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Biomedical subjects

R L Wells

Publications and source records attributed to R L Wells.

36 records · Page 2Linked to original sources

Additivity of cytotoxic damage due to dimethylbenz(a)anthracene and X rays.

7,12-Dimethylbenz(a)anthracene is one of a group of polycyclic aromatic hydrocarbons that are known to be indirectly acting carcinogens. As a product of the incomplete combustion of complex hydrocarbons, dimethylbenzanthracene is present in the environment and may therefore act on living systems in conjunction with ionizing radiation. We have studied the cytotoxic effects of dimethylbenzanthracene by itself, together with other polycyclic aromatic hydrocarbons, and combined with X radiation. Pre- or postirradiation treatment of mouse C3H 10T1/2 cells with dimethylbenzanthracene progressively removes the shoulder of the X-ray survival curve and, consistent with that observation, the survival sparing from dose fractionation is progressively lost. The cotreatment of cells with 3-methylcholanthrene and dimethylbenzanthracene largely abrogates the killing due to the latter compound alone and, accordingly, returns the shoulder to the survival curve. The application of dimethylbenzanthracene, or similar compounds, between X-ray dose fractions, separated by 4 h, is without effect quite likely because of the need for metabolic activation of the compound for effectiveness. Dimethylbenzanthracene is believed to be genotoxic because, after it is activated, it forms bulky adducts with DNA. Hence these results suggest that bulky adducts are a form of DNA damage operationally equivalent to sublethal X-ray damage.

9,10-Dimethyl-1,2-benzanthracene↗

Cellular NAD+ and ATP levels in alkylation-induced cytotoxicity enhanced by an inhibitor of poly(ADP-ribose) synthesis.

Alkylating agents cause a marked depletion of cellular NAD+ levels by activating nuclear ADP-ribosyl transferase (ADPRT), which utilizes NAD+ as a substrate in the synthesis of poly(ADP-ribose). As a consequence of NAD+ depletion, it is possible that cellular ATP pools could be depleted. Because of this, exogenously supplied NAD+ had been proposed as a way to counteract some of the effects of an alkylator. We found that exogenously supplied NAD+ significantly increased intracellular levels of NAD+ in MMS- and MNNG-treated V79 Chinese hamster cells. Cytotoxicity was not changed by the exogenously supplied NAD+, however. 3-Aminobenzamide (3-ABA), an ADPRT inhibitor, prevented the depletion of intracellular NAD+ by MMS or MNNG treatment and potentiated cytotoxicity. As was the case without 3-ABA, exogenously supplied NAD+ plus 3-ABA did not change the cytotoxicity, even though NAD+ levels were increased. Intracellular ATP levels were also measured and were found to be unaffected following MMS treatment, and only slightly depleted following MNNG treatment. Exogenously supplied NAD+ raised these levels above those for their respective controls. Because survival was unaffected by elevated levels of NAD+ and ATP, our results suggest that depletion of cellular NAD+ pools following MMS and MNNG treatment is not a critical factor in determining cytotoxicity for these V79 cells. The energy reserves of V79 cells, at doses of MMS or MNNG which kill 99% of the cells, are apparently adequate to maintain normal levels of ATP.

Adenosine Triphosphate↗

Differences in sensitivity between human, mouse and Chinese hamster cells to killing by monochromatic ultraviolet light.

Irradiation of human (IMR-91), mouse (10T1/2) and Chinese hamster (V79) fibroblasts with monochromatic ultraviolet light (u.v.) in the far-, mid-, and near-u.v. regions resulted in cell-strain-specific changes in sensitivity as a function of the wavelength used. The data suggested cell-strain-specific action spectra for cell killing by ultraviolet light that did not correlate with the ability of examined cells to excise pyrimidine dimers.

Animals↗

The radioprotector WR1065 reduces radiation-induced mutations at the hypoxanthine-guanine phosphoribosyl transferase locus in V79 cells.

