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1.
We have analyzed a developmentally and spatially regulated prestalk-specific gene and a prespore-specific gene from Dictyostelium. The prestalk gene, pst-cathepsin, encodes a protein highly homologous to the lysosomal cysteine proteinases cathepsin H and cathepsin B. The prespore gene encodes a protein with some homology to the anti-bacterial toxin crambin and has been designated beejin. Using the lambda gtll system, we have made polyclonal antibodies directed against a portion of the protein encoded by pst-cathepsin and other antibodies directed against the beejin protein. Both antibodies stain single bands on Western blots. By immunofluorescence and Western blots, pst-cathepsin is not present in vegetative cells or developing cells during the first approximately 10 h of development. It then appears with a punctate distribution in a subset of developing cells. Beejin is detected only after approximately 15 h of development, also in a subset of cells. Pst-cathepsin is distributed in the anterior approximately 1/10 of migrating slugs and on the peripheral posterior surfaces of slugs. Beejin is distributed in the posterior region of slugs. Expression of both pst-cathepsin and beejin can be induced in subsets of isolated cultured cells by a combination of conditioned medium and extracellular cAMP in agreement with the regulation of the mRNAs encoding these proteins. We have used the antibodies as markers for cell type to examine the ontogeny and the spatial distribution of prestalk and prespore cells throughout multicellular development. Our findings suggest that prestalk cell differentiation is independent of position within the aggregate and that the spatial localization of prestalk cells within the multicellular aggregate arises from sorting of the prestalk cells after their induction. We have also found a class of cell in developing aggregates that contains neither the prestalk nor the prespore markers.  相似文献   

2.
Cells from the pseudoplasmodial stage of Dictyostelium discoideum differentiation were dispersed and separated on Percoll gradients into prestalk and prespore cells. The requirements for stalk cell formation in low-density monolayers from the two cell types were determined. The isolated prespore cells required both the Differentiation Inducing Factor (DIF) and cyclic AMP for stalk cell formation. In contrast, only part of the isolated prestalk cell population required both cyclic AMP and DIF, the remainder requiring DIF alone, suggesting the possibility that there were two populations of prestalk cells, one independent of cyclic AMP and one dependent on cyclic AMP for stalk cell formation. The finding that part of the prestalk cell population required only a brief incubation in the presence of DIF to induce stalk cell formation, whilst the remainder required a considerably longer incubation in the presence of both DIF and cyclic AMP was consistent with this idea. In addition, stalk cell formation from cyclic-AMP-dependent prestalk cells was relatively more sensitive to caffeine inhibition than stalk cell formation from cyclic-AMP-independent prestalk cells. The latter cells were enriched in the most anterior portion of the migrating pseudoplasmodium, indicating that there is spatial segregation of the two prestalk cell populations. The conversion of prespore cells to stalk cells took longer and was more sensitive to caffeine when compared to stalk cell formation from cyclic-AMP-dependent prestalk cells.  相似文献   

3.
Dictyostelium discoideum prestalk cells and prespore cells from migrating slugs and culminating cell aggregates were isolated by Percoll density centrifugation. Several activities relevant to the generation, detection, and turnover of extracellular cyclic AMP (cAMP) signals were determined. It was found that: the two cell types have the same basal adenylate cyclase activity; prespore cells and prestalk cells are able to relay the extracellular cAMP signal equally well; intact prestalk cells show a threefold higher cAMP phosphodiesterase activity on the cell surface than prespore cells, whereas their cytosolic activity is the same; intact prestalk cells bind three to four times more cAMP than prespore cells; no large differences in cAMP metabolism and detection were observed between cells derived from migrating slugs and culminating aggregates. The results are discussed in relation to the possible morphogenetic role of extracellular cAMP in Dictyostelium cell aggregates. On the basis of the properties of the isolated cells we assume that a gradient of extracellular cAMP exists in Dictyostelium aggregates. This gradient appears to be involved in the formation and stabilization of the prestalk-prespore cell pattern.  相似文献   

4.
When cells dissociated from Dictyostelium discoideum slugs were cultured in roller tubes, they formed agglomerates in which prestalk cells were initially dispersed but soon sorted out to the center and then moved to the edge to reconstitute the prestalk/prespore pattern. To examine the mechanism of sorting out, individual prestalk cells were traced by a videotape recorder. The radial component of the rate of movement toward the center of the presumptive prestalk region was calculated. Prestalk cells did not move randomly, but rather directionally toward the center. Their movement was pulsatile, with a period of ca. 15 min, and accompanied by occasional formation of cell streams, thus resembling the movement observable during cell aggregation. These results favor the idea that prestalk cells sort out to the prestalk region due to differential chemotaxis rather than differential adhesiveness. After formation of the prestalk/prespore pattern, the prestalk region rotated along the circumference of the agglomerates. This appears comparable to migration of slugs on the substratum, the rate of rotation being similar to that of slug migration. To examine the processes of pattern formation during development, washed vegetative cells were cultured in roller tubes. Prespore cells identified by antispore immunoglobulin initially appeared randomly within the agglomerates, but then nonprespore cells accumulated in the center and finally moved to the edge to establish the prestalk/prespore pattern, the processes being similar to those of pattern reconstruction with differentiated prestalk and prespore cells.  相似文献   

