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Desiccation and starvation resistance in Drosophila: patterns of variation at the species, population and intrapopulation levels.

A substantial number of Drosophila studies have investigated variation in desiccation and starvation resistance, providing an opportunity to test for consistent patterns of direct and correlated responses across studies and across the species and population levels. In general, responses to laboratory selection for these traits in D. melanogaster are rapid and indicate abundant genetic variation in populations. However, slower responses to selection for desiccation resistance occur in other species including D. simulans. Clines suggest adaptive divergence although specific selection pressures have not been documented empirically. Drosophila species differ markedly in desiccation and starvation resistance and there is also marked variation within species for desiccation resistance that may be linked to local climatic conditions. Laboratory selection experiments on starvation resistance in D. melanogaster suggest that changes in lipid content are largely responsible for resistance variation but this factor may be less important in explaining variation among species. For desiccation, lines with increased resistance show reduced rates of water loss but no changes in the minimum water content that flies can tolerate. Changes in life history traits are sometimes associated with altered levels of stress resistance. Increased starvation resistance is associated with longer development time and reduced early age reproduction in different studies. However, other associations are inconsistent between studies as in the case of stress resistance changing following selection for longevity. Multiple mechanisms may underlie genetic variation in stress resistance and future studies should address the evolutionary importance of the different mechanisms at the population and species levels.

Animals↗

Metabolic response to short periods of starvation in hypo- and hyper-thyroid male rats.

1) Thyroidectomized rats were fed with a low iodine diet, injected daily with 0, 0.1, 1.8 or 25 microgram of L-thyroxine/100 g body wt., and compared with intact controls. 2) Plasma protein-bound iodine was decreased in the rats given the 0 and 0.1 microgram doses, unchanged in those given the 1.8 microgram doses, unchanged in those given the 1.8 microgram dose increased in those given the 25 microgram one. 3) The liver content of DNA-P, phospholipid-P, proteins and fatty acids was decreased in the rats that did not receive thyroxine, practically recuperated in those receiving 0.1 microgram and normal in those given 1.8 or 25 microgram of thyroxine. 4) 3 h of starvation produced a reduction in the liver content of total fatty acids that disappeared after 24 h. 5) When fed, liver glycogen concentration was low in the rats given 25 microgram of thyroxine. 6) With starvation, the fall in liver glycogen and blood glucose, and the rise in liver acetyl-CoA and citrate and blood glycerol concentrations were faster in the thyroidectomized rats that did not receive thyroxine than in the other groups. 7) The rise in plasma free fatty acid and blood ketone bodies concentrations were similar in all the groups, the greater level of the first parameter being observed after 6 h of starvation in the rats given 25 microgram of thyroxine and in the second one after 24 h in the rats given either 0.1, 1.8 or 25 microgram of thyroxine. 8) The rapid decrease in the availability of carbohydrate stores with starvation in the thyroidectomized rats could be responsible for their fast call for lipid utilization. The slower response to fasting in the hyperthyroid animals is probably a consequence of their reduced amount of endogenous substrates to be mobilized.

Acetyl Coenzyme A↗

Post receptor activation of lipolysis in starvation, diabetes mellitus and hyperthyroidism.

Activation of lipolysis by cyclic AMP in conditions with accelerated lipid mobilization was examined in subcutaneous adipose tissue incubated in vitro. In (a) 16 obese patients before and during therapeutic starvation, (b) 18 diabetics before and after antidiabetic treatment and (c) 11 hyperthyroid patients before and after anti-thyroid treatment, a positive correlation was found between stimulation of basal cyclic AMP accumulation and stimulation of basal glycerol release using either isopropyl noradrenaline or noradrenaline (r = 0.6-0.9). During antidiabetic treatment stimulation of lipolysis increased in relation to that of cyclic AMP accumulation (F = 10.1, p less than 0.01), whereas during antithyroid therapy there was a decrease (F = 95.2, p less than 0.01). Starvation did not alter the relationship between lipolysis and cyclic AMP in hypogastric adipose tissue whereas in femoral tissue stimulation of lipolysis decreased in relation to that of cyclic AMP accumulation (F = 9.6, p less than 0.01). It is concluded that the amount of cyclic AMP needed to promote lipolysis is increased during starvation and in diabetes mellitus but is decreased in hyperthyroidism. From the studies during starvation it appears that regional differences in the post-receptor activation of lipolysis exist in human adipose tissue.

Adult↗

General characteristics of protein degradation in diabetes and starvation.

