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Biomedical subjects

R W Hart

Publications and source records attributed to R W Hart.

At least 19 recordsLinked to original sources

Modulation of chemical toxicity by modification of caloric intake.

Caloric restriction increases maximum achievable lifespan and offsets the time to development of degenerative disease. Part of these desirable effects may result from positive modulation of toxic events. We have shown that when rodents are placed on a diet that is reduced in total calories by 40%, several beneficial changes on biochemical systems which impact on toxicologic processes are positively enhanced. Lipid metabolism is reduced and, therefore, the potential for lipoperoxidation is reduced. Additionally, activity of enzymes that produce free radicals as byproducts (cytochrome P4502C11) are also reduced. Concurrently, we have shown that the "effective" activity of catalase and the activity of superoxide dismutase (which are required for the detoxification of toxic oxygen radicals) are significantly increased by caloric restriction. The activities of enzymes of drug and xenobiotic metabolism are also altered by caloric restriction. The effect upon activity may be to either decrease or increase activity, dependent upon whether the enzyme activates compounds to intermediates which may be more toxic or whether the enzyme acts to reduce toxicity. We have also shown that caloric restriction may affect the initiation stage of carcinogenesis. Aflatoxin B1 binding to hepatic nuclear DNA was reduced by caloric restriction (caloric restriction reduced both major adducts that are formed upon exposure to aflatoxin B1). caloric restriction also reduced cytochrome P4502C11 which converts aflatoxin B1 to its toxic epoxide, and may partly explain the reduction in binding. These results suggest that caloric restriction may, in part, extend the time to development of degenerative disease by altering basic biochemical mechanisms of toxicity.

Animals

Oxidative DNA damage levels in rats fed low-fat, high-fat, or calorie-restricted diets.

Increased fat and caloric content of the diet has been associated with increased mammary tumor incidence. The dietary modulation of cellular redox state may be one mechanism behind this association. We have examined the effects of changes in dietary fat and caloric intake on the levels of 5-hydroxymethyluracil in DNA from rat liver and mammary gland. Female Fischer 344 rats, 40 days old, were maintained on 3% (low-fat), 5% (control), or 20% (high-fat) corn oil diets for 2 weeks. A fourth group of rats had the same daily fat intake as the control group, but total caloric intake was restricted by 40%. As a measure of oxidative DNA damage, 5-hydroxymethyluracil levels were measured in the DNA extracted from liver and mammary gland by gas chromatography-mass spectrometry. 5-Hydroxymethyluracil levels in the liver DNA of the low-fat, high-fat, and calorie-restricted groups were decreased relative to that of control, but the only significant decrease was in the calorie-restricted group (p less than 0.01). In the mammary gland DNA, statistically significant decreases in damage were found in each group relative to control (p less than 0.05). The relationship between fat in the diet and oxidative stress is thus complex. These results show that changes in dietary intake of both fat and calories can modulate oxidative DNA damage levels, and the effect of diet was more clearly evident in the DNA from mammary gland than in DNA from liver.

Animals

An in vitro pancreas acinar cell model for testing the modulating effects of caloric restriction and ageing on cellular proliferation and transformation.

Pancreatic acinar cells were isolated for culture from a young (Y) and an old (O) Brown-Norway or Fischer 344 rat fed an ad libitum (AL) or calorically restricted (CR) diet. The cells were cultured and cellular growth rates were determined as a function of passage number. An overall increase in cellular growth rate and transformation frequency with age and/or AL diet relative to youth as well as a decrease with CR diet were concordant with reported responses in vivo. Transformation frequency was measured in Brown-Norway cells and followed the same pattern as the growth response: AL/O > AL/Y = CR/Y > CR/O. The cellular model is shown to fit the general multistage requirements of the carcinogenic process as well as general age and diet characteristics of pancreatic cancer. This pancreatic acinar cell age-diet approach may prove to be a valuable tool for determining mechanisms of exocrine pancreatic carcinogenesis as well as other disease states; it may also be of utility in in vitro gerontological nutritional and pharmacological studies since some of the age and diet determinants of biological effects appear to be segregable. Propensity of cells from an old and/or AL diet animal for faster growth and for cellular transformation are programmed into the cells by the time of their excision from the animal (as late as 14 months), indicating a heritable component in the model or a mechanism that is dependent upon elements that control gene expression.

