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E Le Bourg

Publications and source records attributed to E Le Bourg.

At least 19 recordsLinked to original sources

Effects of mild heat shocks at young age on aging and longevity in Drosophila melanogaster.

Young adult flies were submitted to heat shocks (37 degrees C) of various durations (5, 10, 20, 40 or 60 min daily) for 1, 2 or 3 weeks. A slight longevity increase, in both sexes, was only observed with the lowest heat shock. Longer shocks had neutral or negative effects. Flies submitted to the procedure providing a longevity increase did not show a delayed behavioral aging but survived longer at 37 degrees C than control flies. This higher thermotolerance was not associated with an increased hsp70 induction. The results are discussed in connection with hormesis and previous results showing that hypergravity, an other mild stress, increases longevity and delays behavioral aging: different mild stresses may have contrasting effects on aging and longevity.

Aging↗

Research on aging in France.

This article gives some information on the French research on aging using a survey of the European Commission on research on aging in Europe and the answers to a questionnaire sent to the laboratories involved in aging research. France is involved in the European effort, but to a lesser degree than could be expected from its population size, and this picture has not changed during the last decade. The answers to the questionnaire allow us to know the opinion of colleagues on the strengths and weaknesses of French research: the lack of money and institutional recognition seem to hinder the development of experimental gerontology in France.

Aging↗

Gerontologists and the media in a time of gerontology expansion.

Gerontology research is now of high concern, particularly to the media, and a risk could exist that gerontologists may give people false hopes or premature conclusions. This article describes two examples: the hypothesis that median longevity will be 150 years in 2100, and the recent results on telomerase. It is concluded that it is prudent for gerontologists to maintain a cautious attitude with the media.

Aging↗

A mild stress due to hypergravity exposure at young age increases longevity in Drosophila melanogaster males.

Drosophila melanogaster flies were exposed to hypergravity starting at two days of age, the range of gravity levels used being 2.58-7.38 g. No longevity change was observed for exposures of less than 14 days. The longevity of males increased if they were submitted to hypergravity for durations ranging from 14 to 24 days. This increase in longevity was never observed in females. The positive effect of exposure to hypergravity has been replicated in two laboratories using two wild-type strains and different rearing conditions. A short hypergravity exposure seems to be a mild stress, yielding positive effects on longevity. This is in accordance with two previous studies showing a slight longevity increase after heat shock in the nematode Caenorhabditis elegans and in Drosophila melanogaster.

Animals↗

HSP70 induction may explain the long-lasting resistance to heat of Drosophila melanogaster having lived in hypergravity.

In this study, we showed that in flies kept for 2 weeks at 1 (terrestrial gravity), 3 or 5 x g (hypergravity, HG) before transfer to 1 x g, resistance to heat remained higher in HG flies for several weeks after the transfer. The measurement of heat shock protein 70 (hsp70) indicated no induction of the protein in HG, but the study revealed that flies living in HG expressed more hsp70 only after being submitted to severe stress. The higher induction of hsp70 may explain the higher thermotolerance of these HG-treated young flies. Finally, an unknown protein was observed only in females. This protein may belong to a class of higher molecular weight hsp (hsp110), which have not previously been observed in Drosophila.

Age Factors↗

Resistance to stress as a function of age in Drosophila melanogaster living in hypergravity.

Male and female fruitflies (Drosophila melanogaster) living at different gravity levels [1g: terrestrial gravity; 3 and 5g: hypergravity (HG)] were used to investigate the age-specific (young: 7 days; middle-aged: 28 days; and old: 49 days) resistance to various stresses (starvation, desiccation, and cold). The experiment showed that the resistance of the flies to the studied stresses decreased with age, except in the case of females submitted to starvation which was increased. These variations were explained by the amount of lipid. Variation in desiccation resistance was not explained by the amount of water. As a function of gravity, no or slight differences were observed for the studied stresses. The resistance to heat of young flies increased with the gravity level. This resistance was not explained by a decreased locomotor activity of HG-living flies during heat stress, nor by the water and lipid contents.

Aging↗

A mild stress, hypergravity exposure, postpones behavioral aging in Drosophila melanogaster.

Flies were submitted to two weeks of hypergravity in a centrifuge (3 or 5 g), starting at the second day of imaginal life, and their behavior (spontaneous locomotor activity, patterns of movement, and climbing activity) was observed from removal of the centrifuge to an older age; the usual effects of age on these behaviors were generally observed. Hypergravity-kept flies had worse behavioral scores on removal of centrifuge than those always kept at 1 g. When they aged, they got either similar or better scores than 1 g flies, which indicates that their behavioral aging may be slower. These results show that a mild stress such as hypergravity, which has been previously shown to increase the longevity of males and resistance to heat shock in both sexes, is an environmental manipulation postponing aging in flies.

Aging↗

A review of the effects of microgravity and of hypergravity on aging and longevity.

This article reviews the literature dealing with the effects of acute or chronic exposure to microgravity (spacecrafts) or hypergravity (centrifuge) on longevity and the aging process. Even if space flights are now common, the effects of these two kinds of environment on aging are still poorly documented, particularly in mammals. However, there is a growing interest for the use of the fruit fly Drosophila melanogaster, and this species may be now considered as a model organism in gravitational biology studies dealing with aging.

