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E H Davidson

Publications and source records attributed to E H Davidson.

At least 73 records · Page 4Linked to original sources

A multimerizing transcription factor of sea urchin embryos capable of looping DNA.

SpGCF1 is a recently cloned sea urchin transcription factor that recognizes target sites in several different sea urchin genes. We find that in gel-shift experiments this factor is able to multimerize. A quantitative simulation of the gel-shift results suggests that SpGCF1 molecules that are bound to DNA target sites may also bind to one another, thus associating several DNA probe molecules. SpGCF1 might therefore be able to loop DNA molecules bearing its target sites at distant locations. We demonstrate this prediction by electron microscopy, and using the well-characterized cis-regulatory domain of the CyIIIa cytoskeletal actin gene, we show that the loop conformations predicted from the known SpGCF1 target site locations are actually formed in vitro. We speculate that the multimerization of this factor in vivo may function to bring distant regions of extended regulatory domains into immediate proximity so that they can interact with one another.

Actins↗

SpGCF1, a sea urchin embryo DNA-binding protein, exists as five nested variants encoded by a single mRNA.

Several Strongylocentrotus purpuratus gene cis-regulatory regions contain asymmetric C4 sequences which are core elements of target sites for a specific DNA-protein interaction. Blastula stage nuclear extract contains five proteins which specifically bind to these target sites, resulting in a characteristic pattern of complexes in gel mobility shift assays. We used automated affinity chromatography to purify a protein which binds to these sites and have isolated the corresponding cDNA. This protein, SpGCF1, is a novel sea urchin DNA-binding protein with no overall homology to proteins reported in the databases currently available. The DNA-binding domain of this protein was identified by a deletion analysis. As demonstrated both for protein translated in vitro and for bacterial protein expressed from a cDNA clone, a single SpGCF1 mRNA serves as a template for the synthesis of five DNA-binding polypeptides. We show that these five polypeptides are most likely produced by differential usage of a nested set of AUG start codons in the SpGCF1 cDNA and thus contain variable amounts of a proline-rich N-terminal domain. Since proline-rich regions often serve as transcriptional activation domains, the five SpGCF1 proteins apparently possess different "activation potentials."

Amino Acid Sequence↗

Developmental utilization of SpP3A1 and SpP3A2: two proteins which recognize the same DNA target site in several sea urchin gene regulatory regions.

SpP3A1 and SpP3A2 are DNA-binding proteins that interact specifically with the same target sites in the regulatory domains of the Strongylocentrotus purpuratus CyIIIa gene and also of several other known genes. In this work we used antibodies raised against recombinant P3A1 and P3A2 to quantitate these transcription factors in eggs and in the nuclear compartments of embryos of various stages. Both proteins are present in unfertilized eggs, and both enter the embryonic nuclei early in development, but only P3A2 remains present in nuclei at functional concentrations beyond the early gastrula stage. Combined with earlier measurements of P3A site binding at cleavage stages, these measurements show that P3A1 would be replaced by P3A2 at target sites in genes regulated by these factors.

Animals↗

Gypsy/Ty3-class retrotransposons integrated in the DNA of herring, tunicate, and echinoderms.

Eight new examples of retrotransposons of the Gypsy/Ty3 class have been identified in marine species. A 525-nt pol gene-coding region was amplified using degenerate primers from highly conserved regions and has extended the range of recognition of Gypsy/Ty3 far beyond those previously known. The following matrix shows the percentage AA divergence of the translations of this segment of the pol gene coding region. [table: see text] The underlines separate three groups of retrotransposons that can be recognized on the basis of this amino acid sequence. The new upper group shows surprising amino acid sequence similarity among members from the DNA of herring, sea urchin, starfish, and a tunicate. For example, the herring element differs by only 41% from the Ciona element and 46% from the sea urchin element. The group between the lines includes members close to previously known elements (marked by asterisks) and has so far been found only in sea urchins. The two upper groups differ from each other by 55-60% and yet members of both groups (e.g., Spr1 and Spr2) are integrated into the DNA of one species--S. purpuratus. Below the lower underline is listed the only known representative of a very distant group, which occurs in starfish DNA. In spite of large divergence, amino acid sequence comparisons indicate that all of the elements shown in the array are members of the LTR-containing class of retrotransposons that includes Gypsy of Drosophila and Ty3 of yeast. Of all known mobile elements this class shows the closest sequence similarity to retroviruses and has the same arrangement of genes as simpler retroviruses.

Amino Acid Sequence↗

Phylogeny, rates of evolution, and patterns of codon usage among sea urchin retroviral-like elements, with implications for the recognition of horizontal transfer.

