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At least 19 recordsLinked to original sources

Epithelial-mesenchymal interactions in differentiation of stomach epithelium in fetal mice.

Epithelial-mesenchymal interactions during development of the forestomach and glandular stomach in fetal mice were investigated by recombination experiments in vitro. Stomach epithelium could not survive when cultivated alone, but its development was supported by the presence of homologous or heterologous mesenchyme. The developmental fate of the epithelium was not affected by recombination with heterologous mesenchyme, but the expression of epithelial differentiation was influenced by the type of mesenchyme. The rate of keratinization of the forestomach epithelium was significantly greater on recombination with homologous mesenchyme than on recombination with heterologous mesenchyme. Moreover, the rate of formation of glandular structures in the glandular stomach epithelium was significantly greater on recombination with 16.5-day stomach mesenchyme than on recombination with 14.5- or 18.5-day stomach mesenchyme.

Animals

De novo induction of a gene product during heterologous epithelial--mesenchymal interactions in vitro.

Mesenchymal specification of epithelial cytodifferentiation and morphogenesis has been considered to be a general feature of various epithelial-mesenchymal interacting systems (e.g., salivary gland, mammary gland, feather, hair, and tooth morphogenesis). In contrast, we have demonstrated that a mesenchyme can be induced by a heterologous epithelium to synthesize in quantity a specific gene product(s) unorthodox to the organ from which the mesenchyme was taken. Stage 22-23 avian limb bud epithelium induced 17-day embryonic mouse tooth mesenchyme to differentiate into cartilage. Peptide analysis (cyanogen bromide cleavage after purification of extracted collagen chains) demonstrated that heterologous tissue recombinations produced type II collagen [alpha(II)](3) (i.e., cartilage-type) in addition to type I collagen [alpha(I)](2)alpha(2). Intact or reconstituted mouse molar tooth organs synthesized type I collagen and type I trimer [alpha(I)](3) collagen. Immunohistochemical criteria using anti-type II collagen antibodies identified type II collagen in cartilage-like matrix within the mesenchymal component of heterologous tissue recombinants. Cartilage has never been described during in vivo or in vitro tooth tissue differentiation or associated with the pathology of dental papilla mesenchyme. These results support the hypothesis that epithelial-mesenchymal interactions during embryonic development can selectively induce de novo synthesis of unique gene products.

Animals

The influence of local environment on the organization of mesenchyme cells.

Limb, somite, and neural crest mesenchyme from quail embryos were implanted orthotopically and heterotopically into chick hosts to ascertain the relative importance of the local environment on mesenchyme migration. It was found that mesenchyme behavior is strongly influenced by the environment. Normally non-migratory, limb mesenchyme is capable of spreading like sclerotome when placed in the somite region. A somite placed in the limb acquires an appearance typical of limb mesenchyme. Neural crest placed in the limb migrates only along the co-implanted neural tube or axons growing out from it. The orthotopic transplantations showed that quail mesenchyme behaves normally in chick embryos. Furthermore, it was observed in the orthotopic transplants that there was no intermingling of quail and chick cells even at the edge of the graft. This result indicates that cells within mesenchyme are normally not locomotory; rather, the mesenchyme "migrates" by spreading and expansion of the tissue as a unit in response to local influences.

Animals

Evolutionary fingerprints of epithelial-to-mesenchymal transition.

Mesenchymal plasticity has been extensively described in advanced epithelial cancers; however, its functional role in malignant progression is controversial1-5. The function of epithelial-to-mesenchymal transition (EMT) and cell plasticity in tumour heterogeneity and clonal evolution is poorly understood. Here we clarify the contribution of EMT to malignant progression in pancreatic cancer. We used somatic mosaic genome engineering technologies to trace and ablate malignant mesenchymal lineages along the EMT continuum. The experimental evidence clarifies the essential contribution of mesenchymal lineages to pancreatic cancer evolution. Spatial genomic analysis, single-cell transcriptomic and epigenomic profiling of EMT clarifies its contribution to the emergence of genomic instability, including events of chromothripsis. Genetic ablation of mesenchymal lineages robustly abolished these mutational processes and evolutionary patterns, as confirmed by cross-species analysis of pancreatic and other human solid tumours. Mechanistically, we identified that malignant cells with mesenchymal features display increased chromatin accessibility, particularly in the pericentromeric and centromeric regions, in turn resulting in delayed mitosis and catastrophic cell division. Thus, EMT favours the emergence of genomic-unstable, highly fit tumour cells, which strongly supports the concept of cell-state-restricted patterns of evolution, whereby cancer cell speciation is propagated to progeny within restricted functional compartments. Restraining the evolutionary routes through ablation of clones capable of mesenchymal plasticity, and extinction of the derived lineages, halts the malignant potential of one of the most aggressive forms of human cancer.