Aging

The high mobility group of nuclear proteins as biomarkers of age and caloric restriction in rats.

The quantitative levels and phosphorylation states of the high mobility group (HMG) of proteins were investigated in bone marrow, brain, heart, kidney, liver, pancreas, spleen, testis and thymus of three groups of male Fischer 344 rats. Two groups of rats, young ad libitum (Y/AL - 1 1/2 mo.) and old ad libitum (O/AL - 28 mo.), had free access to rat chow, and a third group of old rats were maintained on a caloric restricted intake (O/CR - 28 mo.). The quantities of HMGs 1,2,14 and 17 were significantly reduced in O/AL rats compared with Y/AL rats in all tissues examined, and in many cases, the amount of HMGs of O/CR rats were increased by varying degrees from O/AL animals. In G2-phase nuclei of bone marrow, spleen and testis, phosphorylation of HMG proteins was reduced significantly in O/AL rats, but was enhanced in O/CR animals (especially HMG14). These levels of HMGs in O/CR animals, altered by age and diet dependent factors, reflect a condition which is more reminiscent of Y/AL than O/AL animals.

Aging

Cell cycle analysis in bone marrow and kidney tissues of dietary restricted rats.

The effect of dietary restriction (DR) on the proportion of cells in various phases of the cell cycle as determined by flow cytometry was investigated in the bone marrow and kidney of young and old Fischer 344 rats. Control rats were fed a standard occurrence of numerous age-associated diseases, including cancer, renal diseases and by the control rats starting at 16 weeks of age until killed at 5 or 20 months old. The relative proportion of cells in the various phases of the cell cycle was independent of tissue type, treatment condition and age, consistently showing an order of G1- greater than S- greater than G2M-phase. In old rats DR did not affect cell cycling in bone marrow of either sex, however, it did cause an increase in the percentage of G1-phase cells in the kidney of male rats. Additionally, DR caused a mathematically significant change in the percentage of cells in all phases of the cell cycle in the bone marrow of young male rats but had no effect in young females. The percentage of S-phase cells in both tissues of both sexes decreased in old rats when compared to young rats regardless of treatment conditions, indicating a parallel decline in cell proliferating activity with aging. To summarize, DR produces a greater cell cycle effect in the young male than the old male rats. Proliferative capacity is enhanced when the young male rats are dietary restricted. This may aid in DNA repair mechanisms and/or immune system response.

Aging

Effects of aging and caloric restriction on I-compounds in liver, kidney and white blood cell DNA of male Brown-Norway rats.

Rodent tissues display species-, strain-, sex- and tissue-specific adduct-like DNA modifications termed I-compounds, which increase with age, are modulated by diet and are presumably derived from indigenous metabolic intermediates. We have explored whether I-compounds are affected by caloric restriction, which is known to extend life span and retard age-related degenerative and neoplastic diseases. Male Brown-Norway rats were fed NIH-31 diet ad libitum (AL). Calorically restricted (CR) rats received 60% of AL consumption, starting at 3.5 months. DNA was analyzed by 32P-postlabeling at 1, 4, 8, 12, 16 and 24 months of age in liver, kidney and white blood cells. I-compounds in AL liver and kidney exhibited complex tissue specific profiles; I-compound levels increased with age, plateaued between 8 and 18 months depending on tissue and diet and were 8.7 (liver) and 27.4 (kidney) modifications in 10(8) nucleotides at 24 months, thereby exceeding the corresponding 1-month values by 3.7- and 16.6-fold. CR resulted in similar profiles but did not diminish age-related increases, rather I-compound levels in CR liver and kidney were increased by about 70% and 30% versus age-matched AL rats. White blood cells exhibited few I-compounds and at low levels; age-related increases were small overall but more pronounced in CR rats. Higher I-compound levels in CR animals, which were presumably a consequence of metabolic effects elicited by CR, thus correlated with extended life span and, therefore, may be beneficial, in agreement with previous findings showing an association between reduced I-compound levels and hepatocarcinogenesis as well as organ susceptibility to diseases.