5.
The differentiation-inducing signals (DIFs) currently known in Dictyostelium appear unable to account for the full diversity of cell types produced in development. To search for new signals, we analyzed the differentiation in monolayers of cells expressing prestalk (ecmAO, ecmA, ecmO, ecmB and cAR2) and prespore (psA) markers. Expression of each marker drops off as the cell density is reduced, suggesting that cell interaction is required. Expression of each marker is inhibited by cerulenin, an inhibitor of polyketide synthesis, and can be restored by conditioned medium. However, the known stalk-inducing polyketide, DIF-1, could not replace conditioned medium and induce the ecmA or cAR2 prestalk markers, suggesting that they require different polyketide inducers. Polyketide production by fungi is stimulated by cadmium ions, which also dramatically stimulates differentiation in Dictyostelium cell cultures and the accumulation of medium factors. Factors produced with cadmium present were extracted from conditioned medium and fractionated by HPLC. A new factor inducing prespore cell differentiation, called PSI-2, and two inducing stalk cell differentiation (DIFs 6 and 7) were resolved. All are distinct from currently identified factors. DIF-6, but not DIF-7 or PSI-2, appears to have an essential carbonyl group. Thus Dictyostelium may use extensive polyketide signaling in its development.  相似文献   

6.
E Barklis  H F Lodish 《Cell》1983,32(4):1139-1148
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Abstract. The expression of three prestalk cell-specific genes ( ecm A, ecm B and pDd26) was examined during in vitro differentiation in cell monolayers, in an attempt to explain the spatial heterogeneity of the prestalk region of migrating Dictyostelium pseudoplasmodia. Under these conditions ecm A, ecm B and pDd26 mRNAs were expressed sequentially in response to the addition of differentiation inducing factor-1 (DIF)-1, a temporal sequence similar to that observed during normal development. ecm A and ecm B mRNAs reached a maximum level 2–4 h after DIF-1 supplementation and then declined, whereas pDd26 mRNA levels increased more slowly but remained high 24 h after DIF addition. The increases in expression in response to increasing concentrations of either DIF-1 or DIF-2 were identical for the three genes, suggesting that neither alteration in DIF concentration nor species was an important determinant of spatial heterogeneity. Ammonia had the same inhibitory effect on the expression of all three prestalk cell-specific genes and stimulated the expression of the prespore cell-specific gene, D19. These results indicate that ammonia is also not responsible for the spatial heterogeneity of the prestalk cell region. In contrast, cyclic AMP had a differential effect on the expression of the prestalk cell specific genes: ecm A expression was variably stimulated, pDd26 expression was inhibited and ecm B expression was sometimes stimulated and sometimes inhibited. These results are difficult to explain in terms of a gradient of cyclic AMP in the prestalk region. We postulate that temporal responses are more important than spatial responses to cyclic AMP in regulating stalk cell differentiation.  相似文献   

9.
Abstract. We propose that the prestalk/prespore pattern in Dictyostelium is generated in two steps: In a first process, an intermingled, non-position dependent prestalk/prespore pattern is generated by a cell-restricted autocatalysis and the antagonistic action of a long-ranging substrate which becomes depleted during this autocatalysis. By computer simulations we show that the assumed interaction accounts for several experimentally observed features of the prestalk/ prespore pattern: The size-independent ratio of both cell types, the pattern regulation after removal of one cell type, the development towards one or the other pathway before the slug obtains its final shape or even before aggregation is completed. Our hypothetical substrate may be identical with an experimentally found differentiation-inducing factor (DIF). Alternative molecular realizations of the basic mechanism are discussed. A second process leads to the aggregation of the prestalk cells in a particular region of the aggregate, the future tip region. Interactions which en-able tip formation and the coupling between the prestalk/prespore and the tip-forming system are discussed. Our model shows that the formation of a single large patch of differentiated cells and its size regulation requires conflicting parameters. By a separation into a mechanism which determines the position and a second one which determines the size of a structure, each mechanism can be optimized individually without requiring compromises for the other. Such a separation also seems to occur in other developmental systems.  相似文献   

10.
Abstract. It is very likely that oscillatory cAMP secretion and cAMP relay organize postaggregative cell movement in the cellular slime molds. We present evidence indicating that cAMP signaling may also be involved in the formation of the prestalk/prespore pattern in slugs of Dictyostelium discoideum. Reduction of cAMP relay in slugs caused by caffeine increased the proportion of prespore tissue. An even stronger increase was observed in a mutant with a very low CAMP-relay response. The effects on pattern resulting from a reduction of cAMP relay are not due to a reduction in the amount of cAMP in the slug, but to an as yet undefined property of oscillatory cAMP signaling.  相似文献   

