Search PubMed⌕ Search

Biomedical subjects

S F Gilbert

Publications and source records attributed to S F Gilbert.

40 records · Page 3Linked to original sources

Renal enzymes in kidney cells selected by D-valine medium.

The ability of D-valine medium to inhibit fibroblasts in cultures derived from kidneys of various mammals has enabled the selective proliferation of epithlial cells in the absence of fibroblast overgrowth. Studies of these selected epithelial cells have demonstrated the presence of D-amino acid oxidase, carbonic anhydrase, high levels of alkaline phosphatase and the renal specific pattern of lactate dehydrogenase. The presence of these renal enzymes suggests that the selected epithelial cells are of renal tubular origin and indicates that these differentiated functions are retained in cultured cells.

Alkaline Phosphatase↗

D-valine as a selective agent for normal human and rodent epithelial cells in culture.

A nutrient medium has been developed to enable the growth of normal epithelial cells while selectively inhibiting fibroblast proliferation. In this medium, D-valine is substituted for L-valine; and only those cells containing D-amino acid oxidase can convert the D-amino acid into its essential L-enantiomer. The ability to select for cells with this enzyme has enabled us to maintain epithelial cell populations free from fibroblast overgrowth. The presence of D-amino acid oxidase has been histochemically confirmed in the epithelial cells selected from renal cell suspensions and explants. The ability to proliferate in the selective medium is transmitted to the clonal progeny of these cells. Moreover, epithelial cell proliferation of this medium indicates the presence of D-amino acid oxidase, which we have detected in tissues where it had not previously been reported-fetal human kidney, lung, and cord. Fibroblasts will not grow in the selective medium, but will proliferate normally if the product of the D-amino acid oxidase reaction is supplied.

Animals↗

Morphogenesis of the turtle shell: the development of a novel structure in tetrapod evolution.

The turtle shell is an evolutionary novelty that is synapomorphic for chelonians. The carapace is initiated by the entrapment of the ribs by the carapacial ridge (CR), a lateral bulge of the dorsal ectoderm and dermal mesoderm. The mechanisms by which the CR is initiated, the ribs entrapped and the dorsal dermis ossified, remains unknown. Similarly, the formation of the plastron remains unexplained. Here, we present a series of anatomical investigations into plastron and carapace formation in the red-eared slider, Trachemys scripta, and the snapping turtle, Chelydra serpentina. We document the entrapment of the ribs by the CR and the formation of the plastron and carapacial bones by intramembranous ossification. We note the formation of the ossification centers around each rib, which suggest that the rib is organizing dermal ossification by secreting paracrine factors. The nuchal ossification center is complex and appears to involve multiple bone-forming regions. Individual ossification centers at the periphery of the carapace form the peripheral and pygial bones. The intramembranous ossification of the plastron proceeds from nine distinct ossification centers, and there appear to be interactions between the spicules of apposing centers as they draw near each other.

Animal Structures↗

[Ecological developmental biology: developmental biology meets the real world].

The production of phenotype is regulated by differential gene expression. However, the regulators of gene expression need not all reside within the embryo. Environmental factors, such as temperature, photoperiod, diet, population density, or the presence of predators, can produce specific phenotypes, presumably by altering gene-expression patterns. The field of ecological developmental biology seeks to look at development in the real world of predators, competitors, and changing seasons. Ecological concerns had played a major role in the formation of experimental embryology, and they are returning as the need for knowledge about the effects of environmental change on embryos and larvae becomes crucial. This essay reviews some of the areas of ecological developmental biology, concentrating on new studies of amphibia and Homo.

Animals↗