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S A Chambers

Publications and source records attributed to S A Chambers.

11 recordsLinked to original sources

Insulin-related molecules and insulin effects in the sea urchin embryo.

Insulin, the polypeptide hormone secreted by the differentiated pancreas, may play a role in vertebrate development at prepancreatic stages. In an invertebrate embryo, the sea urchin Strongylocentrotus purpuratus, we now find that insulin modulates the levels of developmentally regulated mRNAs of different lineages (one ectoderm-specific, one mesoderm-specific, and one found in all cell types). Using indirect immunofluorescence, we have localized a molecule which shares antigenic determinants with mammalian insulin in the unfertilized egg as well as in the gut of pluteus larva sea urchins. In addition, Southern hybridization reveals high similarity between sea urchin DNA sequences and the human insulin receptor gene. Our results suggest the presence of an insulin/insulin receptor-related system in sea urchin development.

Animals

Expression of a collagen gene in mesenchyme lineages of the Strongylocentrotus purpuratus embryo.

We have previously described cloning of an exon of a sea urchin collagen gene and shown that its expression is temporally regulated during embryogenesis, beginning during blastula formation. We have now localized the protein encoded by the gene and the sites of its mRNA synthesis in the developing embryo. Antibody to a synthetic peptide reacts with a 208,000 Mr protein that is digestible by collagenase. Fractionation of pluteus stage embryos demonstrates that the protein is localized primarily with cells that form the syncytium of primary mesenchyme that elaborates the larval endoskeleton; furthermore, immunofluorescence localizes the epitope to the periphery of the endoskeleton in situ. Transcripts of the gene accumulate only in mesenchyme cells, especially those of the primary mesenchyme lineage. Measurements of absolute transcript abundance show that collagen mRNA is present in blastula primary mesenchyme cells at 600-700 copies per cell and at about fourfold lower amounts in other mesenchyme cells.

Animals

Stage-specific expression of beta-1, 3-glucanase in sea urchin embryos and hybrids.

In some species of sea urchin, such as Lytechinus variegatus beta-1, 3-glucanase activity is present at two distinct developmental stages (in the unfertilized egg and again following gastrulation). There is a different form of the enzyme beta-1, 3-glucanase specific to each stage, and these forms can be distinguished immunologically and biochemically. The distinguishing characteristics of the egg and embryonic enzymes were used to analyze the forms of beta-1, 3-glucanase present in other species that express activity at only one of the two stages. The enzyme present in Tripneustes esculentes, which has activity only early in development, is an 80,000 dalton enzyme antigenically similar to the egg enzyme in Lytechinus. The enzyme present following gastrulation in Echinometra lucunter, however, is distinct from the egg enzyme and is similar to the embryonic enzyme in Lytechinus, despite the absence of activity in the eggs of Echinometra. These results indicate the two forms of beta-1, 3-glucanase (egg and embryonic) are expressed independently and in a stage-specific manner, suggesting they are not functionally equivalent. beta-1, 3-glucanase activity was also analyzed in interspecific hybrids. Tripneustes esculentes (which normally lacks the embryonic form) suppressed the expression of the embryonic enzyme in crosses with Lytechinus variegatus (which normally does express it). This suppression occurred whether the Tripneustes genetic material was maternal or paternal in origin. However, the embryonic enzyme normally expressed by Echinometra was expressed in crosses of this species with Tripneustes, i.e, Tripneustes did not suppress enzyme expression in these hybrids.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

A cortical granule-specific enzyme, B-1,3-glucanase, in sea urchin eggs.

The ultrastructural localization of B-1,3-glucanase in three species of sea urchin eggs was determined using a monospecific antibody in an electronmicroscopic immunogold procedure. In all three species, Lytechinus variegatus, Strongylocentrotus purpuratus, and Arbacia punctulata, B-1,3-glucanase was localized specifically to the cortical granules. No other organelle within the egg contained significant label. During the fertilization reaction, B-1,3-glucanase was released from cortical granules into the perivitelline space and became associated with the hyaline layer. No significant label was found in association with the fertilization envelope.

Animals

Histone modifications accompanying the onset of developmental commitment.

