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E Knust

Publications and source records attributed to E Knust.

At least 37 records · Page 2Linked to original sources

Serrate and wingless cooperate to induce vestigial gene expression and wing formation in Drosophila.

BACKGROUND: The appendages of insects, like the limbs of vertebrates, grow out of the body wall after the establishment of a proximo-distal axis among a group of primordial cells. In Drosophila, the wing develops in the limbless larva from one of the imaginal discs of the thorax, which give rise to the adult epidermis. The earliest identified requirement in wing development is for the induction of vestigial (vg) gene expression at the interface between ventral cells and dorsal cells of the wing disc. It has been proposed that this event requires two reciprocal signals--one from the dorsal to the ventral cells and the other from the ventral to the dorsal cells--which trigger vg expression at the presumptive wing margin and hence initiate the development of the wing tissue. RESULTS: We have identified four genes--Serrate (Ser), wingless (wg), Notch and Suppressor of Hairless (Su(H))--whose activity is required during the second and early third larval instars for the expression of vg. Analysis of the functions and patterns of expression of these genes at the time of the inductive event indicates that the Ser protein acts as a dorsal signal, and the Wg protein as a ventral signal for the induction of vg expression. Furthermore, the expression of both Ser and Wg is sufficient to trigger ectopic wing development in the wing disc and leg discs. The product of the Notch gene, which encodes a receptor, is also required for this event and we suggest that its role is to integrate the inputs of Ser and Wg. CONCLUSIONS: We show that the induction of vg, which initiates wing development in Drosophila, requires the combined activities of Ser, wg and Notch. Based on the patterns of expression and requirements for Ser and wg in this process, we propose that Ser is a dorsal signal and that Wg is a ventral signal, and that their combination at the dorso-ventral interface activates the Notch receptor and leads to vg expression.

Animals↗

Expression of crumbs confers apical character on plasma membrane domains of ectodermal epithelia of Drosophila.

The crumbs protein of Drosophila is an integral membrane protein, with 30 EGF-like and 4 laminin A G domain-like repeats in its extracellular segment, which is expressed on the apical plasma membrane of all ectodermally derived epithelia. Here, we present evidence to show that the insertion of crumbs into the plasma membrane is necessary and sufficient to confer apical character on a membrane domain. Overexpression of crumbs results in an enormous expansion of the apical plasma membrane and the concomitant reduction of the basolateral domain. This is followed by the redistribution of beta Heavy-spectrin, a component of the membrane cytoskeleton, and by the ectopic deposition of cuticle and other apical components into these areas. Strikingly, overexpression of the membrane-bound cytoplasmic portion of crumbs alone is sufficient to produce this dominant phenotype. Our results suggest that crumbs plays a key role in specifying the apical plasma membrane domain of ectodermal epithelial cells of Drosophila.

Animals↗

Phenotypic and molecular characterization of SerD, a dominant allele of the Drosophila gene Serrate.

The Drosophila gene Serrate (Ser) encodes a transmembrane protein with 14 epidermal growth factor--like repeats in its extracellular domain, which is required for the control of cell proliferation and pattern formation during wing development. Flies hetero- or homozygous for the dominant mutation SerD exhibit scalloping of the wing margin due to cell death during pupal stages. SerD is associated with an insertion of the transposable element Tirant in the 3' untranslated region of the gene, resulting in the truncation of the Ser RNA, thereby eliminating putative RNA degradation signals located further downstream. This leads to increased stability of Ser RNA and higher levels of Serrate protein. In wing discs of wild-type third instar larvae, the Serrate protein exhibits a complex expression pattern, including a strong stripe dorsal and a weaker stripe ventral to the prospective wing margin. Wing discs of SerD third instar larvae exhibit additional Serrate protein expression in the edge zone of the future wing margin, where it is normally not detectable. In these cells expression of wing margin specific genes, such as cut and wingless, is repressed. By using the yeast Gal4 system to induce locally restricted ectopic expression of Serrate in the edge zone of the prospective wing margin, we can reproduce all aspects of the SerD wing phenotype, that is, repression of wing margin-specific genes, scalloping of the wing margin and enhancement of the Notch haplo-insufficiency wing phenotype. This suggests that expression of the Serrate protein in the cells of the edge zone of the wing margin, where it is normally absent, interferes with the proper development of the margin.

Alleles↗

bHLH proteins encoded by the Enhancer of split complex of Drosophila negatively interfere with transcriptional activation mediated by proneural genes.