Aging

Effect of dietary restriction on the fidelity of DNA polymerases in aging mice.

DNA polymerases purified from hepatic tissues of C57BL/6 mice showed an age-related decrease in both specific activity and fidelity of the various enzyme forms. Polymerases from dietary restricted mice exhibited less of a decline in specific activity and copied synthetic DNA templates with relatively higher fidelity than did enzymes from animals fed ad libitum. Polymerases treated with inositol-1,4-bisphosphate [I(1,4)P2] showed varying levels of increased activity, with fidelity increases up to 3-fold. These data indicate that aging is associated with decreases in both specific activity and fidelity of DNA polymerases isolated from a nondividing tissue, and that dietary restriction impedes the age-related decline in both specific activity and fidelity of these polymerases. The data further indicate that DNA polymerases may interact with phosphoinositide hydrolysis products resulting in increased specific activity and fidelity of the enzymes. Phosphoinositide interactions with polymerases could constitute an important mechanism moderating the age-related decrease in function and accuracy of DNA polymerases.

Aging

Concentration of cefuroxime in serum and middle ear effusion after single dose treatment with cefuroxime axetil.

Antimicrobial agents play an important role in the treatment of patients with acute otitis media and otitis media with effusion (OME). The study was undertaken to determine the concentrations of cefuroxime in the blood and middle ear effusions (MEE) of children between 6 and 12 years of age with acute otitis media and chronic OME after a single oral dose administration of cefuroxime axetil, the ester prodrug of cefuroxime. Cefuroxime axetil (250 mg) was administered 2 to 6 hours before either myringotomy for acute otitis media or myringotomy and tube insertion for chronic OME. Blood samples and middle ear aspirates were obtained from 31 children and the samples were analyzed by high performance liquid chromatography. Cefuroxime was recovered in measurable concentrations in all serum samples and in 15 (79%) of the 19 MEE specimens analyzed. No correlation was seen between cefuroxime MEE concentrations and effusion type, bacteriology or serum concentrations. This study shows that cefuroxime does penetrate into MEE when OME is present and that therapeutic concentrations can be achieved in some patients.

Acute Disease

Pharmacokinetics of cefuroxime axetil and cefaclor: relationship of concentrations in serum to MICs for common respiratory pathogens.

The pharmacokinetics of single doses of cefaclor at 250 and 375 mg and cefuroxime axetil at 250 mg administered under optimal conditions (i.e., cefuroxime axetil after food and cefaclor in the fasted state) were studied in 24 healthy male volunteers. Drug concentrations in serum were related to MICs for common respiratory tract pathogens by using data generated from a recently completed national survey. The time the concentrations in serum exceeded the MICs for Haemophilus influenzae, Streptococcus pneumoniae, and Moraxella (formerly Branhamella) catarrhalis were significantly greater (P less than 0.05) for cefuroxime axetil at 250 mg than for cefaclor at 250 or 375 mg. With the recommended dosing regimens (cefuroxime axetil at 250 mg and cefaclor at 375 mg twice daily or cefaclor at 250 mg three times daily), cefuroxime concentrations exceed the MIC for 90% of the strains tested for a greater time period than cefaclor concentrations with either regimen. The reasons for this difference are (i) the greater potency and slower clearance of cefuroxime compared with those of cefaclor and (ii) the greater sensitivity of these pathogens to cefuroxime.

Administration, Oral

Effect of chronic caloric restriction on the circadian regulation of physiological and behavioral variables in old male B6C3F1 mice.

