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Radiosensitivity of thymidylate synthase-deficient human tumor cells is affected by progression through the G1 restriction point into S-phase: implications for fluoropyrimidine radiosensitization.

Recent studies of fluoropyrimidine (FP)-mediated radiosensitization (RS) have focused on the molecular mechanisms underlying regulation of the cell cycle, particularly at the G1-S transition. Although thymidylate synthase (TS) inhibition by FP is necessary, we hypothesize that FP-RS is temporally dependent on progression of cells into S-phase under conditions of altered deoxynucleotide triphosphate pools, particularly an increased dATP:dTTP ratio, which subsequently results in enhanced DNA fragmentation and cell death. To better understand the mechanism of FP-RS, we characterized the cellular and biochemical responses to ionizing radiation (IR) alone, using different synchronization techniques in two isogenic, TS-deficient mutant cell lines, JH-1 (TS-) and JH-2 (Thy4), derived previously from a human colon cancer cell line. After G0 synchronization by leucine deprivation, these clones differ under subsequent growth conditions and dThd withdrawal: JH-2 cells have an intact G1 arrest (>72 h) and delayed cell death (>96 h), whereas JH-1 cells progress rapidly into early S-phase and undergo acute cell death (<24 h). No difference in the late S-phase and G2-M cell populations were noted between these growth-stimulated, G0-synchronized TS-deficient cell lines with dThd withdrawal. Biochemically, the intracellular ratio of dATP:dTTP increased substantially in JH-1 cells as cells progressed into early S-phase compared with JH-2 cells, which remained in G1 phase. Synchronized JH-1 cells showed significantly decreased clonogenic survival and an increase in DNA fragmentation after IR when compared with JH-2 cells. RS was demonstrated by an increase in alpha and decrease in beta, using linear quadratic analyses. An alternative synchronization technique used mimosine to induce a block in late G1, close to G1-S border. Both JH-1 and JH-2 cells, synchronized in late G1 and following growth stimulation, now progressed into S-phase identically (<24 h), with similarly increased dATP:dTTP ratios under dThd withdrawal conditions. These late G1-synchronized JH-1 and JH-2 cells also showed a comparable reduction in clonogenic survival and similar patterns of increased DNA fragmentation following IR. We suggest, based on the cellular and biochemical differences in response to IR between G0- and late G1-synchronized cells, that S-phase progression through the G1 restriction point under an altered (increased) dATP:dTTP ratio is a major determinant of FP-RS.

Adenosine Triphosphate↗

Intrinsic radiosensitivity by metallothionein expression has no great influence on clinical radiosensitivity in esophageal carcinoma.

Several studies have shown that macroscopically infiltrative type of esophageal carcinoma generally has a poorer local response to radiation therapy than that of localized type. The aim of this study was to determine the role of metallothionein (MT) as a radioprotective agent in the difference of clinical radiosensitivities in esophageal carcinoma. A total of 45 surgically resected esophageal carcinoma tissues [20 macroscopically localized type without preoperative treatment (PT), 20 macroscopically infiltrative type without PT and 5 macroscopically infiltrative type with PT] were stained for MT by immunohistochemistry and were analyzed. MT expression level of macroscopically localized type of esophageal carcinoma was significantly higher than that of infiltrative type without PT (P=0.026) and was significantly higher than that of infiltrative type with PT (P=0.024). No significant difference was found between MT expression levels in infiltrative type of esophageal carcinoma without PT and that with PT. The results of this study suggest that there is less possibility that clinical radioresistance of the tumor is due to MT expression in esophageal carcinoma and also suggest that there is less possibility that MT synthesis is induced by fractionated irradiation of a moderate dose or by an anti-cancer agent during a course of treatment.

Aged↗

Contribution to some radiobiological aspects of the investigation of radiosensitizers of hypoxic cells. Part IV: Radiosensitizing effect of metronidazole evaluated on the level of postirradiation changes of bone marrow cellularity in rats protected by induced hypoxia of lower body half.

Radiosensitizing effect of metronidazole (Entizol, Polfa, Poland) was tested on an experimental model of ischaemized bone marrow. The changes of bone marrow cellularity were recorded after whole body irradiation of rats protected with abdomen compression during irradiation. With an increasing dose of irradiation proportional and significant decrease of nuclear elements in bone marrow occurred the third day after irradiation. Metronidazole administered to unprotected rats (without compression) did not show any effect. The abdomen compression led to a pronounced radioprotection but metronidazole administration reduced this effect significantly. Ischaemization of the lower half of rat body produced on the level of bone marrow cellularity the protection corresponding to DRF (dose reduction factor) = 1.96 the third day after irradiation. DRF value decreased to 1.52 by metronidazole application which corresponds to ER (enhancement ratio) = 1.29.