The enhanced protein degradation associated with diabetes and starvation is fundamentally different from normal protein catabolism. In normal eukaryotic cells large molecular weight proteins tend to be degraded more rapidly than small proteins, acidic proteins tend to be degraded more rapidly than neutral or basic proteins, and glycoproteins tend to be degraded more rapidly than nonglycoproteins. All three of these general correlations are absent or markedly reduced in liver and muscle of diabetic and starved rats. In contrast, the correlations between proteins size and half-life, between protein net charge and half-life, and between protein carbohydrate content and half-life are not affected in brain of diabetic or starved animals. These results suggest that diabetes and starvation alter the general characteristics of intracellular protein degradation in target tissues of insulin. Degradation of serum proteins is also affected in diabetes and starvation. In normal animals a general correlation exists between isoelectric points of serum proteins and their degradative rates. This relationship is abolished in diabetes and starvation, as it is among liver and muscle proteins. The implications of our findings are discussed with regard to possible mechanisms of the enhanced protein breakdown.

Animals↗

Inhibition of methyl isocyanate toxicity in mice by starvation and dexamethasone but not by sodium thiosulfate, atropine, and ethanol.

Effects of starvation (24 and 48 h), dexamethasone, sodium thiosulfate, atropine, and ethanol on the toxicity of methyl isocyanate (MIC) vapor, which escaped during the Bhopal accident of December 3, 1984, were studied in male Swiss-Webster mice. Toxicity to MIC appeared to be biphasic; majority of animals died between 1 and 2 d or between 7 and 21 d after exposure to 40 ppm MIC. Starvation (24 or 48 h) or an injection of 2 mg dexamethasone/kg prior to exposure inhibited the toxicity of MIC, especially during the first 6-7 d; administrations of sodium thiosulfate, alcohol, and atropine before or of dexamethasone after the exposure to MIC were ineffective. Starvation increased serum corticosterone levels. The antidotal effects of both starvation and dexamethasone might be due to suppression of the inflammatory response to MIC.

Animals↗

Comparison of glucose and fructose tolerance before and after starvation.

Glucose and fructose were studied in eight healthy volunteers who fasted twice for 4 days. Before and after the fasts each subject received a 4-hr glucose or fructose infusion providing 0.5 g/kg/hr. Glucose infusion during starvation resulted in a mean maximal plasma glucose rise of 401 +/- 21 mg/100 ml (+/- SEM) as compared to 119 +/- 10 mg/100 ml before starvation. Insulin/glucose ratios were lower than normal in fasted subjects. Fructose infusion during fasting produced a maximal plasma glucose rise of 91 +/- 9 mg/100 ml as opposed to 5+/-1 mg/100 ml before starvation. During fructose infusion in the fasted state, plasma fructose levels were higher than control and the rise in blood lactate and pyruvate was delayed, but finally lactate concentrations were above control values. The antiketotic effects of intravenous glucose and fructose were similar during fasting but fructose was significantly less potent in reducing free fatty acid levels. After starvation, urinary carbohydrate losses during glucose infusion were 5 times higher than those observed during fructose infusion. Thus, fructose utillization was less impaired during fasting than was glucose utilization, although fasting induced abnormalities in both glucose and fructose metabolism.

Adult↗

Nutritional manipulations and tumor growth. I. The effects of starvation.

The effects of starvation on tumor and host growth were studied in growing male Fischer rats bearing methylcholanthrene-induced sarcomas. Tumor growth was evaluated by changes in weight, volume, and incorporation of tritiated methyl thymidine into tumor DNA, (dpm/microgram DNA). Host growth was followed by changes in total body weight, carcass weight, and dpm/microgram liver DNA. All periods of starvation (24 to 96 hr) caused significant decreases in host body and carcass weight and dpm/microgram liver DNA. Changes in tumor weight and tumor volume in fed and starved animals were equal. Tumor dpm/microgram DNA in starved animals increased (P less than 0.005) relative to fed controls at 48, 72, and 96 hr starvation intervals. Starvation allows continued tumor growth while host wasting occurs, and is accompanied by increased tumor dpm/microgram DNA in this system.

Animals↗

Resting energy expenditure in short-term starvation is increased as a result of an increase in serum norepinephrine.