The circadian rhythms of food and water consumption, the number of feeding and drinking episodes, oxygen consumption, carbon dioxide production, respiratory quotient, gross motor activity, and body temperature were measured in male B6C3F1 mice that were fed ad libitum (AL) or fed a caloric-restricted diet (CR). The CR regimen (60% of the normal AL consumption) was fed to mice during the daytime (5 hr after lights on). CR animals exhibited fewer feeding episodes but consumed more food per feeding bout and spent more total time feeding than AL mice. It appears that CR caused mice to change from their normal "nibbling behavior" to meal feeding. Compared to AL animals, the mean body temperature was reduced in CR animals, while the amplitude of the body temperature rhythm was increased. Spans of reduced activity, metabolism, and body temperature (torpor) occurred in CR mice for several hours immediately before feeding, during times of high fatty acid metabolism (low RQ). The acute availability of exogenous substrates (energy supplies) seemed to modulate metabolism shifting metabolic pathways to promote energy efficiency. CR was also associated with lower DNA damage, higher DNA repair, and decreased proto-oncogene expression. Most of the circadian rhythms studied seemed to be synchronized primarily to the feeding rather than the photoperiod cycle. Night-time CR feeding was found to be better than daytime feeding because the circadian rhythms for AL and AR animals were highly synchronized when this regimen was used.

Aging

Effect of chronic caloric restriction on the synchronization of various physiological measures in old female Fischer 344 rats.

A variety of physiological and behavioral parameters which relate to metabolism were continuously monitored in 18 month old female Fischer 344 rats which were maintained on either ad libitum or reduced calorie diets. Caloric restriction (CR) stimulated average motor activity per day, the duration of each feeding episode, food consumed per episode, and water consumed per gram lean body mass (LBM). However, CR limited total food consumption, feeding time, number of feeding episodes per day, total eating and drinking time, and the daily ratio of food consumed to water consumed, CR also decreased average body temperature per day, O2 consumption, CO2 production, and respiratory quotient. A variety of parameters concerning water consumption were not affected. CR rats ate their food immediately when food was presented during the light span, while ad libitum fed animals ate numerous small meals throughout the entire dark span. An anticipatory response to restricted feeding was also noted. Total motor activity, metabolism, and body temperature increased just prior to scheduled feeding and reached maximum values shortly after feeding, suggesting that these parameters were highly synchronized to feeding. Females and males were found to respond to caloric restriction in a similar fashion. Dramatic changes in respiratory quotient and body temperature suggest rapid shifts between metabolic pathways (glycolysis to gluconeogenesis) to obtain optimal efficiency. Lower body temperature and metabolism may provide protection against DNA damage, thereby increasing the survival potential of restricted rats. These responses may provide insight into the mechanisms by which caloric restriction acts to extend life span.

Aging

Effect of chronic caloric restriction on hepatic enzymes of intermediary metabolism in aged B6C3F1 female mice.

Caloric restriction (CR) extends maximum life span and significantly retards the rate of occurrence of most age-associated degenerative diseases. The effect of CR in female mice on several hepatic enzymes was examined after 33 month old mice were killed at either the onset of dark, the onset of light or the mid-dark span. Animals had been singly caged with 12 hr of light followed by 12 hr of dark. All feeding was in the early dark span. CR mice were given 60% of the caloric intake of ad libitum fed mice throughout their lives (CR was initiated at 14 weeks of age). Livers were frozen to await preparation and then analysis for 14 enzymes of intermediary metabolism by our standard procedures. Enzymes of gluconeogenesis and amino acid metabolism were increased at all times due to CR. Enzymes of glycolysis and lipid metabolism were decreased at all times. However, maximum differences between ad libitum and CR mice occurred during the mid-dark span (this is the time of normal acrophase in younger mice). Circadian variation was lost and mesors changed for nearly all enzymes measured from mice that had been fed ad libitum. CR mice were found to maintain circadian variation of activities and activity profiles were similar to those seen in younger ad libitum fed mice. These observations suggest that the mechanism through which CR elicits its effects may involve a circadian component.

Aging