Phylogenetic relationships, rates of evolution, and codon usage were investigated in a family of retrotransposons (SURL elements) found in echinoids. The phylogeny of SURL element reverse transcriptase sequences from 10 echinoid species clearly shows the phylogenetic signature of the host taxa as well as paralogous sequences that diverged prior to speciation events. Two subfamilies (1 and 5) of SURL element reverse transcriptase sequences are recognized that diverged prior to the radiation of the Echinometridae. Comparisons of synonymous versus nonsynonymous substitutions indicate that SURL elements have been active in echinoid genomes and have evolved under purifying selection for millions of years. Rates of synonymous substitution for reverse transcriptase are similar to rates of single-copy DNA evolution and to rates of synonymous substitution for the H3 and H4 histone genes, contradicting the assumption that rates of evolution are accelerated in retrotransposons. Finally, codon usage in SURL elements is biased for codons ending in A or U relative to 42 sea urchin nuclear genes. Biased codon usage is sometimes cited as evidence for horizontal transfer, but in the case of SURL elements this bias occurs in spite of a long history of vertical transmission rather than because of horizontal transfer.

Animals↗

Micromeres are required for normal vegetal plate specification in sea urchin embryos.

Vegetal plate specification was assessed in S. purpuratus embryos after micromere deletions at the 4th, 5th and 6th cleavages, by assaying expression of the early vegetal plate marker Endo 16, using whole-mount in situ hybridization. After 4th cleavage micromere deletions, the embryos typically displayed weak Endo16 expression in relatively few cells of the lineages that normally constitute the vegetal plate, while after 5th and 6th cleavage micromere deletions the embryos exhibited strong Endo16 expression in larger fractions of cells belonging to those lineages. When all four micromeres were deleted, the embryos were severely delayed in initiating gastrulation and sometimes failed to complete gastrulation. However, if only one micromere was allowed to remain in situ throughout development, the embryos exhibited strong Endo16 expression and gastrulation occurred normally, on schedule with controls. Additional measurements showed that these microsurgical manipulations do not alter cleavage rates or generally disrupt embryo organization. These results constitute direct evidence that the micromeres provide signals required by the macromere lineages for initiation of vegetal plate specification. The specification of the vegetal plate is completed in a normal manner only if micromere signaling is allowed to continue at least to the 6th cleavage stage.

Animals↗

SpZ12-1, a negative regulator required for spatial control of the territory-specific CyIIIa gene in the sea urchin embryo.

The CyIIIa cytoskeletal actin gene of the sea urchin Strongylocentrotus purpuratus is activated in late cleavage and expressed exclusively in the aboral ectoderm territory of the embryo. Previous gene transfer studies defined a 2.3 kb cis-regulatory region that is necessary and sufficient for correct temporal and spatial expression of a CyIIIa.CAT fusion gene. In this paper, a negative regulatory element within this region was identified that is required for repression of the CyIIIa gene in skeletogenic mesenchyme cells. The repression mediated by this regulatory element takes place after initial territorial specification. A cDNA clone encoding a DNA-binding protein with twelve Zn fingers (SpZ12-1) was isolated by probing an expression library with this cis-element. Deletion analysis of the SpZ12-1 protein confirmed that a DNA-binding domain is located within the Zn finger region. SpZ12-1 is the only DNA-binding protein in embryo nuclear extract that interacts with the specific cis-target sites required for repression of CyIIIa.CAT in skeletogenic mesenchyme and is likely to be the trans factor that mediates this repression.

Actins↗

Cis-regulatory control of the SM50 gene, an early marker of skeletogenic lineage specification in the sea urchin embryo.

The SM50 gene encodes a minor matrix protein of the sea urchin embryo spicule. We carried out a detailed functional analysis of a cis-regulatory region of this gene, extending 440 bp upstream and 120 bp downstream of the transcription start site, that had been shown earlier to confer accurate skeletogenic expression of an injected expression vector. The distal portion of this fragment contains elements controlling amplitude of expression, while the region from -200 to +105 contains spatial control elements that position expression accurately in the skeletogenic lineages of the embryo. A systematic mutagenesis analysis of this region revealed four adjacent regulatory elements, viz two copies of a positively acting sequence (element D) that are positioned just upstream of the transcription start site; an indispensable spatial control element (element C) that is positioned downstream of the start site; and further downstream, a second positively acting sequence (element A). We then constructed a series of synthetic expression constructs. These contained oligonucleotides representing normal and mutated versions of elements D, C, and A, in various combinations. We also changed the promoter of the SM50 gene from a TATA-less to a canonical TATA box form, without any effect on function. Perfect spatial regulation was also produced by a final series of constructs that consisted entirely of heterologous enhancers from the CyIIIa gene, the SV40 early promoter, and synthetic D, C, and A elements. We demonstrate that element C exercises the primary spatial control function of the region we analyzed. We term this a 'locator' element. This differs from conventional 'tissue-specific enhancers' in that while it is essential for expression, it has no transcriptional activity on its own, and it requires other, separable, positive regulatory elements for activity. In the normal configuration these ancillary positive functions are mediated by elements A and D. Only positively acting control elements were observed in the SM50 regulatory domain throughout this analysis.

