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M V Taylor

Publications and source records attributed to M V Taylor.

26 records · Page 2Linked to original sources

Localization of c-myc expression during oogenesis and embryonic development in Xenopus laevis.

The expression of the proto-oncogene c-myc during oogenesis and embryonic development was followed by in situ hybridization using a cytological protocol adapted to amphibian embryos. The c-myc RNA was highly expressed in the cytoplasm of young oocytes and was further diluted during oocyte growth without specific localization. From the neurula stage on, new myc transcripts were detected and the whole embryo appeared positive with antisense myc RNA probes relative to control sense RNA probes. In addition, a spatial localization of high levels of the transcript was also observed in specific areas of the developing embryo, including the epidermis, gill buds, optic vesicles and lens placodes. These observations might indicate a specific role of the c-myc gene during the differentiation of these tissues. Alternatively, this high level of myc expression might prevent such tissues from entering into terminal differentiation during the growth of the embryo.

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Xenopus myc proto-oncogene during development: expression as a stable maternal mRNA uncoupled from cell division.

A Xenopus cDNA clone highly homologous to the proto-oncogene c-myc has been isolated and used to derive a homologous probe to study myc expression during embryonic development. Myc RNA is identified as a member of the class of maternal mRNAs expressed before fertilisation. It is highly accumulated from early oogenesis and an unfertilised egg contains 8 pg, about 10(5)-fold the myc content of proliferative somatic cells. After fertilisation a post-transcriptional regulation of the gene is induced and the accumulated myc RNA is degraded (t1/2 = 4 h 20 min) to reach a level at gastrula of 10 transcripts per cell; a value maintained during subsequent embryonic development. The Xenopus myc protein has also been identified by both myc-specific antibodies and hybrid selection experiments. Translation in vitro of Xenopus myc RNA shows that it encodes a 62-kd protein which is also recognised by myc antibodies in oocyte extracts. This protein is accumulated in late oogenesis. The results indicate an unusual uncoupling of myc expression and cell proliferation linked to a stabilisation of the RNA product.

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Some mitogens cause rapid increases in free calcium in fibroblasts.

Quiescent 3T3 fibroblasts grown on microcarrier beads and loaded with the [Ca2+] indicator quin2 had a cytosolic free Ca2+ concentration ( [Ca2+]i) of 154 +/- 11 nM (SE; n = 32). Stimulation with the mitogens vasopressin, epidermal growth factor (EGF) or prostaglandin F2 alpha (PGF2 alpha) caused a very rapid increase in [Ca2+]i to a maximum of 200-500 nM after 60-90 s. [Ca2+]i declined thereafter to a level above that in quiescent cells which was maintained for at least 15 min. In contrast no immediate effects on [Ca2+]i were detected after the addition of the mitogens insulin or 12-O-tetradecanoylphorbol 13-acetate (TPA). These studies indicate that early changes in [Ca2+]i may be involved in the action on fibroblasts of some, but not all, mitogens.

Aminoquinolines↗

Free cytoplasmic calcium concentration and the mitogenic stimulation of lymphocytes.

The effects of the lectins concanavalin A, succinylated concanavalin A, and wheat germ agglutinin on the free cytoplasmic Ca2+ concentration in mouse thymocytes were measured using the fluorescent Ca2+ indicator "quin 2" (Tsien, R. Y. (1980) Biochemistry 19, 2396-2404) and compared with the metabolic and mitogenic effects of the lectins on the cells. Within 1 min of adding each ligand, there is a dose-dependent increase in the free cytoplasmic Ca2+ concentration reported by quin 2. This response is selective for Ca2+, but it does not coincide closely with the subsequent mitogenic stimulation at 48 h by concanavalin A or succinyl concanavalin A. The nonmitogenic lectin wheat germ agglutinin also causes an increase in free cytoplasmic Ca2+ concentration and early metabolic stimulation of the cells, but stimulation is self-aborted before DNA synthesis occurs. At the intracellular concentrations of quin 2 required for measurement of the free Ca2+ concentration, the chelator causes early metabolic stimulation of the cells very similar to that produced by concanavalin A and the mitogenic Ca2+ ionophore A23187. Thus, phosphatidylinositol metabolism and lactate production are stimulated in mouse thymocytes and pig lymphocytes within 1 h of loading with quin 2 and significant increases in RNA synthesis occur after 8 h. Quin 2 causes mitogenic stimulation of pig lymphocytes measured as increased [3H]thymidine uptake at 48 h, that is variable but substantial in most experiments (up to 100% of the stimulation by A23187). The chelator itself has no significant activity as a Ca2+ ionophore, but the apparent free Ca2+ concentration in the cells increases both with the concentration of intracellular quin 2 and with the extracellular Ca2+ concentration. These data leave open the possibility that quin 2 itself affects the concentration of free Ca2+ or other cations in the cells.

Aminoquinolines↗

Mitogens increase phosphorylation of phosphoinositides in thymocytes.

In many cell systems the interaction of ligands with their receptors causes rapid breakdown and resynthesis of phosphatidylinositol 4,5-bisphosphate (PtdIns(4,5)P2). Recent work has focused on the role of the degradation products of PtdIns(4,5)P2 as intermediates in the activation of cell function and growth: inositol trisphosphate (InsP3) can release Ca2+ from intracellular stores and diacylglycerol is thought to activate protein kinase C. This enzyme is also activated by phorbol esters (for example, 12-O-tetradecanoyl phorbol 13-acetate, TPA) and this is assumed to account for the pleiotropic effects of TPA on cell function and growth. Mouse thymocytes are not mitogenically stimulated by TPA alone, but it is a potent co-mitogen in combination with either concanavalin A (Con A) or A23187 (A. N. Corps and J.C.M., unpublished observations). Here we show that mitogenic concentrations of TPA, A23187 and Con A each cause an increase in the net phosphorylation of phosphatidylinositol (PtdIns) to PtdIns(4,5)P2 in mouse thymocytes. This is consistent with simulation by the mitogens of the same phosphoinositide phosphorylations in intact cells as recently demonstrated for the isolated products of the src and ros viral oncogenes in a cell-free system.

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A common sequence of calcium and pH signals in the mitogenic stimulation of eukaryotic cells.

When normal quiescent (G0) cells are stimulated by mitogens to enter the cell cycle, the metabolic derepression which occurs is similar in a variety of cells. The mechanisms initiating these responses and their relationship to subsequent progression through G1 to DNA synthesis in S phase, however, are generally undefined. The clearest evidence has been obtained in sea urchin eggs, where fertilization by sperm causes a rapid, transient increase in the concentration of free cytoplasmic Ca2+ [(Ca]i), followed by a sustained increase in cytoplasmic pH (pHi). It has been demonstrated clearly that these ionic responses are obligatory for progression to DNA synthesis by the normal pathway after fertilization, although the Ca2+ signal can be bypassed by parthenogenetic agents which elevate directly pHi (for example, NH+4 ions). These observations raise the questions of whether other eukaryotic cells show the same sequence of ionic responses when stimulated by mitogens and whether such signals are an obligatory component of their mitogenic pathways. We show here that a common sequence of [Ca]i and pHi responses occurs in both quiescent mouse thymocytes and Swiss 3T3 fibroblasts stimulated by appropriate mitogens. Furthermore, 'opportunistic' mitogens (those that do not act on the cells in vivo, such as concanavalin A (Con A), the Ca2+ ionophore A23187 and 12-o-tetradecanoyl phorbol 13-acetate CTPA] that are mitogenic for both mouse thymocytes and 3T3 fibroblast, each produce characteristic ionic responses that are the same in both types of cell.

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