poorly to laminin and type IV collagen, and not at all to vitronectin. In contrast, mesoderm explants attached well to all these proteins. Furthermore, epiblast, but not mesoderm, displayed an anchorage-dependent viability in culture. After anti-E-cadherin treatment, epiblast cells that had assumed the mesenchymal morphology did attach to vitronectin, another characteristic shared with primitive streak mesoderm.(ABSTRACT TRUNCATED AT 400 WORDS)

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Primitive streak mesoderm-like cell lines expressing Pax-3 and Hox gene autoinducing activities.

Differentiating P19 embryonal carcinoma (EC) cells transiently express an endogenous activity capable of inducing Pax-3 expression in adjacent P19 stem cells (Pruitt, Development 116, 573-583, 1992). In the present study, expression of this activity in mesodermal cell lineages is demonstrated. First, expression of the mesodermal marker Brachyury correlates with expression of Pax-3-inducing activity. Second, the ability of leukemia inhibitory factor (LIF) to block mesoderm differentiation at two different points is demonstrated and correlated with the inhibition of Pax-3-inducing activity. Finally, two mesodermal cell lines that express Pax-3-inducing activity were derived from P19 EC cells. Each of these lines expresses high levels of the mesodermal marker Brachyury and high levels of Oct-3/4 (which is down-regulated at early times during mesoderm differentiation) suggesting that these lines are early mesodermal derivatives. Unlike EC or embryonic stem cell lines, each of the two mesodermal derivatives autoinduces Hox gene expression on aggregation even in the presence of LIF. Following aggregation, anterior-specific genes are expressed more rapidly than more posterior genes. These observations directly demonstrate the ability of murine mesodermal derivatives to autoinduce Hox gene expression in the absence of signals from other cell lineages. Similar to the Pax-3-inducing activity, signals from mesodermal cell lines were sufficient to induce HOX expression in adjacent P19 stem cells in cell mixing assays. These observations are consistent with the previous suggestion (Blum, M., Gaunt, S. J., Cho, K. W. Y., Steinbeisser, H., Blumberg, B., Bittner, D. and De Robertis, E. M. (1992) Cell 69, 1097-1106) that signals responsible for anterior-posterior organizer activity are localized to the anterior primitive streak mesoderm of the mouse embryo.

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Ectoderm-mesoderm interactions in relation to limb-bud chondrogenesis in the chick embryo: transfilter cultures and ultrastructural studies.

Limb ectoderm induces cartilage differentiation in mesoderm from chick embryo limb buds, Transfilter cultures have shown that this interactions requires 'contact' conditions and cannot take place at a distance. In vivo, a basement membrane is always present between ectoderm and mesoderm. The present paper demonstrates that the relationship between ectoderm and mesoderm is similar in vivo and in transfilter cultures. In culture conditions, the filter appears to be infiltrated by mesodermal cell outgrowths which form a continuous mesodermal cover on the filter. A basement membrane is always present between the mat of mesodermal cell processes and the ectoderm. Mesodermal cell processes are able to cross the Nuclepore filters (pore size 0.6-0.8 micrometer) within 15 min. After 2 h in culture, the surface of the filter opposite to the mesodermal explant is completely covered with mesodermal outgrowths. The extracellular material accumulating at the ectoderm-mesoderm interface appears to be mainly of mesodermal origin.

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Ability of FGFs to promote the outgrowth and proliferation of limb mesoderm is dependent on IGF-I activity.