BACKGROUND: The effects of food restriction on energy metabolism have been under investigation for more than a century. Data obtained are conflicting and research has failed to provide conclusive results. OBJECTIVE: The objective of this study was to test the hypothesis that in lean subjects under normal living conditions, short-term starvation leads to an increase in serum concentrations of catecholamines and thus to an increase in resting energy expenditure. DESIGN: Resting energy expenditure, measured by indirect calorimetry, and hormone and substrate concentrations were measured in 11 healthy, lean subjects on days 1, 2, 3, and 4 of an 84-h starvation period. RESULTS: Resting energy expenditure increased significantly from 3.97 +/- 0.9 kJ/min on day 1 to 4.53 +/- 0.9 kJ/min on day 3 (P < 0.05). The increase in resting energy expenditure was associated with an increase in the norepinephrine concentration from 1716. +/- 574 pmol/L on day 1 to 3728 +/- 1636 pmol/L on day 4 (P < 0.05). Serum glucose decreased from 4.9 +/- 0.5 to 3.5 +/- 0.5 mmol/L (P < 0.05), whereas insulin did not change significantly. CONCLUSIONS: Resting energy expenditure increases in early starvation, accompanied by an increase in plasma norepinephrine. This increase in norepinephrine seems to be due to a decline in serum glucose and may be the initial signal for metabolic changes in early starvation.

3-Hydroxybutyric Acid↗

Carcass deposition of dietary long-chain odd carbon fatty acids by rats and their effect on plasma glucose and ketone bodies during starvation.

Weanling rats were fed diets containing various levels (0 to 40% of total dietary acids) of long chain, odd-carbon fatty acids (OCFA, 15:0 + 17:0) for 5 weeks. The OCFA did not significantly alter growth or feed efficiency and the OCFA were deposited in the carcass fat in proportion to their concentration in the diet fat. After the 5-week ingestion period, the rats were starved for 48 hours and the effect of carcass OCFA content on weight loss, fat loss, urinary total nitrogen, plasma glucose concentration and plasma ketone body concentrations was determined as a function of starvation time. The results demonstrate that OCFA catabolism during starvation results in a dose related increase in plasma glucose and dose related decrease in plasma ketone bodies without significantly altering the total weight loss, carcass fat loss, or urinary total nitrogen. Finally, the carcass percentage of OCFA did not change during starvation showing that these acids are as readily lost from the carcass during starvation as even chain fatty acids.

Animals↗

Effect of diet and starvation on hepatic mitochondrial function in the rat.

The purpose of the present study was to assess the effect of diet and starvation on mitochondrial function. Diet did not affect hepatic mitochondrial oxidation of lipid or nonlipid substrates when expressed as nanogram atoms of oxygen consumed per minute per milligram mitochondrial protein. Furthermore, diet did not affect mitochondrial palmitoylcarnitine utilization rate, mitochondrial ketoacid production, or mitochondrial carnitine palmitoyltransferase specific activity. When the data for palmitoylcarnitine utilization were expressed per gram liver, the rates were significantly lower in rats fed the high fat diet of Schemmel et al. (J. Nutr. 110: 1041-1048, 1970). DNA content (milligrams/gram) indicated that cell size rather than cell number contributed to greater total liver weight in rats fed the Schemmel high fat diet. In both stock diet-fed controls and rats fed the Schemmel high fat diet, mitochondrial protein per gram liver decreased with duration of starvation. Mitochondrial carnitine palmitoyltransferase was unchanged by diet or starvation. Thus, neither diet nor diet followed by starvation altered hepatic mitochondrial capacity to oxidize lipid substrates.

Adipose Tissue↗

Interaction of glucocorticoid and thyroxine in the responses of rats to starvation-refeeding.

The interaction of glucocorticoid (GC) and thyroxine (T4) in the generation of the hepatic enzyme overshoot and lipid response to starvation-refeeding was studied. Male Sprague-Dawley rats were either left intact, or treated with propylthiouracil (PTU), or adrenalectomized (ADX), or ADX and/or PTU treated and treated with GC and/or T4. One-half of each of these treatment groups was fed a 65% glucose diet while the remaining rats were starved for 48 hours and refed the glucose diet for 48 hours. After decapitation, hepatic lipid and glucose-6-phosphate dehydrogenase (G6PD) activity were determined. Rats treated with only PTU had less of an enzyme overshoot than nontreated rats, and the full overshoot response was restored with T4 treatment. ADX rats did not have the typical enzyme overshoot response to starvation-refeeding. However, ADX rats had their overshoot response restored with GC. PTU-treated ADX rats had more of an overshoot response than did ADX rats. When T4 was administered to PTU-treated ADX rats there was less of an enzyme overshoot; however, when both T4 and GC were administered to the PTU-treated ADX rats, the overshoot response was fully restored. The liver lipid response to starvation-refeeding followed a similar pattern except that in PTU-treated rats the liver lipid levels were significantly higher in the starved-refed rats than in the ad libitum-fed rats. These results indicate that T4 and GC play a role in the G6PD and liver lipid response to starvation-refeeding.

Adrenalectomy↗

The influence of starvation and refeeding on the lipoprotein lipase activity of skeletal muscle and adipose tissue of lean and obese Zucker rats.