Aging↗

Evolutionary theories of aging: handle with care.

BACKGROUND: Evolutionary theories are considered by a growing number of gerontologists as providing a basis to understand why aging occurs. OBJECTIVE: In such conditions, a risk could exist to favor evolutionary explanations rather than nonevolutionary ones, even when both equally fit the data. METHODS: A paper recently published on longevity in ants is analyzed, and a study of fertility and longevity in human beings is done to illustrate this risk. RESULTS: In the two cases, evolutionary and concurrent hypotheses may apply to the same data. CONCLUSIONS: When both kinds of explanations may be applied, the way to solve the problem is not to favor one explanation by relying on a priori preferences, particularly if the favored hypothesis is still controversial.

Aging↗

Increased longevity and resistance to heat shock in Drosophila melanogaster flies exposed to hypergravity.

In recent years, attempts have been made to increase longevity in animal models (caloric restriction in rodents or overexpression of catalase and superoxide dismutase in transgenic flies, for instance). We report here that flies submitted to hypergravity (3 or 5 g), for 1 or 4 weeks starting from the second day of imaginal life and transferred after that time to 1 g, have a higher resistance to heat shock than flies living continuously at 1 g. Furthermore, male flies that had lived for 2 weeks from the second day of life at 3 or 5 g, lived longer than those living all the time at 1 g; no longevity increase was observed in females. As far as we know, this is the first example in flies showing that a mild stress at a young age not only increases resistance to an acute stress but also increases longevity. A hypothesis to explain these results could be that heat-shock proteins, which are induced by various stress factors, are synthesized in conditions of hypergravity.

Animals↗

Hypergravity and aging in Drosophila melanogaster. 9. Conditioned suppression and habituation of the proboscis extension response.

In a first experiment, the conditioned suppression of the proboscis extension response (PER) to sucrose was measured in young, middle-aged and old male Drosophila melanogaster flies living at either 1, 3 or 5 g. Flies were starved and then subjected to a learning task involving a sucrose stimulus, followed by an aversive one applied to their forelegs. In this learning task, flies learn to not extend their proboscis when walking on sucrose. Flies which have lived in hypergravity (HG) had a lower number of PER suppressions than 1 g ones, and this finding was mainly due to young and middle-aged flies. In a second experiment, the habituation of the PER was studied using as stimulation sucrose solutions 2-fold (first experiment), 4-fold (second one) or 8-fold (third one) higher than the individual sucrose threshold. Middle-aged and old flies habituated more slowly than young flies in the second and third experiments. In the third experiment, a decreasing speed of habituation was observed when gravity increased; this result was mainly due to young flies, and no gravity effect was observed in the other two age groups. This whole set of results suggests that HG-kept flies do not age faster than 1 g ones, as far as these learning and habituation tasks are concerned. It seems possible that HG acts like a mild stress to which flies adapt; if applied for a long time, HG could induce a premature aging, as observed in the previous papers of this series.

Aging↗

Failure to confirm increased longevity in Drosophila melanogaster submitted to a food restriction procedure.

Several studies have shown that, contrary to what occurs in rodents and in some invertebrate species, food restriction has no positive effect on longevity in Drosophila melanogaster. However, Chippindale et al. (1993) reported that flies subjected to food restriction, by modulating the yeast level, could live longer. In the present study we used the same yeast levels as Chippindale et al. in an attempt to confirm these results. No positive effect of food restriction on longevity could be observed in either sex in mated and virgin flies.

Agar↗

Selection for increased longevity in Drosophila melanogaster: reflections on new data.

In recent papers, new data were presented on the late-age reproduction experiment initiated by Luckinbill and Clare in 1981: when early- and late-reproduced lines were compared simultaneously 10 years after the end of the original experiment, differences in the mean life span are observed between the lines. Yet the conditions in which these measurements were done are highly questionable. More fundamentally, using these data, the analysis of the selection process is impossible and conclusions about the determinism of life span are debatable.

Aging↗

Hypergravity and aging in Drosophila melanogaster. 8. Proboscis-extension-response threshold to sucrose.

The proboscis extension response threshold to sucrose has been measured in young, middle-aged and old male Drosophila melanogaster flies living at a gravity level of 1, 3.02 or 5.02 g until the experiment. The threshold increased with age and no effect of gravity level was observed at any age. These data are at variance with those of previously studied behavioral traits which showed that flies living in hypergravity seemed to age faster than 1-g ones.

Aging↗

Hypergravity, aging and longevity in Drosophila melanogaster.

1. Drosophila melanogaster flies have been used in studies of the effect of hypergravity (HG) on aging and longevity. 2. There is no clear longevity decrease with the gravity level up to 4 g and, even at 7 g, flies still live for roughly 40 days. 3. The HG-related changes in fecundity suggest that flies counteract an increased metabolic demand. 4. Viability is barely affected in HG. 5. These results show that flies remain able to lay viable eggs and to live for a fairly long life, even at high HG levels. 6. The study of three behavioral traits affected by aging (climbing activity, pattern of movement, spontaneous locomotor activity) suggests that flies age faster in HG, while no HG effect is clearly detected at young age. 7. These results are observed at HG levels where longevity is not yet affected. 8. Results are discussed in relation with Pearl's rate of living theory (1928).

Aging↗