The Enhancer of split complex [E(SPL)-C] of Drosophila participates in the control of cell fate choice by uncommitted neuroectodermal cells in the embryo. It encodes seven proteins that belong to the basic helix-loop-helix (bHLH) family, six of which are expressed in very similar patterns in the neuroectoderm. Here we describe experiments aimed at unravelling the molecular basis of their function. We found that two products of the complex, HLH-M5 and ENHANCER OF SPLIT, are capable of binding as homo-and heterodimers to a sequence in the promoters of the Enhancer of split and achaete genes, called the N-box, which differs slightly from the consensus binding site (the E-box) for other bHLH proteins. In transient expression assays in cell culture, both proteins were found to attenuate the transcriptional activation mediated by the proneural bHLH proteins LETHAL OF SCUTE and DAUGHTERLESS at the Enhancer of split promoter.

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Control of epithelial cell polarity in Drosophila.

Epithelia are tissues with a pronounced apicobasal polarity that are common to most multicellular organisms. They serve as boundaries between tissue compartments and control the directional exchange of molecules. Morphogenetic changes in epithelia contribute to the elaboration of the final body plan. Hence, the establishment and maintenance of epithelial polarity and integrity is of crucial importance for the development of multicellular organisms. A combined genetic, cell biological and molecular dissection of these processes in Drosophila has revealed that some of the underlying mechanisms and molecules are conserved between vertebrates and Drosophila, but has also uncovered novel gene products that will shed light on the mechanisms involved in controlling epithelial organization.

Amino Acid Sequence↗

The Serrate locus of Drosophila and its role in morphogenesis of the wing imaginal discs: control of cell proliferation.

The Drosophila gene Serrate encodes a transmembrane protein with 14 EGF-like repeats in its extracellular domain. Here we show that loss-of-function mutations in this gene lead to larval lethality. Homozygous mutant larvae fail to differentiate the anterior spiracles, exhibit poorly developed mouth-hooks and show a severe reduction in the size of the wing and haltere primordia, which is not due to cell death. The few homozygous mutant escapers that pupariate develop into pharate adults that almost completely lack wings and halteres. Clonal analysis in the adult epidermis demonstrates a requirement for Serrate during wing and haltere development. Targeted ectopic expression of Serrate in the imaginal discs using the yeast transcriptional activator Gal4 results in regionally restricted induction of cell proliferation, e.g. the ventral tissues in the case of the wings and halteres. The results suggest that the wild-type function of Serrate is required for the control of position-specific cell proliferation during development of meso- and metathoracic dorsal discs, which in turn exerts a direct effect on morphogenesis.

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Cell fate choice during early neurogenesis in Drosophila melanogaster.

In the neuroectoderm of the Drosophila embryo, cells have to choose between the neural and epidermal cell fates. The decision in favor of one or the other is under the control of the neurogenic and the proneural genes. Their gene products form a signal relay that ultimately leads to the commitment of each cell to a given fate. Data derived from various experimental approaches suggest that the proteins encoded by the genes Delta and Notch act act at the membrane as signal and receptor, respectively, whereas the genes of the Enhancer of split and the achaete-scute complexes code for transcription factors, which serve to specify the appropriate response by regulating the activities of other genes.

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Crumbs and stardust act in a genetic pathway that controls the organization of epithelia in Drosophila melanogaster.

We provide evidence that the genes crumbs (crb) and stardust (sdt) encode critical components of a pathway that acts at the apical pole of epithelial cells to control the cytoarchitecture of ectodermally derived epithelia of the Drosophila embryo. We describe the developmental defects caused by sdt mutations, which are very similar to those associated with mutations in crb. In both mutants the epithelial structure of ectodermal cells breaks down during early organogenesis, leading to the formation of irregular clusters of cells and cell death in some epithelia. Certain cells can, however, compensate for the loss of crb or sdt function in a tissue-specific manner, later reassuming an epithelial cell shape and forming small epithelial vesicles, suggesting that, besides crb and sdt, other tissue-specific components are involved in this process. The crb protein (CRB) is continuously expressed in wild-type embryos in cells of the ectoderm and ectodermally derived epithelia. In sdt mutant embryos CRB is present only during gastrulation, but becomes undetectable during germ band extension; the protein is again visible during early organogenesis, at the time when the sdt mutant phenotype becomes apparent. In sdt mutant embryos, CRB is associated with the apical membrane only in well-differentiated epithelial cells, but it is expressed diffusely in the cytoplasm of cells which have lost epithelial morphology. Our results suggest that time- and tissue-specific control mechanisms exist to establish and maintain epithelial cell structure. Mosaic experiments suggest that sdt is required cell autonomously, in contrast to crb, the requirement of which appears to be non-cell-autonomous. Double mutant combinations of crb and sdt suggest that these genes are part of a common genetic pathway (crb/sdt pathway), in which sdt acts downstream of crb and is activated by the latter.