Animals↗

Maternal and embryonic provenance of a sea urchin embryo transcription factor, SpZ12-1.

SpZ12-1 is a zinc-finger transcription factor. Previous work has indicated that this factor functions late in embryogenesis as a spatial transcriptional repressor. We show here that this factor is present in significant quantities even in unfertilized egg cytoplasm, and in similar quantities in mesenchyme blastula-stage embryo cytoplasm. Taken together with earlier measurements of Calzone and associates, our observations indicate that SpZ12-1 enters the embryonic nuclei between late cleavage and mesenchyme blastula stages. A low-prevalence mRNA encoding SpZ12-1 is also present throughout development. Translation of this mRNA could, however, easily account for the complete complement of SpZ12-1 protein in the embryo, as estimated from its DNA binding activity. SpZ12-1 probably functions at several developmental stages and is evidently of both maternal and embryonic provenance.

Animals↗

The echinoderm immune system. Characters shared with vertebrate immune systems and characters arising later in deuterostome phylogeny.

In summary, the characters of the echinoderm immune system that we review here can be considered to illuminate the baseline nonadaptive immune systems that were our original deuterostome heritage. We still retain--and greatly rely upon--similarly functioning, nonadaptive cellular defense systems. It is worth stressing that sea urchins are long lived, normally healthy animals that display remarkable abilities to heal wounds and combat major infections. From an external point of view, their immune systems obviously work very well. Thus, their cellular defense systems are extremely sensitive, and they respond rapidly to minor perturbations, all without any specific adaptive capabilities. These systems probably function through the transduction of signals conveying information on injury and infection, just as do the equivalent systems that underlie and back up our own adaptive immune systems, and that provide the initial series of defenses against pathogenic invasions. Many extremely interesting questions remain regarding the evolution of the deuterostome immune response. Are the echinoderm and tunicate systems the same, or have the protochordates augmented the basic phagocyte system with an as yet unidentified chordate-like character? Do the jawless fishes produce Igs that would make them similar to the sharks, or are they vertebrates without an Ig system that essentially rely on an invertebrate-like, nonspecific, activated phagocyte type of immune system? How do sharks regulate their immune system without T cells and MHC class I? How do they avoid producing autoantibodies? Future research will not only answer these questions, but those answers will also be enlightening with regard to the origins of the mammalian immune system in which ancient functions and subsystems remain.

Animals↗

Molecular biology of embryonic development: how far have we come in the last ten years?

The successes of molecular developmental biology over the last ten years have been particularly impressive in those directions favored by its major paradigms. New technologies have both guided and been guided by the progress of the field. I review briefly some of the major insights into embryonic development that have derived from research in four specific areas: early embryogenesis of various forms; 'pattern formation'; evolutionary conservation of regulatory elements; and spatial mechanisms of gene regulation. There remain many major problem areas, some of which may require new orientations to solve.

Animals↗

Repeated sequence target sites for maternal DNA-binding proteins in genes activated in early sea urchin development.

This communication concerns a very highly conserved inverted repeat sequence element that serves as a target site for a sea urchin maternal DNA-binding factor. The maternal factor is present in relatively large amounts in unfertilized eggs, but is about 100 x less prevalent per embryo in 24-hr embryo nuclear extract. The inverted repeat target site is found in the regulatory domain of the CyIIIa cytoskeletal actin gene and also in two upstream genes encoding transcription factors that bind to a functionally important cis-regulatory element of the CyIIIa gene. There are about 460 copies of the inverted repeat target site per genome. About 15% of these sites occur in a nested arrangement together with a second inverted repeat that binds another previously characterized maternal transcription factor. This arrangement is the same as that which occurs in the CyIIIa gene, and it may be of regulatory significance with respect to activation of certain genes in oogenesis and early embryogenesis.

Actins↗

The sea urchin profilin gene is specifically expressed in mesenchyme cells during gastrulation.