Lipoprotein lipase (LPL) activities of skeletal muscles, heart and adipose tissue were investigated during feeding, prolonged food restriction, and refeeding. The influence of the duration of starvation on adipose tissue LPL activity was to cause it to decrease throughout starvation, whereas heart LPL activity increased during the first 24 hours of fasting and then declined for the remainder of the fast. Starvation of 10-week-old female, lean and obese rats to 80% of initial body weight required 5 and 9 days, respectively. In fed controls, no differences between phenotypes were found for any tissue in the LPL activities expressed per gram tissue. However, obese rats exhibited significantly smaller muscle mass and a resulting 29% lower total skeletal muscle LPL activity. No phenotype differences were detected for tissue LPL activities during starvation or refeeding. During caloric restriction, the LPL activities were reduced in heart (-18%) and adipose (-52%) tissues, but skeletal muscle was unchanged except for the slow-twitch, oxidative soleus muscle, which was increased approximately two-fold. After refeeding to initial body weight, the LPL activity of heart returned to normal, but adipose tissue was dramatically increased (+300%) for both lean and obese Zucker rats. These data suggest that reduced skeletal muscle mass with normal LPL activity per gram tissue may contribute to an increased availability of plasma triglyceride fatty acids to adipose tissue of the genetically obese rat.

Adipose Tissue↗

Ornithine decarboxylase induction in rat colon: synergistic effects of intrarectal instillation of sodium deoxycholate and starvation-refeeding.

Starvation-refeeding, intrarectal instillation of the suspected colon tumor promoter sodium deoxycholate (NaDOC), and a combination of the treatments were compared for their effects on ornithine decarboxylase (ODC) activity in the colon of male Sprague-Dawley rats. Starvation (48 hours) and refeeding (12 hours) led to a fivefold increase in ODC levels compared to ad libitum-fed controls, while NaDOC instillation led to a threefold rise. The combination of the two treatments gave a synergistic 16-fold increase over controls. The synergism observed in colon may indicate that the two treatments used act via different mechanisms to induce ODC, possibly by an increase in general macromolecular synthesis after starvation-refeeding and a specific increase in ODC synthesis after NaDOC treatment. Since this starvation-refeeding regimen is quite similar to the "starve and gorge" feeding pattern exhibited by pair-fed control animals, the use of pair-fed controls may not be appropriate for examining either ODC levels or processes, such as tumor promotion, which may be linked to ODC levels. The synergistic enhancement of tumor promoter-related ODC induction by a dietary pattern (rather than a dietary component) suggests a new area for investigation of potential nutrition-cancer interactions.

Animals↗

High carbohydrate diet and starvation regulate lipogenic mRNA in rats in a tissue-specific manner.

We have previously shown that the effects of a high carbohydrate, fat-free diet and 24-h starvation on fatty acid synthesis in rats are tissue specific. In the present study we examine the tissue-specific pretranslational effects of high carbohydrate feeding, starvation and refeeding a high carbohydrate diet after starvation on the lipogenic pathway by measuring the levels of mRNA encoding acetyl-CoA carboxylase (ACC) and fatty acid synthase (FAS) using Northern analysis. Additionally, we measured mRNA S14, a sequence tightly associated with lipogenesis. In rats fed the high carbohydrate diet, hepatic levels of the three mRNA were 3-5 fold higher than in controls. The level of S14 mRNA was doubled in epididymal fat, but other effects of this diet in adipose tissues were not significant. Expression in kidney, heart, lung and brain was not altered. Starvation significantly reduced the level of these mRNA in all tissues examined except brain. In liver, refeeding the high carbohydrate diet induced the expression of ACC, FAS and S14 mRNA 20-30 fold compared with the values found in 48-h starved animals. Hyperinduction of ACC and FAS, but not S14 mRNA expression was also observed in adipose tissues. The tissue-specific nature of these effects is consistent with previous measurements of fatty acid synthesis and confirm that this regulation occurs at the pretranslational level.

Acetyl-CoA Carboxylase↗

Starvation-induced suppression of pituitary-testicular function in rats is reversed by pulsatile gonadotropin-releasing hormone substitution.