Animals↗

Radiosensitivity of vascular tissue. I. Differential radiosensitivity of capillaries: a quantitative in vivo study.

The effects of single doses of X radiation ranging from 200 to 2000 rad were studied by direct morphometry in vivo of the mature, stable microvasculature in rabbit ear chambers. Reproducible observations in vivo of the mature microvasculature were obtained by photomicrography of identical 0.033-mm2 sites in each ear chamber prior to and 1 and 5 days following single doses of X radiation. Measurements were made directly on color photomicrographs at a total magnification of 2000X. The microvessels were divided into two groups according to size: vessels greater than 10 microns in diameter (arterioles and venules), and vessels less than or equal to 10 microns in diameter (capillaries). Vascular length and outer and inner surface areas were measured directly on the projected photomicrographs, and vascular volumes and diameters were calculated from these measured parameters. Measurements of capillary length per unit surface area disclosed a decrease in capillary density with increasing dose, resulting in a calculated intercapillary distance in excess of 300 microns, conceivably associated with a decrease in oxygen delivery by the microvasculature. With this method, radiosensitivity of the capillaries was found to be significantly greater than that of larger vessels. Computerized histogram analysis of vascular length, surface area, and volume as a function of increasing diameter (1-micron bins) confirmed the significant difference in reduction of these measured parameters between the capillaries and the larger vessels. The total microvascular volume profile dominated by the volume of larger vessels did not change much 5 days after irradiation, although capillary volume was markedly reduced. Furthermore, the basic profile of the microvasculature showed a shift to larger diameters following irradiation, thus confirming the calculated dilatation of surviving vessels. Qualitative morphologic observations revealed considerable extravasation from the microvessels and formation of micropetechiae at the site of disrupted capillaries with subsequent inflammatory changes.

Animals↗

[Radiosensitizing and damaging effect of hyperthermia on different biological systems. Radiosensitizing and damaging effect of hyperthermia on cells of mouse La leukemia].

When mouse leukosis cell suspensions were subjected to heating the survival rate of animals decreased exponentially with increasing time of heating. It is shown that the increase of temperature for 1 degree C in the range 40-45 degrees C is equivalent to a decrease in the heating time by a factor of approximately 2. The hyperthermia-induced increase in the radiosensitivity of leukosis cells was dependent upon a medium in which heating was performed.

Animals↗

Radiosensitization of hypoxic HeLa S3 cells in vitro by a new type of radiosensitizer: spermine and spermidine amides with nitro groups.

A new type of hypoxic cell sensitizer (FNT-series compounds) has been developed and tested on HeLa S3 cells. They have two nitrobenzoyl groups at both ends of the spermine or spermidine in their chemical structures. Their ability to sensitize hypoxic cells is greater than that of misonidazole. Among them, N1, N10-bis(4-nitrobenzoyl)-spermidine (FNT-1) was most effective. 1 mM FNT-1 gave a corrected enhancement ratio of 1.71 compared to 1.32 for the same concentration of misonidazole. Its electron affinity, in terms of the half-wave reduction potential, was - 350 mV and higher than that of misonidazole (-395 mV). These FNT-series compounds are thought to interact with DNA in two ways; noncovalent linkage between the basic groups of the polyamine and highly acidic phosphate moieties of the nucleic acid and, secondly, the insertion of the nitrobenzoyl groups between base pairs of the DNA double helix. Since spermine and spermidine themselves did not show any sensitizing activities, it is suggested that the nitrobenzoyl groups which are introduced in spermine and spermidine, play an important role in sensitization.

Cell Survival↗

The effect of in vivo GSH depletion on thermosensitivity, radiosensitivity and thermal radiosensitization.

The effect of glutathione (GSH) depletion on the interaction of hyperthermia (HT) and single-dose external-beam radiation delivered at conventional dose rates (RT) and low-dose-rate brachytherapy (BT) was examined in a murine mammary adenocarcinoma (MTG-B). Tumour volume growth delay from the day of treatment to double the treatment volume (GDDV) was used as the experimental end-point. The growth delay for radiation alone was greater when combined with GSH depletion, while this level of GSH depletion produced no effect on the BT alone or HT alone response. The synergism ratio (SR) was calculated for all HT and RT or HT and BT protocols at each dose. Although depletion did not increase the SR for external-beam treatments, the SR for HT and BT treatments was increased with GSH depletion.

Adenocarcinoma↗