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Biomedical subjects

S Holtzer

Publications and source records attributed to S Holtzer.

26 records · Page 2Linked to original sources

Effects of 12-O-tetradecanoylphorbol-13-acetate on the differentiation of avian melanocytes.

12-O-Tetradecanoylphorbol-13-acetate (TPA) has been reported to inhibit and/or delay the terminal differentiation of a variety of cell types. More recently, TPA has been reported to enhance melanogenesis in cultured human melanoma cells. This study focuses on the effect of TPA on the differentiation of normal avian melanocytes. TPA blocked melanogenesis in normal replicating presumptive melanoblasts, as well as in replicating pigmented melanocytes derived from the neural crest, the retinal pigment epithelium, and the pecten oculi. These normal embryonic cells not only failed to synthesize melanin but also failed to assemble premelanosomes and to assume either the characteristic dendritic processes of normal trunk melanocytes or the epithelioid morphology of the normal retinal pigment epithelial cell. This inhibition was remarkably reversible. Following removal of TPA, the previously blocked neural crest cells became pigmented and formed their characteristic dendritic processes, whereas the previously blocked retinal cells formed a pigmented epithelium. The effect of TPA on these normal cells was dependent on duration of exposure and degree of differentiation of the cells at the time of exposure. TPA induced the formation of elongated neurite-like processes in the amelanotic neural crest cells which differed in their cytoskeletal structure from the dendritic processes of normal trunk melanocytes. These TPA-blocked pigment cells with elongated processes bear a striking morphological resemblance to presumptive myoblasts, chondroblasts, and fibroblasts treated with the tumor promoter.

Animals↗

Some properties of embryonic myosin.

Myosins from the following sources were purified by diethylaminoethyl-Sephadex chromatography: moytubes grown in vitro for 7-8 days, prepared from pectoralis muscles of 10-day old embryos, and breast and leg muscles from 16-day old embryos. The adenosine triphosphatase activities of these myosins were close to that of adult m. pectoralis myosin. The light chains of the embryonic myosins had the same mobilities in sodium dodecyl sulfate electrophoresis as those in adult pectoralis muscle myosin and were clearly distinguishable from those in myosin from tonic muscle m. latissimus dorsi anterior. The fastest light chain in embryonic muscle myosin-apparent mol wt 16,000-was present in smaller amounts than in adult myosin. The negative staining pattern of paracrystals of embryonic light meromyosin (LMM) was indistinguishable from that of adult fast muscle LMM. The significance of these results for differentiation of various muscle types has been discussed.

Adenosine Triphosphatases↗

The loss of phenotypic traits by differentiated cells. VI. Behavior of the progeny of a single chondrocyte.

A single, functional, mitotically quiescent chondrocyte may be induced to reenter the mitotic cyde, and produce a progeny of over 10(11) cells. Sessile, adherent, polygonal cells deposit matrix, whereas amoeboid, dispersed, flattened fibroblastic cells do not. The prior synthetic history of a cell is of greater importance in determining whether the characteristic chondrogenic phenotype will be expressed, rather than growth in "permissive" or "nonpermissive" medium. Clonal conditions select for stem-like cells, some of whose progeny may become polygonal chondrocytes. The retention of the characteristic chondrogenic phenotype in vitro is favored by pruning the dedifferentiated chondrocytes which arise in these cultures. Dedifferentiated chondrocytes interfere with the deposition and synthesis of chondroitin sulfate by neighboring functional chondrocytes. Possible mechanisms are proposed to explain this type of cell-cell or cell exudate interference. If the progeny of a single, genetically programmed chondrocyte may or may not synthesize chondroitin sulfate, then extragenic sites in the cytoplasm or cell surface must influence the decision as to which cluster of "luxur" molecules the cell will synthesize.

Animals↗