This study was carried out to test the hypothesis that reduced hypothalamic GnRH release is responsible for the suppression of reproductive functions during starvation. Adult male rats were kept for 4 days under total fasting (only water allowed) and injected during this time at 2-h intervals with 100 or 500 ng/kg BW of GnRH or vehicle. Serum levels of LH and FSH decreased by 30% during starvation (p less than 0.05), and these effects were fully reversed by either dose of GnRH treatment. Starvation reduced the pituitary mRNA contents of the gonadotropin common alpha- and FSH beta-subunits by 30% and 35% in starved animals (p less than 0.05 for both), but the LH beta-subunit mRNA was unaffected. The GnRH treatments partly or totally reversed these changes, but up-regulation of the mRNA levels by GnRH was seen only in controls fed ad libitum. Starvation reduced the testicular and serum levels of testosterone by 84% (p less than 0.01) and 42% (p less than 0.05), respectively. These changes were fully reversed by the 500-ng/kg dose of GnRH treatment during fasting, but only serum T was completely reversed by the 100-ng/kg GnRH treatment. To elucidate whether fasting per se had direct effects at the gonadal level, we blocked the secretion of gonadotropins by treatment with a GnRH antagonist, and replaced the gonadotropins by injecting of hCG (10 IU/kg BW once daily) and hFSH (75 IU/kg BW once daily). No differences were observed between starved and control animals in either testicular or serum levels of T, or in accessory sex gland weights.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Starvation and mucosal prostaglandin-E2 in gastric stress ulceration.

To determine whether starvation increases the susceptibility of the gastric mucosa to stress ulceration and whether this effect is linked to a change in the mucosal level of prostaglandin-E2 (PGE2), 100 Holtzman rats were divided into five groups and deprived of food for 0, 12, 24, 48 and 72 h. Then, ten animals within each group were stressed by cold restraint. At the end of the stress period, all these animals as well as their unstressed counterparts were killed, the number of gastric ulcers were counted, and mucosal levels of PGE2 were assayed. Fasting alone caused no ulcerations but a decrease in mucosal PGE2 during the initial 24 h (p less than .05). However, there was a subsequent increase in mucosal PGE2, possibly related to the release of free fatty acids during starvation. Starvation and stress caused a marked and consistent reduction of the mucosal PGE2 and an increase in the number of mucosal ulcerations directly related to the duration of starvation (p less than .05).

Animals↗

Role of early enteral feeding and acute starvation on postburn bacterial translocation and host defense: prospective, randomized trials.

OBJECTIVES: To investigate the effect of: a) starvation during the preburn period and b) immediate postburn enteral nutrition on the permeability of the gut to microorganisms and the ability of the host to kill translocated bacteria. DESIGN: Prospective, randomized, experimental trials. SETTING: Laboratory. SUBJECTS: Balb/c mice and Hartley guinea pigs. INTERVENTIONS: In the first experiment, mice were starved for 0, 6, 12, 18, or 24 hrs before receiving gavage with 10(10) 14C-labeled Escherichia coli and a 20% burn injury. In the second experiment, guinea pigs received a 40% burn injury and were randomized to receive a complete enteral diet (175 kcal/kg/day) or infusion of an equal volume of lactated Ringer's solution via a previously placed gastrostomy for 6, 24, or 48 hrs. After each feeding period, 10(10) 14C Escherichia coli were infused intragastrically. In both experiments, the animals were killed 4 hrs after gavage, and mesenteric lymph nodes, spleen, liver, lungs, peritoneal fluid, and blood were harvested aseptically. MEASUREMENTS: For each tissue or fluid, the number of viable E. coli and radionuclide counts of the 14C E. coli were measured and the percentage of translocated bacteria that remained alive was calculated. MAIN RESULTS: In mice, 18 and 24 hrs of preburn starvation increased translocation only to the mesenteric lymph nodes, but it also enhanced bacterial killing in all tested tissues. Guinea pigs that were fed enterally for 6, 24, and 48 hrs postburn had significantly lower bacterial translocation in all tissues compared with animals infused with lactated Ringer's solution. Additionally, enhanced killing of translocating organisms was observed after 24 and 48 hrs of feeding. CONCLUSIONS: Starvation preburn has different consequences than starvation postburn on translocation and bacterial killing. Postburn enteral nutrition decreases the load of viable bacteria in the tissues via a double mechanism: an initial decreased translocation and a subsequent improved ability to kill bacteria that do translocate.

Acute Disease↗

Starvation resistance and adult body composition in a latitudinal cline of Drosophila melanogaster.

Latitudinal geographic variation in Drosophila melanogaster is pervasive. Parallel clines in traits such as body size, egg size, ovariole number, and development time have been found on several continents throughout the world. However, a cline in starvation resistance and fat content in D. melanogaster has so far been found only in India. Here we investigate starvation resistance and fat content in 10 populations from South America, in which clines in body size, egg size, and development time have previously been found. We find no evidence for a cline in starvation resistance or fat content in South America. We therefore suggest that the cline in starvation resistance in India may have evolved in response to specific climatic variation found only in India.

Animals↗