Animals

Nephroblastoma in the rat: histology of a spontaneous tumor, identity with respect to renal mesenchymal neoplasms, and a review of previously recorded cases.

The histology of a spontaneously occurring neoplasm of the rat kidney conforming to a classification of nephroblastoma is described and compared with that of N-nitrosodimethylamine-induced renal mesenchymal tumors. This rat nephroblastoma was an encapsulated epitheloid neoplasm with a uniform histologic pattern. Clumps of densely crowded, hyperchromatic cells frequently associated with central, well-differentiated ducts were supported by a less cellular, interconnecting stroma of loose areolar or mature fibrous connective tissue. Neoplastic cells were organized into primitive, ill-defined tubular formations. The neoplastic cell component strongly resembled metanephrogenic blastema. In contrast, the renal mesenchymal tumor was nonencapsulated and consisted of a heterogeneous mixture of connective tissue elements including fibroblast-like spindle cells, smooth muscle, and embryonic mesenchyme that engulfed and sequestered preexisting renal tubules and glomeruli. The separate morphologic identities and apparently unrelated existence of rat nephroblastoma and renal mesenchymal tumor were stressed. The rat nephroblastoma morphologically resembled the malignant epithelial component of human Wilms' tumor, whereas rat renal mesenchymal tumor appeared to have counter-parts in the mesenchymal component of Wilms' tumor and in congenital mesoblastic nephroma (leiomyomatous hamartoma) of infancy. The histologic descriptions of previously recorded occurrences of spontaneous and experimentally induced rat neoplasma classified as nephroblastoma or its synonyms were reevaluated in comparison to the present case. In all but four instances, in which sufficient histologic detail was provided in previous reports, a consistent histologic pattern emerged for this neoplasm in the rat.

9,10-Dimethyl-1,2-benzanthracene

Metabolism of testosterone by the epithelium and mesenchyme of the rat urogenital sinus.

Testosterone metabolism was measured in separated epithelium and mesenchyme from the urogenital sinuses of 17- and 19-day-old male and female rat embryos and compared with testosterone metabolism in the intact sinus. Both the epithelium and the mesenchyme converted testosterone to 5 alpha-dihydrotestosterone. The epithelium produced much more androstanedione and androsterone but less 3 alpha, 17 beta-androstanediol than did the mesenchyme. The whole sinus synthesized all four metabolites, but in different proportions, producing relatively more androsterone than either of its two component tissues. These data suggest that androsterone is formed by the joint action of epithelium and mesenchyme. Metabolism of testosterone did not differ with sex or foetal age in either of the separated tissues or in the intact sinus, implying that the failure of urogenital mesenchyme from 19-day-old female foetuses to induce prostatic morphogenesis is not due to the loss of 5 alpha-reductase. It is suggested that this lack of inductive capacity may be attributable to a decline in androgen levels with age in female mesenchyme.

Androstane-3,17-diol

Acceleration of mammary cancer development by grafting of fetal mammary mesenchymes in C3H mice.

Transplantation of fetal mammary gland mesenchyme into mammary glands of 2-month-old syngeneic virgin mice resulted in focal re-enactment of events that normally occur probably during fetal and early postnatal development of the mammary gland. Portions of the recipient's mammary duct system in contact with the fetal mammary mesenchyme underwent branching and proliferation in a pattern resembling that of rudimentary mammary gland development. This process occurred in C3H mice regardless of whether or not the milk-transmitted mammary tumor virus (MTV-S) was present. In mice carrying MTV-S, mammary cancers of Types A and B appeared earlier and more frequently in the mammary glands that had received transplants of fetal mammary mesenchyme, compared with those in the glands that received no fetal mesenchyme. Some of the smaller cancers were shown to develop directly from portions of the mammary gland interacting with fetal mammary mesenchyme, without preformation of typical hyperplastic alveolar nodules. In C3H mice not carrying MTV-S, cancers did not appear in the similarly treated mammary glands. These facts suggest that non-hormonal and probably nonviral factors that stimulate focal proliferation in the mammary duct system resulting from transplantation of fetal mesenchymes eventually accelerate local development of mammary cancers.