Eggs and embryos of the purple sea urchin (Strongylocentrotus purpuratus) contain profilin that is partly supplied from maternal sources and partly produced by the gastrula. The maternal profilin protein content is about 13 microM and it persists in the embryo at least through gastrulation. Transcript quantitation from probe excess titrations show that very few profilin gene transcripts are present in the embryo during cleavage, but that they increase at the onset of gastrulation. By in situ hybridization, the newly synthesized profilin transcripts are localized in mesenchyme cells. Profilin gene expression increases when mesenchyme cells initiate migration and filopodial extension and retraction. We show that there are three isoforms of maternal profilin protein produced from the single copy gene during oogenesis. However, the blastula stage embryo only produces the major isoform, whereas the acidic isoform is produced in the early stages of gastrulation and the basic isoform appears by the end of gastrulation. Based on transcript prevalence and protein production rates, our calculations indicate that the amount of new protein produced in the mesenchyme cells in 12 hr is at maximum < 2% of that supplied from maternal sources. Because of the large amount of maternally supplied profilin present in the egg and embryo, we suggest that it may be used in the cytokinetic processes of cleavage. Alternatively, because of the small amount of embryonically produced profilin, we suggest that it may function in the cytoskeletal shape changes required for filopodial extension and motility in the mesenchyme cells during gastrulation.

Animals↗

Development of sibling inbred sea urchins: normal embryogenesis, but frequent postembryonic malformation, arrest and lethality.

Inbred lines of Strongylocentrotus purpuratus descended from a single pair of wild animals were constructed by sibling mating. We describe results from a systematic series of crosses in which eggs from F2 and from F3 females were fertilized respectively with sperm from their sibling males. Observations were also made on self-fertilized cultures derived from several naturally occurring hermaphrodites. Morphological development, survival efficiency, and expression of three territorial embryonic markers were assayed in the embryos developing from these crosses. Unexpectedly, out of > 90 controlled crosses, we observed no developmental failures whatsoever, up to the end of embryogenesis (i.e., onset of feeding) that could be attributed to homozygous, zygotically acting recessive genes. However, during postembryonic larval development, lethality, morphological malformation, and arrest are observed in inbred cultures at a high frequency. The incidence of these zygotic developmental failures is such that it appears that there is at least one recessive genetic defect affecting larval development per haploid parental genome. The relative imperviousness of the basic embryonic process to defects arising from homozygosity is consistent with other evidence implying that territorial specification in sea urchin embryogenesis is controlled by maternally rather than zygotically expressed gene products.

Animals↗

Ligand-dependent stimulation of introduced mammalian brain receptors alters spicule symmetry and other morphogenetic events in sea urchin embryos.

Zygotes of S. purpuratus were injected with synthetic mRNAs encoding rodent brain neurotransmitter receptors, and specific developmental phenotypes were produced on addition to the sea water of the respective ligands. Most of these experiments were carried out with a mouse serotonin receptor (5HT-R) mRNA, though exactly comparable results were obtained with a rat muscarinic acetylcholine receptor (MAChR) mRNA; these receptors are expected to couple to the same endogenous signal transduction system. We show by whole mount in situ hybridization that the injected mRNAs diffuse to all of the early blastomeres, and that they are translated in vivo. Three specific phenotypes were reproducibly observed. The most severe, occurring at highest levels of injected mRNA, was a cleavage arrest phenotype in which no overtly differentiated cells ever appear, though the embryos remain alive for at least 72 h. A gastrular arrest (GA) phenotype is generated in appreciable fractions of embryos developing from eggs injected with lower levels of mRNA. In GA embryos the blastocoel is filled with disorganized mesenchyme cells, including pigment cells and skeletogenic cells; there is no archenteron; and the entire ectoderm expresses an oral ectoderm cell surface marker. The least severe phenotype that we recognized displays an altered arrangement of spiculogenic foci (RSE phenotype), generating a ring of extra spicules that are properly positioned with respect to the animal/vegetal axis, but that lack any reference to the oral/aboral axis. However, use of cytological and molecular markers demonstrates that RSE embryos retain normal spatial patterns of aboral and oral ectoderm. They develop a fully formed archenteron, but fail to form either a stomodaeum or a ciliated band. RSE embryos can be produced in embryos expressing the 5HT-R by exposure to serotonin, beginning as late as 12 h postfertilization (pf). All of the morphogenetic processes affected in RSE embryos depend in normal embryos on intercellular interactions occurring at the blastula-gastrula stages of development.