In the sea urchin, Strongylocentrotus purpuratus, three cell types comprise the 16-cell stage embryo: micromeres, macromeres, and mesomeres. We have analyzed these three cell types for nuclear proteins that were synthesized during the earliest stages of embryonic development. The most striking differences in composition of newly synthesized proteins were found between the micromeres, which are the most committed cell type, and the macromeres and mesomeres. First, the micromeres lacked triply modified forms of histone H3; the levels of doubly modified forms of H3 were also greatly reduced. In contrast, micromeres were enriched in a band which migrated at the position of unmodified, unacetylated, histone H3 protein. Second, the overall distribution of H2A histone variants differed among the three cell types. Compared with macromeres and mesomeres, micromeres had a higher ratio of alpha-stage to cleavage-stage (CS) histone H2A; the micromere nuclei were depleted by 50 and 35%, respectively, in embryonically synthesized histone CS-H2A. Third, micromeres displayed different profiles of H1 histones. (a) They contained a cleavage-stage H1 histone which migrated faster than that of macromeres and mesomeres. This protein displays the electrophoretic behavior expected for a protein with reduced levels of posttranslational covalent modification. (b) Micromeres also had reduced levels of an H1 histone (designated H1 alpha a) band found in the alpha-H1 region of macromeres and mesomeres. These changes in chromatin modification correlate with the degree of commitment of cells in the developing embryo; they may reflect differing activities of the chromatin modifying enzymes in the various cell types at the 16-cell stage. Thus, the newly synthesized chromatin proteins of the individual blastomere types already differ in the developing sea urchin by the 16-cell stage. We suggest that variations in histone subtypes and in the levels of activity of chromatin modifying enzymes, e.g., acetylases and phosphorylases, could be involved in commitment and differentiation of different cell types.

Acetylation

Levels of histone H4 diacetylation decrease dramatically during sea urchin embryonic development and correlate with cell doubling rate.

Basic proteins in nuclei and nucleosomes at different stages of development in Arbacia punctulata sea urchins were analyzed directly by in situ protamine release of chromosomal proteins into Triton/acid/urea-polyacrylamide gels. The predominant protein band in the H4 region of 2-cell through 64-cell stage embryos migrates with the mobility expected for diacetylated histone H4 (i.e. H4aa), whereas after blastulation (approximately 300 cells) the predominant H4 species is the unmodified form, H4O. In early embryos this H4aa band is highly labeled in vivo with [3H]acetic acid. The ratio of H4aa:H4O is more than 20-fold greater at the rapidly dividing 2-cell stage than at pluteus stage. This is true for both newly synthesized H4 labeled with [3H]lysine and total H4 (stained). Enhanced acetylation is also found in nucleosomes. The relative amount of this acetylated H4 species correlates roughly with the rate of cell doubling during early embryogenesis, and decreases as the average nucleosomal repeat increases. The results are indicative of a dynamically changing chromatin structure through development, as well as an intimate role of diacetylated histone H4 in the maturation of newly replicated chromatin.

Acetylation

Enrichment of transcribed and newly replicated DNA in soluble chromatin released from nuclei by mild micrococcal nuclease digestion.

A chromatin fraction solubilized from mouse myeloma nuclei under near-physiological ionic conditions by very mild micrococcal nuclease digestion at 0 degrees C is enriched at least 7-fold in DNA complementary to total myeloma polyadenylated mRNA, and 15-fold in DNA originating near the replication fork (labeled within 30 s). Newly replicated DNA recovered in solubilized chromatin after brief labeling was incorporated mainly into particles sedimenting with, or faster than, mononucleosomes. A rapid decrease in enrichment of newly replicated DNA in readily released, soluble chromatin with increasing labeling times indicated that newly replicated chromatin matured within 90 s to a form that was partitioned similarly to bulk chromatin by this fractionation method. Previous studies showed that chromatin readily solubilized from myeloma nuclei is enriched in high-mobility-group (HMG) and other non-histone proteins, RNA and single-stranded DNA; and depleted in H1 and 5-methylcytosine, relative to bulk chromatin (Jackson, J.B., Pollock , J.M., Jr., and Rill , R.L. (1979) Biochemistry 18, 3739-3748). Mild digestion of chicken erythrocyte nuclei with micrococcal nuclease yielded a soluble chromatin fraction (1-2% of the total DNA) with similar properties. This fraction was enriched at least 6-fold in DNA complementary to chicken globin mRNA, relative to total erythrocyte DNA.