IGF-I and members of the FGF family have been implicated in the reciprocal interactions between the apical ectodermal ridge (AER) and underlying subridge mesoderm that are required for outgrowth of the developing limb bud. Several FGFs are expressed by the AER and appear to mediate its outgrowth and patterning effects on the subridge mesoderm. IGF-I is expressed by the subridge mesoderm that is growing out in response to the AER, and exogenous IGF-I can promote the outgrowth of the subridge mesoderm in the absence of the AER. Maintenance of IGF-I expression by the subridge mesoderm is dependent on the AER. Here we report that exogenous FGF-2 and FGF-4 can substitute for the AER in maintaining IGF-I expression by the posterior subridge mesoderm of the chick limb bud. Furthermore, we have found that neutralizing antibodies against IGF-I inhibit the ability of FGFs to promote the outgrowth and proliferation of the posterior subridge mesoderm cultured in the absence of the AER. These results indicate that FGFs secreted by the AER maintain IGF-I expression by the subridge mesoderm, and that the ability of FGFs to promote the outgrowth and proliferation of limb mesoderm is dependent on IGF-I activity. Interestingly, however, the ability of FGFs to maintain the expression of the homeobox containing gene Msx-1 by the subridge mesoderm is not dependent on IGF-I activity.

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The establishment of a somitomeric pattern in the mesoderm of the gastrulating mouse embryo.

Mesoderm formation in the mouse embryo begins at 6.5-6.75 days p.c. (postcoitum) when a primitive streak is formed along the posterior side of the egg cylinder. Epiblast cells in a localized region separate from one another and spread laterally between the primitive endoderm and the rest of the epiblast. The newly formed mesoderm contributes to both embryonic and extraembryonic regions. When the endoderm is removed, a definitive somitomeric pattern is first observed in the lateral sings of mesoderm of the mid-primitive-streak-stage embryo. The sequential appearance and the placement of somitomeres in the gastrulating mouse embryo are closely related to the general changes in physical dimensions and to the pattern of tissue growth which occur during the maturation of the egg cylinder. By the late-primitive-streak stage, about four somitomeres are present in the paraxial mesoderm on either side of the embryonic axis. These somitomeres will undergo morphogenesis and give rise to the cranial segments and head mesenchyme of neurulating embryos (Meier and Tam, 1982). The midline or axial mesoderm, consisting of prechordal plate and notochord, is derived from the head process mesoderm originating from the anterior end of the primitive streak. Cells of the head process are compact and adherent to the endoderm. The early presence of a somitomeric pattern which persists and is added to throughout subsequent phases of mesoderm formation suggests that spreading mesodermal cells have relatively stable neighbor relationships. This morphological evidence supports the idea that the expansion of the mesoderm during gastrulation results from tissue growth and progressive deposition of cells from the primitive streak. Cell migration may be limited principally to nonsomitomeric mesodermal cells found in the leading edge of the spreading lateral wings.

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A test of positional properties of avian wing-bud mesoderm.

Supernumerary wing structures are readily produced by grafting pieces of wing-bud mesoderm into different locations of host wing buds, but the mechanism underlying their formation remains obscure. The major aim of this study was to examine the ability of posterior quail wing-bud mesoderm, cultured in vitro long enough to lose ZPA (zone of polarizing activity) activity, to stimulate or participate in the formation of supernumerary structures when grafted into anterior slits of host chick wing buds. Small pieces of anterior and posterior quail wing-bud mesoderm (HH stages 21-23) were placed in in vitro culture for up to 3 days. After 2 days, ZPA activity of cultured mesoderm was lost. After the grafting of 2- to 3-day cultured anterior quail wing-bud mesoderm into posterior slits of host chick wing-buds, a consistently high percentage (70%-90%) of grafts result in formation of supernumerary cartilage; in this experiment, however, only a low percentage of grafts resulted in supernumerary cartilage when 2- to 3-day cultured posterior mesoderm was grafted into anterior slits. Taken with controls, these results show that positional differences exist between cultured anterior and posterior wing-bud mesoderm. Serial-section analysis of numerous operated wings has shown several patterns of contribution to supernumerary structures by cells of graft and host. Single supernumerary digits induced by grafts of ZPA mesoderm into anterior slits were normally composed entirely of host cells, but graft cells regularly contributed to skeletal elements of more complex supernumerary structures. Cartilage rods produced by anterior-to-posterior grafts were composed mostly of graft cells, but cartilage nodules and the bases of some rods were often mosaics of chick and quail cells. The results support the proposition that mesodermal cells of the quail wing-bud possess a form of anteroposterior positional memory, but its nature and the means by which the memory of grafted cells interacts with host mesoderm are still not clear.