Animals

Morphogenesis of the truncus arteriosus of the chick embryo heart: the formation and migration of mesenchymal tissue.

The appearance and migration of mesenchymal cushion tissue within the truncus arteriosus of the normal 2.5 to 6-day chick embryo heart was surveyed systemically with the light microscope. Series of cross-sections taken from replicate hearts at successive developmental stages allowed comparison of the following qualitative and quantitative aspects of early truncal morphogenesis. Mesenchyme within the truncus was derived from two distinct sources. The first mesenchyme appeared to migrate caudally into the cardiac jelly of the distal truncus from the nearby aortic arch region, coincident with slowing of the anterior elongation of the heart tube (Hamburger-Hamilton Stage 17-18). A second, separate mesenchymal population, derived from endocardium, began to fill the conus and proximal truncus in a radial direction, coicident with expansion of the bulbs cordis (Stage 12-19). The measured kinetics of relative cell numbers, distributions, and mitotic indices suggest substantial contributions from both sources. By Stage 26, the conotruncal region was filled with mesenchyme, which then condensed to form the anlagen of three future structures: the semilunar valves, the aorticopulmonary septum, and the tunica media of the great arteries.

Animals

Meningeal mesenchymal chondrosarcoma: report of 8 cases with review of the literature.

This paper reviews 8 personally examined cases of primary meningeal mesenchymal chondrosarcoma and 4 similar cases previously reported by others. The clinicopathologic features of these extraosseous intracranial and intraspinal examples are similar to those of other extraskeletal mesenchymal chondrosarcomas. The tumor occurred most often in the second and third decades, showed a moderate tendency to local recurrence (5 of 12 cases) and occasionally metastasized to the lungs (1 case). Both intracranial and intraspinal tumors occurred with equal frequency, but the former, probably due to the later onset of symptoms, had the worse prognosis. Microscopically, they are composed of primitive undifferentiated mesenchymal cells and frequently well-defined islands of hyaline cartilage. There is an apparent correlation between the frequency of mitotic figures and the likelihood of recurrence and metastasis. Electron microscopic study of one example revealed morphologic features similar to those previously described by others and supports the conclusion that the neoplastic cells represent primitive precartilaginous mesenchyme displaying focal cartilaginous differentiation.

Adolescent

Mucopolysaccharidosis type I, II, IIIA and V. Pathological and biochemical abnormalities in the neural and mesenchymal elements of the brain.

Histochemical and electron microscopic studies of the brains inclusive of the leptomeninges containing large blood vessels from 7 patients with mucopolysaccharidosis (MPS) I, II, IIIA and V showed marked increase in mesenchymal elements and the generalized presence of characteristic lesions around cerebral veins and arteries. The periadventitial space was greatly distended and filled with viscous fluid and numerous mononuclear cells containing large cytoplasmic vacuoles; these cells stained positively for glycosaminoglycans (GAG). In contrast, the neurons showed only a slight increase of GAG over the normal controls but contained an excessive amount of glycolipid-like material. The amount of GAG in the leptomeninges, inclusive of the large blood vessels, was 10.8, 6.5, 4.5 and 2.2 times greater in patients with MPS I, II, V and IIIA respectively, than the mean of unaffected controls. Dermatan sulfate (DS) accounted for most of the GAG increase in MPS I, II and V [mixed excretors of DS and heparan sulfate (HS)], and HS for the GAG increase in MPS IIIA (HS excretor). With the exception of the patient with MPS IIIA, whose GAG content and composition were the same in both the neural and mesenchymal elements, in all the other MPS types the mesenchymal elements contained more GAG, with a preponderance of DS. We conclude that the mesenchymal elements contribute substantially to the increased content of GAG in the brain and its coverings, mostly in the form of dermatan sulfate.