11.
Abstract. We show that the anterior, prestalk region of the Dictyostelium slug contains cells which express, or have expressed, a prespore-specific marker. We term these cells "prespore-like cells" (PLC). In newly formed slugs there is a sharp prespore/prestalk boundary, with very few PLC, but after several days of migration the clear demarcation between prespore and prestalk zones breaks down because the number of PLC increases dramatically. This is consistent with previous observations showing there to be rapid interchange of cells between the prestalk and prespore regions. This is not, however, their only source, as a scattering of PLC appear when separate prestalk and prespore regions first become apparent at the time of tip formation. Also, at culmination, there is respecification of "prespore" cells at the pre-stalk/prespore boundary to form part of the mature stalk. The existence of these cells, and of PLC, may explain why we find prespore-specific mRNAs in mature stalk cells.  相似文献   

12.
We show that exceedingly small two-dimensional slugs of Dictyostelium differentiate normally and have an anterior prestalk zone and a posterior prespore zone. Using GFP as a marker attached to the appropriate promoter, prestalk expression is concentrated in the anterior, while prespore expression is produced in the posterior, closely resembling what is found in normal, large slugs.  相似文献   

13.
By the use of a shake culture system, we have previously shown (Oyama, M., Okamoto, K., & Takeuchi, I. (1982) J. Cell Sci. 56, 223-232) that both cAMP and cAMP-dependent cell contact are required for prespore differentiation in Dictyostelium discoideum. The present study was undertaken to examine changes of the plasma membrane proteins during prespore differentiation in the shake culture system. Rabbit antibodies prepared against the plasma membrane fraction of the differentiated cells inhibited the reaggregation of the differentiated cells but not that of aggregation-competent cells. This result indicates that new contact sites are formed in the differentiated cells. By the combined use of the antibody-conjugated immuno-adsorbent with sodium dodecyl sulfate-polyacrylamide gel electrophoresis, changes of membrane proteins were analyzed with the cells incubated under various conditions. Three proteins were found to be present specifically in the differentiated cells only in the presence of cAMP, one of which (105K protein) appeared when cells became adhesive, but before prespore specific proteins were detected. Two others (80K and 58K proteins) appeared during prespore differentiation after cells formed agglomerates.  相似文献   

14.
Previous studies have shown that Dictyostelium discoideum spore coat proteins are found in prespore cells, which are localized to the posterior region of migrating slugs, and in the coats of mature spores. Prespore vesicles, identified by morphology and by staining with anti-D. mucoroides spore serum, are also localized in the posterior region of migrating slugs. Using antisera specific to the spore coat proteins, we show that the spore coat proteins are packaged in prespore vesicles. They are present in the vesicles as a complex which can be dissociated by denaturation. The anti-D. mucoroides spore serum reacts with at least five proteins in whole spore extracts including the spore coat proteins SP96 and SP70.  相似文献   

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Abstract. Extracellular cAMP and a secreted factors have been known to be involved in prespore differentiation of Dictyostelium discoideum . Here we show that cAMP, a secreted factor(s) and some other interactions are required for prespore differentiation and that they work in completely different periods; a secreted factor(s) and other interactions are required only in the stages earlier than the cAMP-dependent stage. According to the results the process of prespore differentiation can be dissected into three sequential stages, stage I, II and III. The processes in stage I and II depend on high cell density. The requirement for high cell density in stage II could be replaced with a secreted factor(s) in conditioned medium, whereas it could not in stage I. The factor(s) in conditioned medium does not appear to be cAMP, ammonia, or methionine. In contrast to these two stages, the process in stage III, the last stage, proceeds even at low cell density if cAMP is supplied, where other interactions would be negligible. Therefore cells that have proceeded to the end of stage II are considered to have acquired a competence to differentiate to prespore cells without further cellular interactions other than cAMP.
cAMP pulses are not essential for the processes of any stage of prespore differentiation, since they proceed in the presence of caffeine, an inhibitor of cAMP pulse production, or in a mutant strain (Frigid A) which is deficient in cAMP relay systems.  相似文献   

17.
By the use of a prestalk- and stalk-specific monoclonal antibody, production of prestalk antigen was examined with non-glucose grown [G(-)] and glucose grown [G(+)] cells of Dictyostelium discoideum AX2. Unlike wild type (NC4), some growth phase cells of AX2 were reactive with the antibody. However, G(-) cells contained much more antigen than G(+) cells and the difference between the two remained during the preaggregation period. Besides glucose, the addition of metabolizable, but not nonmetabolizable sugars to both growth phase and preaggregation cells suppressed the production of the prestalk antigen on the one hand and stimulated the accumulation of glycogen on the other hand. When mixed, G(-) cells which produced more prestalk antigen during the preaggregation period remained prestalk cells after aggregation, while G(+) cells which produced less antigen were converted to prespore cells. G(+) cells collected at the stationary phase [G(+)st] were stronger in prestalk sorting tendency than G(+) cells but weaker than G(-) cells. The prestalk antigen content of G(+)st cells prior to aggregation was an intermediate between those of G(-) and G(+) cells. These lead to the conclusion that the prestalk antigen content of preaggregation cells reflect the tendency of the cells toward either prestalk or prespore differentiation after aggregation.  相似文献   

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