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State of commitment of prospective neural plate and prospective mesoderm in late gastrula/early neurula stages of avian embryos.

We examined the ability of epiblast regions of known prospective fate from the late gastrula/early neurula stage of avian embryos to self-differentiate when placed heterotopically, testing their state of commitment. Three sites were examined: paranodal prospective neural plate ectoderm, containing cells fated to form a portion of the lateral wall of the neural tube at essentially all rostrocaudal levels of the neuraxis; prospective mesoderm from the caudolateral epiblast, containing cells fated to ingress through the primitive streak and to form lateral plate mesoderm; and prospective mesoderm from one level of the primitive streak, containing cells fated to continue ingressing and form paraxial mesoderm. Grafts from all sites exhibited plasticity. Grafts from the prospective neural plate ectoderm could readily substitute for regions of prospective mesoderm, when transplanted to either the epiblast or primitive streak, undergoing an epithelial-mesenchymal transition and, where appropriate, expressing paraxis, a gene expressed in paraxial mesoderm. Similarly, grafts containing prospective mesoderm from the epiblast could readily substitute for regions of the prospective neural plate ectoderm, undergoing convergent-extension movements characteristic of neuroectodermal cells and expressing appropriate genes such as Engrailed-2 and Hoxb-1. Grafts containing prospective mesoderm from the primitive streak could also incorporate into the neural plate and undergo convergence-extension movements of neurulation, although their principal contribution was to mesodermal and endodermal structures. Collectively, our results demonstrate that at the late gastrula/early neurula stage, germ layer-specific properties are not irrevocably fixed for prospective ectodermal and mesodermal regions of the blastoderm. Moreover, the signals responsible for the induction of these two tissue types must still be present and available at these late stages.

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On the histogenetic potency of the tailbud mesoderm.

The caudalmost part of the tailbud mesoderm (terminal paraxial tailbud mesoderm) does not develop into somites. It is not clear whether this terminal paraxial tailbud mesoderm can be considered to be a part of the segmental plate. To elucidate the nature of the tailbud mesoderm, grafts containing caudal somites, caudal prospective somitic mesoderm and the terminal paraxial tailbud mesoderm were grafted from quail embryos into the wing bud mesoderm of chick embryos. The distinct nuclear difference between quail and chick allows the identification of the grafts on a cellular level. The grafts containing caudalmost somites and the prospective somitic mesoderm differentiate into muscle and cartilage. The terminal paraxial tailbud mesoderm, on the other hand, did not give rise to either of these tissues. From this it can be concluded that the terminal paraxial tailbud mesoderm cannot be considered to be a part of the segmental plate.

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Edge cell migration in the extraembryonic mesoderm of the chick embryo. An experimental and morphological study.

The expansion of the extraembryonic mesoderm was investigated in chick embryos of 2 and 3 days incubation with special regard to the mesodermal edge cells. These cells are lying immediately distal to the sinus terminalis and have the shape of migrating cells. By SEM examination they appear to be linked together to form a uniform edge which extends numerous spike-like filopodia. The shape of these filopodia corresponds to their microtubule pattern, as shown by immunofluorescence staining. Filopodia contain strong bundles of microtubules. By in vivo observation at high magnification, the migration of edge cells was demonstrated, and the results of SEM and immunofluorescence studies could be confirmed. By local application of cytochalasin D, distal to the region of the sinus terminalis, the migration of edge cells was inhibited selectively. Subsequent to the inhibition of migration, the expansion of the mesoderm stopped although the interstitial growth of the mesoderm in drug-treated regions remained unaffected. Thus the edge cells have a promotor function in the expansive growth of the extraembryonic mesoderm. The proliferating mesoderm, located proximally to the edge cells, has no expansive tendency of its own. The selectivity of the cytochalasin effect was checked by examination of the phalloidin stained actin pattern. Furthermore, by in vivo observations at low magnification and by transplantation of endoderm from quail to chick it could be confirmed that the extraembryonic mesoderm spreads out invasively between ectoderm and endoderm separating the two sheets. The promotion of this invasion can be regarded as an additional function of the edge cells. An expansion of the mesoderm can also be observed after endoderm removal. In regions freed from endoderm the mesoderm expands faster than in adjacent regions still covered by endoderm. There is no promoting influence of endoderm on mesodermal expansion. On the contrary, expansion itself is facilitated, when the conditions for invasion are abolished by removing the endoderm.