Animals↗

Complexity and organization of DNA-protein interactions in the 5'-regulatory region of an endoderm-specific marker gene in the sea urchin embryo.

This study concerns the organization of sites of specific DNA/protein interaction within the regulatory domain of the Endo16 gene of Strongylocentrotus purpuratus. Earlier work had displayed a complex pattern of expression of this gene during embryogenesis. Endo16 transcripts are confined to the definitive vegetal plate in blastula stage embryos; at gastrula stage this gene is expressed throughout the archenteron, but later only in the midgut. In this work we exploited the exceptional experimental accessibility of the sea urchin embryo, with respect to both functional assays of gene regulatory systems and to characterization of transcription factors, in order to approach a complete description of potential Endo16 regulatory interactions. Accurate expression of an Endo16 fusion gene was obtained with a 2200-nucleotide (nt) upstream fragment of the gene. We present a map locating high specificity target sites for DNA-binding proteins within the 2200-nt Endo16 regulatory domain, and an assessment of the complexity of the set of putative Endo16 transcription factors that we have been able to recover from 24-h (blastula stage) nuclear extract. Protein binding sites were initially mapped by gel shift reactions carried out on nested sets of end-labeled restriction fragments, and then to finer resolution by oligonucleotide gel shift competitions. Thirty-eight sites of high specificity DNA-protein interaction were thus identified. Appropriate oligonucleotides were then used for partial purification of the DNA-binding proteins by affinity chromatography. DNA-binding proteins specific for each target site were identified by molecular weight, using southwestern blotting procedures and two-dimensional gel shift separations, and by directly renaturing and reacting with oligonucleotide probes specific proteins that had been resolved by SDS-PAGE from selected affinity column fractions. A complete series of gel shift cross-competitions amongst the target sites was carried out. We conclude that nine different protein factors are bound at unique sites within the Endo16 regulatory domain. Multiple target sites for five other proteins account for the remaining binding site locations. The target sites appear to be organized in a sequence of clusters, focused on the unique factors. The high complexity of the Endo16 gene regulatory system may be characteristic for genes that are spatially regulated in early embryonic development.

Animals↗

A complete second gut induced by transplanted micromeres in the sea urchin embryo.

Founder cells for most early lineages of the sea urchin embryo are probably specified through inductive intercellular interactions. It is shown here that a complete respecification of cell fate occurs when 16-cell stage micromeres from the vegetal pole of a donor embryo are implanted into the animal pole of an intact recipient embryo. Animal pole cells adjacent to the transplanted micromeres are respecified from presumptive ectoderm into vegetal plate founder cells. These induced vegetal plate cells express the entire battery of genes characteristic of the endogenous vegetal plate cells. The ectopic vegetal plate invaginates during gastrulation to form a second archenteron which differentiates properly into a tripartite gut, as shown by the spatial pattern of expression of an endoderm-specific marker gene. Thus, transplanted micromeres can signal neighboring cells to induce them to change their fate.

Animals↗

SpOct, a gene encoding the major octamer-binding protein in sea urchin embryos: expression profile, evolutionary relationships, and DNA binding of expressed protein.

We have characterized a sea urchin gene, SpOct, that encodes a 78-kDa POU-domain protein related to mammalian Oct-1 and Oct-2. The SpOct protein binds octamer elements in the promoters of the alpha H2B (Bell et al., 1992, Dev. Biol. 150, 363-371) and CyIIIa actin genes, and it closely resembles the major octamer-binding activity obtained from sea urchin blastula nuclear lysates in the size of its DNase I footprint on a canonical octamer element and in its relative binding affinity (Kr) for the octamer element versus poly(dAT) (1.4 x 10(4)). Moreover, partial protein sequences obtained from affinity-purified octamer-binding protein match sequences present in SpOct. These data suggest that SpOct is closely related to, if not identical with, the major octamer-binding activity in blastula nuclear extracts. RNA gel blots reveal four forms of SpOct mRNA, ranging in size from 4 to 12 kb. They are regulated coordinately in the embryo: all are present in the unfertilized egg, increase 28-fold in amount by the 8-hr blastula stage, and decline 6-fold by the 12-hr blastula stage. The same four size classes of SpOct mRNAs are present in several adult tissues, although their relative amounts vary. The temporal profile of SpOct mRNA expression in embryos closely resembles that of the alpha histone H2B gene. Our previous work (Bell et al., 1992) showed that expression of the alpha H2B gene in blastula-stage embryos was entirely dependent on an octamer element. Together, these data strongly suggest that SpOct may be the key regulator of the alpha H2B gene.

Amino Acid Sequence↗