N-(2-mercaptoethyl)-1,3-diaminopropane (WR1065) protects against radiation-induced cell killing and mutagenesis at the hypoxanthine-guanine phosphoribosyl transferase (HGPRT) locus in V79 Chinese hamster lung fibroblast cells. At a concentration of 4 mM, WR1065 was found to be effective in protecting against radiation-induced cell lethality only if present during irradiation, e.g., a dose modification factor (DMF) of 1.9. No protective effect was observed if the protector was added within 5 min after irradiation or 3 h later, e.g., DMFs of 1.0 and 1.1, respectively. The effect of WR1065 on radiation-induced mutation, expressed as resistance to the cytotoxic purine analogue 6-thioguanine (HGPRT), was also investigated. In contrast to the treatment-schedule dependence for protection by WR1065 against cell killing, this agent was effective in reducing radiation-induced mutations regardless of when it was administered. Following a dose of 10 Gy of 60Co gamma-rays, the mutation frequencies observed per 10(6) survivors were 77 +/- 8, 27 +/- 6, 42 +/- 7, and 42 +/- 7 for radiation only, and WR1065 present during, immediately after, or 3 h after irradiation. These data suggest that although a segment of radiation-induced damage leading to reproductive death cannot be modulated through the postirradiation action of WR1065, processes leading to the fixation of gross genetic damage and mutation induction in surviving cells can be effectively altered and interfered with leading to a marked reduction in mutation frequency.

Animals↗

Action spectra for killing and mutation of Chinese hamster cells exposed to mid- and near-ultraviolet monochromatic light.

We have examined the response of Chinese hamster V79 cells to monochromatic light of selected wavelengths in the mid- to near-UV region, using cell survival and induction of mutants resistant to 6-thioguanine (6-TG) or ouabain (OUA) as end points. As the wavelength increased from 313 to 405 nm, the induction of mutants resistant to 6-TG and to OUA decreased to a greater degree than did cell survival. Cells resistant to OUA were induced with considerably lesser efficiency at wavelengths of 313 and 334 nm than cells resistant to 6-TG. No mutants resistant to either 6-TG or OUA were induced by 405-nm light, and no mutants resistant to OUA were induced by 365-nm light. Thus, cell killing and mutation induction have different action spectra, and furthermore, action spectra for mutation induction at the HGPRT and Na+/K+-ATPase loci are different from each other. These observations imply important differences in the cellular mechanisms, and/or lesions, for cell inactivation, induction of 6-TG and OUA resistance for V79 cells exposed to near-UV monochromatic light.

Animals↗

Dose-rate effects in mammalian cells. IV. Repairable and nonrepairable damage in noncycling C3H 10T 1/2 cells.

Repairable and nonrepairable components of gamma-ray damage leading to cell reproductive death were determined by measuring the range over which dose rate influenced the response of non-cycling C3H 10T 1/2 mouse cells. Cell proliferation and cell cycle redistribution were eliminated as factors influencing the dose-rate effect in the system by irradiating confluent monolayers of contact inhibited cells. The radiosensitivity of the cells did not change, and no selective loss of damaged cells occurred over the extended treatment times. A pronounced dose-rate effect was observed over the range between 55.6 and 0.29 Gy/hr, but a limit to the repair-dependent dose-rate effect was reached at 0.29 Gy/hr since no further reduction in effect per unit dose was observed when the dose rate was reduced to 0.17 or 0.06 Gy/hr. The survival curves, which were simple exponential functions of dose at dose rates of 0.29 Gy/hr and below, have a common Do of 7.32 Gy and represent an accurate measurement of the nonrepairable component of damage. Log-phase cultures showed remarkably different responses over the range of dose rates, due in large part to cell cycle redistribution and in some cases, cell proliferation during exposures. The results of these studies were compared with time-dose relationships used in clinical brachy-therapy and agree remarkably well with corrections in total dose suggested by R. Paterson [Br. J. Radiol. 25, 505-516 (1952)] and A.E.S. Green [cited in F. Ellis, Curr. Top. Radiat. Res. Q. 4, 357-397 (1968)] when the standard treatment time is changed. Comparison of our data with in vivo isoeffect curves of total dose vs dose per fraction for "early" and "late" tissue responses indicate that cell cycle redistribution should not be ignored as a factor influencing time-dose relationships in radiotherapy.

Animals↗

Comparison of temperature effect on the guanidine hydrochloride and urea denaturations of lysozyme.

Guanidine hydrochloride (GdnHCl) and urea denaturations of lysozyme have been observed at various temperatures by measuring changes in fluorescence. Both transitions appear to be two state, with GdnHCl almost twice as effecitve a denaturant as urea for this protein. By plotting the denaturant concentrations at midpoint of the transition vs. the experimental temperature, it can be demonstrated that urea-denatured lysozyme does not obtain the degree of unfolding found in lysozyme denatured by GdnHCl.

Chemical Phenomena↗