Animals↗

CRUMBS is involved in the control of apical protein targeting during Drosophila epithelial development.

The gene crumbs (crb) of Drosophila encodes a transmembrane protein with 30 EGF-like and four laminin A G-domain-like repeats in its extracellular domain. Loss-of-function mutations lead to severe disorganization and degeneration of ectodermally derived embryonic epithelia. In embryos homozygous for crb8F105, an amorphic allele, the CRUMBS protein is diffusely distributed in the cytoplasm instead of being apically localized as in wild-type; this mislocation occurs before any morphologically detectable cellular phenotype becomes manifest, suggesting that apical targeting of proteins is affected in crb mutant embryos. This has been confirmed by using an antibody directed against YELLOW, another apically expressed protein. A single base exchange in crb8F105 leads to the introduction of a premature stop codon, thus eliminating the C-terminal part of the cytoplasmic domain. A possible role for crb in controlling apical-basal polarity is discussed.

Alleles↗

crumbs and stardust, two genes of Drosophila required for the development of epithelial cell polarity.

Loss-of-function mutations in the Drosophila genes crumbs and stardust are embryonic lethal and cause a breakdown of ectodermally derived epithelia during organogenesis, leading to formation of irregular cell clusters and extensive cell death in some epithelia. The mutant phenotype develops gradually and affects the various epithelia to different extents. crumbs encodes a large transmembrane protein with 30 EGF-like repeats and four laminin A G-domain-like repeats in its extracellular domain, suggesting its participation in protein-protein interactions. The CRUMBS protein is exclusively expressed on the apical membrane of all ectodermally derived epithelia, the tissues affected in crumbs and stardust mutant embryos. The gene function is completely abolished by a crumbs mutation that causes production of a protein with a truncated cytoplasmic domain. Instead of being apically localized as in wild-type, the mutant CRUMBS protein is diffusely distributed in the cytoplasm; this occurs before any morphologically detectable cellular phenotype is visible, suggesting that targeting of proteins is affected in crumbs mutant embryos. Later, the protein can be detected on the apical and basolateral membranes. Mutations in stardust produce a phenotype nearly identical to that associated with crumbs mutations, suggesting that both genes are functionally related. Double mutant combinations and gene dosage studies suggest that both genes are part of a common genetic pathway, in which stardust acts downstream of crumbs.

Animals↗

Enhancer of splitD, a dominant mutation of Drosophila, and its use in the study of functional domains of a helix-loop-helix protein.

Helix-loop-helix proteins play important roles in developmental processes, such as myogenesis, neurogenesis, and sex determination. The gene Enhancer of split [E(spl)] of Drosophila, a member of a gene complex that is involved in early neurogenesis, encodes a protein with a basic domain and a helix-loop-helix motif. We took advantage of a dominant mutation of this gene, E(spl)D, to define in vivo structural features of this protein for proper function. The mutation renders the otherwise recessive eye phenotype of spl dominant. By germ-line transformation of different in vitro mutagenized versions of the E(spl) gene, we could demonstrate that the basic domain of this helix-loop-helix protein is functional and necessary for expression of the dominant phenotype. These results are supported by in vitro DNA-binding assays, which showed that the basic domain is in fact necessary for DNA binding, despite the presence of a proline residue. Furthermore, we could show that the dominant enhancement of spl is caused by truncation of the E(SPL)D protein in combination with deletion of a putative regulatory element.

Amino Acid Sequence↗

The Enhancer of split complex and adjacent genes in the 96F region of Drosophila melanogaster are required for segregation of neural and epidermal progenitor cells.

The Enhancer of split complex [E(spl)-C] of Drosophila melanogaster is located in the 96F region of the third chromosome and comprises at least seven structurally related genes, HLH-m delta, HLH-m gamma, HLH-m beta, HLH-m3, HLH-m5, HLH-m7 and E(spl). The functions of these genes are required during early neurogenesis to give neuroectodermal cells access to the epidermal pathway of development. Another gene in the 96F region, namely groucho, is also required for this process. However, groucho is not structurally related to, and appears to act independently of, the genes of the E(spl)-C; the possibility is discussed that groucho acts upstream to the E(spl)-C genes. Indirect evidence suggests that a neighboring transcription unit (m4) may also take part in the process. Of all these genes, only gro is essential; m4 is a dispensable gene, the deletion of which does not produce detectable morphogenetic abnormalities, and the genes of the E(spl)-C are to some extent redundant and can partially substitute for each other. This redundancy is probably due to the fact that the seven genes of the E(spl)-C encode highly conserved putative DNA-binding proteins of the bHLH family. The genes of the complex are interspersed among other genes which appear to be unrelated to the neuroepidermal lineage dichotomy.