Adult

Isolation and transformation of primary mesenchymal cells of the chick embryo.

Pure primary mesenchymal cells from definitive streak stage chick embryos have been prepared free of epiblast and hypoblast cells. These cells have the potential in culture to differentiate into erythroid cells, beating heart muscle tissue, chondrocytes and epithelial cells. Transformation in vitro of pure primary mesenchymal cells by avian erythroblastosis virus (wt-AEV) and a temperature-sensitive mutant (ts34-AEV) gave rise to rapidly growing cells which remained largely undifferentiated, could be cloned in semi-solid medium and could be maintained for up to 3 months in culture. The majority of mesenchymal cells transformed by wt-AEV (MAE cells) are benzidine-negative. Gel electrophoresis of radioactively labeled cell proteins, immunoprecipitated with specific antisera against chicken hemoglobin, showed that MAE cell clones synthesize the alpha D, pi (or pi') and some unidentified "globin" polypeptide chains. Treatment of MAE cell clones with 1.0 mM n-butyrate stops cell proliferation reversibly and causes an increased synthesis of alpha D and pi (or pi') globin polypeptide chains. In certain clones of mesenchymal cells transformed by a temperature-sensitive mutant of the virus, ts34-AEV (MAE-ts34 cells), benzidine-positive cells can be induced by a shift from 37 degrees to 41 degrees C. The ability of the clone to undergo an increase in benzidine-positivity by temperature shift is decreased with the age of the clone. Different clones show a variable proportion of cells which are positive by immunofluorescence for both globin and chicken-specific histone H5. The alpha A and alpha D globin chains are synthesized in MAE-ts34 clones, but the ratios and quantities of these chains vary for different clones. Temperature shift made little difference in the types and quantities of globin chains synthesized; the increase in benzidine positivity is probably due to an increase in heme biosynthesis.

Alpharetrovirus

An antigen associated with mesenchyme in human tumours that cross-reacts with brain glycoprotein.

Anti-NSA3 antiserum was found to react with many kinds of benign and malignant tumours, as well as foetal skin and intestinal extracts. The corresponding antigens isolated from nervous tissue, benign breast adenoma, and a fibrosarcoma were compared. Immunoprecipitation cannot distinguish between these antigens, and their amino-acid contents were comparable. However, immuno-absorption identified an antigenic determinant that was confined to nervous tissue. Indirect immunofluorescence further confirmed the validity of the concept of a nervous form vs a mesenchymal form of the antigen. Furthermore, immunofluorescence enabled the localization of the antigen found in non-nervous tissue to mesenchyme (mesenchyme-associated antigen: MAA), whether the mesenchymal tissue be normal (foetal organs), tumoral (fibrosarcoma) or reactional (connective-tissue stroma of epithelial tumours).

Amino Acids

Mobility of concanavalin A receptors and distribution of cytoplasmic actin in odontogenic epithelial and mesenchymal cells.

The distribution of concanavalin A (Con A) surface receptors and cytoplasmic actin in the same cell was studied in monolayer cultures of 2 odontogenic epithelial cells of different developmental age and in ecto-mesenchymal cells derived from the same tooth germ. Con A receptors were demonstrated by fluorescein-isothiocyanate-labelled Con A (FITC-Con A) and cytoplasmic actin by a specific anti-actin autoantibody (AAA) traced with a rhodamine-labelled goat anti-human globulin (R-AHG). All 3 cell types, incubated with FITC-Con A at 37 degrees C for increasing time periods, showed progressive changes in staining patterns from clusters, caps to perinuclear globules. Capping was seen in the majority of immature epithelial cells at 120--180 min, in cells of more mature epithelium at 180--240 min and in ecto-mesenchymal cells at 240--360 min. Binding of FITC-Con A to cell surfaces resulted in sequential changes in AAA staining from filamentous to an aggregated or diffuse pattern, co-capping of aggregated or diffusely stained areas with those capped by FITC-Con A, presence of aggregated or diffusely stained areas in sites similar to the perinuclear globules stained by FITC-Con A, to final re-emergence of filamentous staining. Prior treatment of cells with cytochalasin B or colchicine promoted capping in epithelial but not in ecto-mesenchymal cells while presence of either drug throughout the staining procedure inhibited capping. The results show that Con A receptors are more mobile in epithelial compared to ecto-mesenchymal cells and in immature epithelial cells compared to their more mature counterparts, and that binding and mobility of Con A receptors on the cell surface is associated with redistribution of cytoplasmic actin. The cytochalasin B and colchicine experiments suggest that both microfilaments and microtubules may have synergistic roles in the opposing functions of receptor anchorage and mobility, and that the relative receptor immobility of ectomesenchymal compared to epithelial cells may be attributed to firmer receptor anchorage to the cytoskeleton.

