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T C Troy

Publications and source records attributed to T C Troy.

5 recordsLinked to original sources

Claudin-6: a novel tight junction molecule is developmentally regulated in mouse embryonic epithelium.

Embryonic stem (ES) cells differentiating into embryoid bodies (EBs) have been shown to mimic events of very early development and have become a convenient system in which to identify and study early epithelial specific genes. We describe here the primary structure of a mouse epithelial-specific tight junction gene and its expression patterns in differentiating ES cell-derived EBs in vitro. Sequencing of a clone identified by differential display of 4- vs. 6-day-old EB cells revealed it to overlap exactly with a larger cDNA clone (20M24) that had been isolated, but not characterised, in a screen of an ectodermal library. Complete sequencing and analysis of 20M24 revealed an open reading frame for a 219-amino acid protein with structural features of a transmembrane protein. In cell-free reticulocyte lysates, a 20M24 cDNA corresponding to the open reading frame (660 bp) directed the synthesis of a approximately 23-kDa protein that was localized to cell membranes at cell-cell junctions in transfected HEK-293 cells. Database searches indicated that the cDNA was identical to a recently identified member of the Claudin tight junction family, namely Claudin-6. ES cell cultures were used to further examine the expression pattern of Claudin-6 by whole mount in situ hybridisation during aggregation-induced commitment to epithelial differentiation in vitro. The results indicate that Claudin-6 is one of the earliest molecules to be expressed in ES cells committed to the epithelial fate, and the onset of its expression coincides with the expression of the early epithelial marker, keratin 8 (K8). The initiation of expression of Claudin-6 in vitro is dependent upon plating density as well as serum components. In addition, it was found that Claudin-6 expression is inhibited by Noggin, the Bone Morphogenic Protein (BMP)-signalling pathway inhibitor, suggesting that BMPs may be involved in Claudin-6 expression and epithelialization. These studies establish Claudin-6 as a very early marker of epithelialization and provide evidence that the BMP signalling pathway may be one of the ways that its expression is regulated. These studies also support the power of in vitro ES cell technology to identify and screen novel molecules involved in the early epithelialization of the mouse embryo.

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In vitro characteristics of early epidermal progenitors isolated from keratin 14 (K14)-deficient mice: insights into the role of keratin 17 in mouse keratinocytes.

Keratin 14 (K14) is believed to play a pivotal role in the maintenance of epidermal cell shape and contributing to their resistance to mechanical trauma, thereby protecting the cells from lysing. Mice harboring a K14 null mutation produce phenotypic characteristics of epidermolysis bullosa simplex, a skin blistering disease (Lloyd et al., 1995, J Cell Biol 129:1329-1344). K14 null animals die several days after birth, making the detailed study of the consequences of K14 deletion in epidermal cell physiology in vivo particularly difficult. To define the consequences of K14 loss more precisely, we used an in vitro approach by isolating K14-/- cell lines and studying epidermal differentiation in the K14 null background. Several keratinocyte cell lines were generated from 6-day-old mice homozygous for a targeted disruption of the K14 gene (lines designated MKC-5, MKC-23, and MKC-33) and from their wild-type littermates (lines designated MKC-1 and MKC-6). Under low Ca2+ (0.066 mM) and low serum (2%) conditions, both wild-type and mutant cells were able to adhere to collagen type I-coated dishes and form epithelial sheets. They maintained basal epidermal cell characteristics and continued to proliferate without obvious signs of terminal differentiation; however, K14-/- cells proliferated two- to threefold slower than did their wild-type counterparts. The distribution of K5, the natural partner of K14, at the immunofluorescence level was also normal looking in the K14-/- MKC-5 cells, but with fewer filaments detectable, consistent with the approximately 20% reduction in K5 detectable on immunoblots. K17 expression was increased approximately 40% in the K14-/- cells. The levels of K15 and K16 were not different in the MKC-5 and MKC-6 cell lines, suggesting that they are not contributing factors to the stabilization of K5 in the mutant cells. K8, K19, and vimentin were undetectable in both lines. Both MKC-5 and MKC-6 cells underwent morphological and biochemical differentiation in response to a switch to high Ca2+ medium. These findings indicate that K14-/- MKC-5 cells preserve the morphological, biochemical, and physiological characteristics of epidermal cells for an extensive period of time in vitro, likely due to the compensatory expression of K17. The culturing capacity of these cells also permits the analysis of keratinocyte growth and differentiation in the absence of K14. In addition, the culturing methods we describe will be useful for the generation of epithelial cell lines from a wealth of increasingly available knockout mouse strains with early lethality.

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Epidermal cell lineage.

The epidermis is a stratified squamous epithelium, which is under a constant state of proliferation, commitment, differentiation, and elimination so that the functional integrity of the tissue is maintained. The intact epidermis has the ability to respond to diverse environmental stimuli by continuous turnover to maintain its normal homeostasis throughout an organism's life. This is achieved by a tightly regulated balance between stem cell self-renewal and the generation of a population of cells that undergo a limited number of more rapid (amplifying) transit divisions before giving rise to nonproliferative, terminally differentiating cells. This process makes it an excellent model system to study lineage, commitment, and differentiation, although neither the identity of epidermal stem cells nor the precise steps and regulators that lead to mature epidermal cells have yet been determined. Furthermore, the identities of genes that initiate epidermal progenitor commitment to the epidermal lineage, from putative epidermal stem cells, are unknown. This is mainly due to the lack of an in vitro model system, as well as the lack of specific reagents, to study the early events in epidermal lineage. Our recent development of a differentiating embryonic stem cell model for epidermal lineage now offers the opportunity to analyze the factors that regulate epidermal lineage. These studies will provide new insight into epidermal lineage and lead to a better understanding of various hyperproliferative skin diseases such as psoriasis and cancer.

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