Nuclear protein following heat shock: protein removal kinetics and cell cycle rearrangements.
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R. Higashikubo | J. L. Roti | J. R. Roti Roti | N. Uygur | J L Roti Roti | N Uygur | R Higashikubo | Nazan Uygur
[1] R. Higashikubo,et al. Nuclear protein content and cell progression kinetics following X irradiation. , 1986, Radiation research.
[2] R. Warters,et al. Excision of X-ray-induced thymine damage in chromatin from heated cells. , 1979, Radiation research.
[3] J. R. Roti Roti,et al. Time-temperature conversions in biological applications of hyperthermia. , 1980, Radiation research.
[4] R. Warters,et al. Heat Shock (45°C) Results in an Increase of Nuclear Matrix Protein Mass in HeLa Cells , 1986 .
[5] R. Winward,et al. Factors affecting the heat-induced increase in protein content of chromatin. , 1980, Radiation research.
[6] W. Dewey,et al. Molecular studies on the hyperthermic inhibition of DNA synthesis in Chinese hamster ovary cells. , 1982, Radiation research.
[7] R. Warters,et al. Histone protein and DNA synthesis in HeLa cells after thermal shock , 1984, Journal of cellular physiology.
[8] F. Gibbs,et al. A comparison of deep regional hyperthermia from an annular array and a concentric coil in the same patients. , 1985, International journal of radiation oncology, biology, physics.
[9] Michael Ashburner,et al. Heat shock, from bacteria to man , 1982 .
[10] W. Welch,et al. Nuclear and nucleolar localization of the 72,000-dalton heat shock protein in heat-shocked mammalian cells. , 1984, The Journal of biological chemistry.
[11] J. R. Roti Roti,et al. Inhibition by hyperthermia of repair synthesis and chromatin reassembly of ultraviolet-induced damage to DNA. , 1984, Radiation research.
[12] W. Dewey. Interaction of heat with radiation and chemotherapy. , 1984, Cancer research.
[13] R. Winward,et al. The kinetics of increase in chromatin protein content in heated cells: a possible role in cell killing. , 1979, Radiation research.
[14] J. L. Roti,et al. Effects of hyperthermia on the sedimentation of nucleoids from HeLa cells in sucrose gradients. , 1982, Radiation research.
[15] R. Higashikubo,et al. Cell-cycle position and nuclear protein content. , 1982, Cytometry.
[16] A. Pollack,et al. Quantitation of cell kinetic responses using simultaneous flow cytometric measurements of DNA and nuclear protein. , 1984, Cytometry.
[17] J. L. Roti,et al. The effects of hyperthermia on the protein-to-DNA ratio of isolated HeLa cell chromatin. , 1978, Radiation research.
[18] L. Tolmach,et al. Variations in several responses of HeLa cells to x-irradiation during the division cycle. , 1963, Biophysical journal.
[19] W. Dewey,et al. Thermal dose determination in cancer therapy. , 1984, International journal of radiation oncology, biology, physics.
[20] R. Warters,et al. The effects of hyperthermia on DNA replication in HeLa cells. , 1983, Radiation research.
[21] J. L. Roti,et al. The effect of hyperthermia on the protein content of HeLa cell nuclei: a flow cytometric analysis. , 1979, Radiation research.
[22] A Krishan,et al. Rapid flow cytofluorometric analysis of mammalian cell cycle by propidium iodide staining , 1975, The Journal of cell biology.
[23] J. Gray,et al. Cycle progression and division of viable and nonviable Chinese hamster ovary cells following acute hyperthermia and their relationship to thermal tolerance decay. , 1984, Cancer research.
[24] R. Meyn,et al. Effects of hyperthermia on repair of radiation-induced DNA strand breaks. , 1981, Radiation research.
[25] W. Dewey,et al. Effect of hyperthermia on nonhistone proteins isolated with DNA. , 1978, Radiation research.