Animals↗

Seven genes of the Enhancer of split complex of Drosophila melanogaster encode helix-loop-helix proteins.

Enhancer of split [E(spl)] is one of the neurogenic loci of Drosophila and, as such, is required for normal segregation of neural and epidermal cell progenitors. Genetic observations indicate that the E(spl) locus is in fact a gene complex comprising a cluster of related genes and that other genes of the region are also required for normal early neurogenesis. Three of the genes of the complex were known to encode helix-loop-helix (HLH) proteins and to be transcribed in nearly identical patterns. Here, we show that four other genes in the vicinity also encode HLH proteins and, during neuroblast segregation, three of them are expressed in the same pattern. We show by germ-line transformation that these three genes are also necessary to allow epidermal development of the neuroectodermal cells.

Amino Acid Sequence↗

The Drosophila gene Serrate encodes an EGF-like transmembrane protein with a complex expression pattern in embryos and wing discs.

We describe the molecular characterization of the Drosophila gene Serrate (Ser), which encodes an integral membrane protein. The extracellular domain contains two cysteine-rich regions, one of which is organized in a tandem array of 14 EGF-like repeats. Antibodies directed against part of the extracellular region confirm the localization of the protein in the membrane. In the wing imaginal discs, the protein is detected in those regions that are affected in the wings of two dominant mutations, SerD and SerBd. Both mutations as well as three out of eight newly induced revertants of SerD could be mapped molecularly to the transcribed region, confirming the identity between the gene Ser and the transcription unit characterized. During embryonic development, RNA and protein exhibit a complex expression pattern, which is, however, not correlated with an appropriate embryonic phenotype. Phenotypic interactions of Ser alleles with the neurogenic genes Notch and Delta coupled with the structural similarity of the proteins encoded by these three genes suggest close interactions at the protein level.

Amino Acid Sequence↗

crumbs encodes an EGF-like protein expressed on apical membranes of Drosophila epithelial cells and required for organization of epithelia.

We describe the molecular characterization of the Drosophila gene crumbs, which encodes an integral membrane protein with 30 EGF-like repeats in the extracellular part and exhibits a striking expression pattern. The protein is exclusively localized on the apical membranes of epithelial cells and concentrated at the borders between cells. Mutations in crumbs lead to severe disruptions in the organization of ectodermally derived epithelia and in some cases to cell death in these tissues. The structure and the expression pattern of the protein and the phenotype of mutations indicate a function of crumbs during the development of epithelia, possibly for the establishment and/or maintenance of cell polarity.

Amino Acid Sequence↗

Molecular analysis of a cellular decision during embryonic development of Drosophila melanogaster: epidermogenesis or neurogenesis.

In Drosophila melanogaster, the neuroblasts (neural progenitor cells) develop from a special region of the ectoderm, called the neuroectoderm. During early embryonic development, the neuroblasts separate from the remaining cells of the neuroectoderm, which develop as epidermoblasts (epidermal progenitor cells). The separation of these two cell types is the result of cellular interactions. The available data indicate that a signal chain formed by the products of several identified genes regulates the cell's decision to enter either neurogenesis or epidermogenesis. Various kinds of data, in particular from cell transplantation studies and from genetic and molecular analyses, suggest that the proteins encoded by the genes Notch and Delta interact at the membrane of the neuroectodermal cells to provide a regulatory signal. This signal is thought to lead, on the one hand, to epidermal development through the action of the genes of the Enhancer of split complex, a gene complex that encodes several functions related to the transduction and further processing of the signal, including the genetic regulation in the receiving cell; on the other hand, the signal is thought to lead to neural development through the participation of the genes of the achaete-scute complex and daughterless, which are members of a family of DNA-binding regulatory proteins and of the gene vnd whose molecular nature is still unknown.

Animals↗

Genetic and molecular mechanisms of neurogenesis in Drosophila melanogaster.

Cells of the neurogenic ectoderm of insects have to decide between a neural and an epidermal fate. In Drosophila, this decision id mediated by cellular interactions. The products of two different groups of genes, i.e., the neurogenic genes and the genes of the achaete-scute complex and daughterless, seem to provide the molecular basis for the elements of a signal chain that permits the commitment of the cells to a given fate.

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