Animals

Non-histone proteins of soluble nucleoproteins released from mouse myeloma nuclei by mild micrococcal nuclease digestion.

Mono- and dinucleosomes preferentially cleaved from mouse myeloma chromatin by very mild micrococcal nuclease digestion at 0 degree C are soluble and are released from nuclei under near-physiological conditions in which normal nucleosomes containing Hl are insoluble. These nucleosomes are highly enriched in RNA, high-mobility-group proteins and a unique subset of other non-histone proteins. They are nearly devoid of histone Hl and contain DNA significantly less methylated than whole myeloma DNA, indicating that they comprise a subset of genomic sequences. Previously we have shown that this fraction is enriched in transcribed DNA sequences. Non-histone proteins that co-sedimented with readily solubilized nucleosomes included many of the most basic, low-to-moderate molecular weight chromosomal proteins. Many of these proteins were also preferentially acetylated in vivo. The residual, pelleted chromatin was highly enriched in high molecular weight proteins (greater than 60 000), and very depleted in medium molecular weight proteins. Readily solubilized nucleoproteins sedimenting like mononucleosomes were partly resolved by electrophoresis, under non-denaturing conditions, into several subfractions differing significantly in non-histone protein contents. Methods described here should be useful for identifying and isolating non-histone proteins bound to nucleosomes and other chromatin regions that are structurally and functionally unique.

Acetates

Diffusible factors are responsible for differences in nuclease sensitivity among chromatins originating from different cell types.

We have examined the kinetics of nuclease digestion of chromatin from committed and uncommitted cells in experiments where the nuclei are mixed and co-digested. Cultures of the sea urchin, Arbacia punctulata, were grown to the 16-cell stage in either [3H]thymidine or [14C]thymidine and the macromere, mesomere, and micromere cell types separated. After isolation, sets of nuclei with two different blastomere types (each having different radionucleotide tagging) were mixed and co-digested with micrococcal nuclease or DNase. I. The extent of digestion was monitored by solubility in 5% perchloric acid (PCA). We find no significant differences in initial digestion rates or limit digests among the different cell types when co-digested with either nuclease. Differences in nuclease sensitivity observed when nuclei are digested separately are abolished when nuclei are probed in a mixing experiment. The results support the hypothesis that phenotypic differences in digestibility among different cell types in vitro reflect differences in chromatin-condensing factors which can diffuse between nuclei.

Animals

Shortest nucleosomal repeat lengths during sea urchin development are found in two-cell embryos.

Prior to fertilization, sperm possess one of the longest nucleosome repeat lengths yet determined [approximately 250 base pairs (bp) for the sea urchin Strongylocentrotus purpuratus]. We show here that the two-cell embryo has an average repeat size of 189 +/- 2 bp as probed by micrococcal nuclease; this is the shortest average nucleosomal subunit reported for S. purpuratus. By the eight-cell stage, the average nucleosome repeat increases to 201 +/- 2 bp, and it subsequently increases further during development. These results indicate that a dramatic rearrangement of chromatin occurs upon fertilization and that this chromatin remodeling continues through early development. When two-cell embryos are labeled for 30 min with [3H]thymidine and digested briefly, they exhibit nuclease-hypersensitive fragments averaging 308 bp in size, which are consistent with the size of protected DNA units in replication intermediate complexes at blastula stage (as described by Levy and Jacob [Levy, A., & Jacob, K. M. (1978) Cell (Cambridge, Mass.) 14, 259]). Our results are consistent with two general propositions: (1) long repeat lengths are found in highly differentiated cells, and (2) short repeat lengths are characteristic of cells more active in cell division. Our data would also imply that a rapid increase in the DNA complement, e.g., in the transition from haploid to diploid state following fertilization, is accompanied by a shortening of the average size of DNA in a nucleosome after replication.

Animals