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Bmp signaling promotes intermediate mesoderm gene expression in a dose-dependent, cell-autonomous and translation-dependent manner.

The intermediate mesoderm lies between the somites and the lateral plate and is the source of all kidney tissue in the developing vertebrate embryo. While bone morphogenetic protein (Bmp) signaling is known to regulate mesodermal cell type determination along the medio-lateral axis, its role in intermediate mesoderm formation has not been well characterized. The current study finds that low and high levels of Bmp ligand are both necessary and sufficient to activate intermediate and lateral mesodermal gene expression, respectively, both in vivo and in vitro. Dose-dependent activation of intermediate and lateral mesodermal genes by Bmp signaling is cell-autonomous, as demonstrated by electroporation of the avian embryo with constitutively active Bmp receptors driven by promoters of varying strengths. In explant cultures, Bmp activation of Odd-skipped related 1 (Odd-1), the earliest known gene expressed in the intermediate mesoderm, is blocked by cyclohexamide, indicating that the activation of Odd-1 by Bmp signaling is translation-dependent. The data from this study are integrated with that of other studies to generate a model for the role of Bmp signaling in trunk mesodermal patterning in which low levels of Bmp activate intermediate mesoderm gene expression by inhibition of repressors present in medial mesoderm, whereas high levels of Bmp repress both medial and intermediate mesoderm gene expression and activate lateral plate genes.

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Level-specific role of paraxial mesoderm in regulation of Tbx5/Tbx4 expression and limb initiation.

Tetrapod limbs, forelimbs and hindlimbs, emerge as limb buds during development from appropriate positions along the rostro-caudal axis of the main body. In this study, tissue interactions by which rostro-caudal level-specific limb initiation is established were analyzed. The limb bud originates from the lateral plate located laterally to the paraxial mesoderm, and we obtained evidence that level-specific tissue interactions between the paraxial mesoderm and the lateral plate mesoderm are important for the determination of the limb-type-specific gene expression and limb outgrowth. When the wing-level paraxial mesoderm was transplanted into the presumptive leg region, the wing-level paraxial mesoderm upregulated the expression of Tbx5, a wing marker gene, and down regulated the expression of Tbx4 and Pitx1, leg marker genes, in the leg-level lateral plate. The wing-level paraxial mesoderm relocated into the leg level also inhibited outgrowth of the hindlimb bud and down regulated Fgf10 and Fgf8 expression, demonstrating that the wing-level paraxial mesoderm cannot substitute for the function of the leg-level paraxial mesoderm in initiation and outgrowth of the hindlimb. The paraxial mesoderm taken from the neck- and flank-level regions also had effects on Tbx5/Tbx4 expression with different efficiencies. These findings suggest that the paraxial mesoderm has level-specific abilities along the rostro-caudal axis in the limb-type-specific mechanism for limb initiation.

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A new in vitro model of murine mesoderm migration: the role of fibronectin and laminin.