Actins

The nature and nurture of epithelial-mesenchymal interactions during tooth morphogenesis.

Epithelial-mesenchymal interactions during tooth morphogenesis are inductive and instructive developmental processes as well as permissive and regulatory processes. Data is available to support the early influences of enamel organ epithelium upon a responding mesenchyme in the determination of dental morphogenetic fields (Dryburg, 1967; Miller, 1969). Mesenchymal specificity appears to be operant during tooth shape and form and during the induction of secretary amelogenesis (Kollar, 1972). These heterotypic tissue interactions can be observed in vivo and in vitro. The cellular responses to these interactions appear to be transcriptional, translational and post-translational; as a direct consequence of the interactions, new gene products are synthesized and secreted and/or pre-existing gene products are amplified (Hata and Slavkin, 1978). The mechanism(s) by which epithelial-mesenchymal interactions function may best be learned through critical investigations of differentiation alloantigens, receptors, coupling components within the plasma membrane, translating components by which epigenetic external cues become internal chemical information, and the associations between peripheral and integral proteins within the plasma membrane and intracytoplasmic microfilaments and microtubules.

Amelogenesis

Lack of correlation between mesenchymal cell death and morphogenesis after different extents of apical ectodermal ridge/rim ectoderm removal in the chick embryo wing bud.

The removal of the apical ectodermal ridge (A.E.R.) subsequently causes distal deletion defects in the limb. There have been contradictory reports as to the appearance of cell death in the mesenchyme after A.E.R. removal, as well as to its morphogenetic significance. In our study the A.E.R./ rim ectoderm removal was varied to test whether different degrees of cell death would correlate with different degrees of distal deletions. From the right wing bud of stage 19 and 20 (HH) embryos the rim ectoderm was removed in four ways: all of the rim, the anterior third, the middle third (most of the A.E.R.), or its posterior third. The removal of all or of the anterior third caused a definite band of subwound mesenchymal cell death to appear. There was little or no cell death after removal of the middle or posterior thirds. Removal of the anterior third caused no distal deletion defects, and only a few were noted after removal of the posterior third. The proximo-distal level of the distal deletions, however, was the same after removal of all of the rim or only its middle third. As there was no difference in the degree of distal deletions after the removal of all or of the middle third of the rim but a definite difference in the mesenchymal cell death patterns we conclude that cell death is not part of the mechanisms of the distal deletion defect. Our findings also suggest that cell death does not play a role in the A.E.R.-mesenchyme reciprocal interaction that controls limb proximo-distal morphogenesis.

Animals

Fetal-like reversion in the regenerating intestine is regulated by mesenchymal asporin.

Mesenchymal cells and the extracellular matrix (ECM) support epithelium during homeostasis and regeneration. However, the role of the mesenchyme in epithelial conversion into a fetal-like regenerative state after damage is not known. We modeled epithelial regeneration by culturing intestinal epithelium on decellularized small intestinal scaffolds (iECM) and identify asporin (Aspn), an ECM-bound proteoglycan, as a critical mediator of epithelial fetal-like reprogramming. After damage, transient increase in Aspn expression by the pericryptal fibroblasts induces epithelial transforming growth factor β (TGF-β)-signaling via CD44 and promotes timely epithelial reprogramming. Temporal control of Aspn is lost in old mice, and after damage, the persistently high level of Aspn stagnates epithelium in the regenerative state. Increase in Wnt signaling can resolve the stagnated regenerative program of the old epithelium, promoting restoration of tissue function. In summary, we establish a platform for modeling epithelial injury responses ex vivo and show that the mesenchymal Aspn-producing niche modulates tissue repair by regulating epithelial fetal-like reprogramming.

Animals