Examination of the factors involved in primary mesodermal migration in the mouse has been complicated by the lack of a suitable in vitro model. We have developed a new culture system using primitive streak stage embryos denuded of primitive endoderm, which allows easy observation and manipulation of the outgrowing cells. The cells migrating away from these explants were shown by immunocytochemistry to express vimentin and an epitope of the I antigen recognised by the antibody C6, both of which are present on the newly emerged mesoderm and not on the embryonic ectoderm in sections of embryos in utero. Conversely, cytokeratin, stage-specific embryonic antigen 1 (SSEA-1), E-cadherin and desmoplakin are expressed by the embryonic ectoderm but lost during mesoderm formation in vivo. They are absent or expressed very weakly by the migrated cells in vitro. In addition, only explants of the ectoplacental cone (EPC) and visceral endoderm alone, expressed a carbohydrate epitope (recognised by monoclonal antibody BOO6), characteristic of the EPC and primitive endoderm in utero, but absent from mesoderm. Thus we conclude that the cells which outgrow in this system are indeed mesodermal in phenotype. We have confirmed the work of others in demonstrating the presence of fibronectin (FN) and laminin (LN) in the migratory path of the mesoderm, at the ectoderm-visceral endoderm interface. We also report that the beta 1 integrin subunit of the FN and LN receptor is expressed by mesodermal cells at this interface. Using our in vitro model we have examined the role of the extracellular matrix (ECM) in mesodermal migration. Mesodermal cells migrate further and faster on substrates coated with FN or LN, and this increased migration is abolished by appropriate blocking antibodies. We conclude that the ECM, in particular FN and LN, plays an important role in the migration of primary mesodermal cells during gastrulation in the mouse embryo.

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Analysis of a Caenorhabditis elegans Twist homolog identifies conserved and divergent aspects of mesodermal patterning.

Mesodermal development is a multistep process in which cells become increasingly specialized to form specific tissue types. In Drosophila and mammals, proper segregation and patterning of the mesoderm involves the bHLH factor Twist. We investigated the activity of a Twist-related factor, CeTwist, during Caenorhabditis elegans mesoderm development. Embryonic mesoderm in C. elegans derives from a number of distinct founder cells that are specified during the early lineages; in contrast, a single blast cell (M) is responsible for all nongonadal mesoderm formation during postembryonic development. Using immunofluorescence and reporter fusions, we determined the activity pattern of the gene encoding CeTwist. No activity was observed during specification of mesodermal lineages in the early embryo; instead, the gene was active within the M lineage and in a number of mesodermal cells with nonstriated muscle fates. A role for CeTwist in postembryonic mesodermal cell fate specification was indicated by ectopic expression and genetic interference assays. These experiments showed that CeTwist was responsible for activating two target genes normally expressed in specific subsets of nonstriated muscles derived from the M lineage. In vitro and in vivo assays suggested that CeTwist cooperates with the C. elegans E/Daughterless homolog in directly activating these targets. The two target genes that we have studied, ceh-24 and egl-15, encode an NK-2 class homeodomain and an FGF receptor (FGFR) homolog, respectively. Twist activates FGFR and NK-homeodomain target genes during mesodermal patterning of Drosophila and similar target interactions have been proposed to modulate mesenchymal growth during closure of the vertebrate skull. These results suggest the possibility that a conserved pathway may be used for diverse functions in mesodermal specification.

Amino Acid Sequence↗

Functional subdivision of trunk visceral mesoderm parasegments in Drosophila is required for gut and trachea development.

In Drosophila, trunk visceral mesoderm, a derivative of dorsal mesoderm, gives rise to circular visceral muscles. It has been demonstrated that the trunk visceral mesoderm parasegment is subdivided into at least two domains by connectin expression, which is regulated by Hedgehog and Wingless emanating from the ectoderm. We now extend these findings by examining a greater number of visceral mesodermal genes, including hedgehog and branchless. Each visceral mesodermal parasegment appears to be divided into five or six regions, based on differences in expression patterns of these genes. Ectodermal Hedgehog and Wingless differentially regulate the expression of these metameric targets in trunk visceral mesoderm. hedgehog expression in trunk visceral mesoderm is responsible for maintaining its own expression and con expression. hedgehog expressed in visceral mesoderm parasegment 3 may also be required for normal decapentaplegic expression in this region and normal gastric caecum development. branchless expressed in each trunk visceral mesodermal parasegment serves as a guide for the initial budding of tracheal visceral branches. The metameric pattern of trunk visceral mesoderm, organized in response to ectodermal instructive signals, is thus maintained at a later time via autoregulation, is required for midgut morphogenesis and exerts feedback effect on trachea, ectodermal derivatives.

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