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J F Nelson

Publications and source records attributed to J F Nelson.

At least 19 recordsLinked to original sources

Chronic administration of pharmacological levels of melatonin does not ameliorate the MPTP-induced degeneration of the nigrostriatal pathway.

An extensive literature suggests that melatonin may protect from the degenerative effects of central neurotoxins by acting as a free radical scavenger. The purpose of this study was to determine if melatonin would protect male C57BL6 mice from the toxicity of methyl-4-phenyl-1,2,3,6-tetrahydropyridine (MPTP) to nigral dopamine (DA) neurons. Melatonin was initially dissolved in dimethyl sulfoxide (DMSO), diluted to 16 microg/ml and then provided in the drinking water for 4 weeks. Control mice drank the same final concentration of the DMSO diluent. One week before the termination of the experiment, randomly selected mice from the melatonin-treated and the DMSO-treated groups received two, three or four doses of 2.5 mg/kg MPTP free base administered subcutaneously at 2-h intervals. Additional DMSO-treated and melatonin-treated mice did not receive MPTP. Following tissue collection, melatonin concentration was measured in blood plasma collected from each animal and found to be 20-fold higher in melatonin-treated compared to DMSO-treated mice. Tyrosine hydroxylase (TH) activity and the levels of DA and dihydroxyphenylacetic acid (DOPAC) were not different in striata collected from melatonin-treated versus DMSO-treated mice which did not receive MPTP. Treatment with MPTP significantly reduced striatal TH activity, DA and DOPAC, but there were no significant differences in the reductions in any of these parameters observed in the melatonin-treated versus the DMSO-treated control mice that received the same total dosage of MPTP. These results show that the long-term administration of a high pharmacological dose of melatonin was ineffective in protecting nigral dopaminergic neurons from the neurotoxic effects of MPTP.

1-Methyl-4-phenyl-1,2,3,6-tetrahydropyridine↗

Food restriction enhances endogenous and corticotropin-induced plasma elevations of free but not total corticosterone throughout life in rats.

Chronic food restriction (FR), which retards many aging processes, enhances the endogenous diurnal peak of plasma total corticosterone (B) in young rats. Although the FR-dependent enhancement of total B disappears in aged rats, increased levels of the bioavailable fraction, free B, appear to be maintained. In young rats, we previously found that the FR-induced increase in the diurnal peak of total B is associated with increased adrenal response to corticotropin, also known as adrenocorticotropic hormone (ACTH). Here we show that the FR-enhanced adrenal response of total B to ACTH disappears with age but that the enhanced response of free B is maintained. We measured the endogenous diurnal peak and the response to ACTH of total and free B in 10-, 16-, and 22-month-old ad-libitum fed and FR male Fischer 344 rats in the afternoon, when plasma B peaks. At 10 and 16 months, FR rats showed enhanced total plasma B responses to ACTH relative to ad-libitum fed rats, but not at 22 months. By contrast, the response of free B to ACTH was enhanced by FR at all ages. The effect of FR on patterns of endogenous total and free diurnal B in these three age groups paralleled the ACTH-response data. The enhanced adrenocortical response of FR rats to ACTH does not reflect an increased expression of ACTH-receptor (ACTH-R) mRNA, because ACTH-R mRNA/microg adrenal RNA and ACTH-R mRNA/mg adrenal weight did not differ between ad-libitum fed and FR rats at any age.

Adrenal Glands↗

Effect of chronic aminoguanidine treatment on age-related glycation, glycoxidation, and collagen cross-linking in the Fischer 344 rat.

Aminoguanidine (AG) is an inhibitor of protein modification by the advanced Maillard reaction. We evaluated its effects in preventing age-related collagen cross-linking, glycation, and glycoxidation in Fischer 344 rats by administering the drug in their drinking water at 1 g/l from the time they were 6 months until they were 24 months of age. Body weight and food and water consumption were consistently recorded throughout the study. Plasma glucose was measured by the glucose oxidase method, and collagen cross-linking was assessed by tail tendon break time (TBT) in urea. Glycation (furosine) and glycoxidation (pentosidine and carboxymethyllysine) were assessed by high-performance liquid chromatography in acid hydrolysates of skin and tendon collagen. Water consumption dramatically increased (p <.0001) after 20 months of age and was accelerated in the control versus AG-treated rats (p <.0001). Plasma glucose increased approximately 20% at age 19 months in both groups (p <.0001). TBT, glycation, and glycoxidation all increased significantly (p <.0001) with age. However, except for a modest decrease of TBT at all ages that approached significance (p =.077), AG had no effect on collagen glycation or glycoxidation. These results are important because they suggest that alpha,beta-dicarbonyl compounds that can be trapped by aminoguanidine do not play a major role in collagen aging in the rat. Instead, post-Amadori pathways involving oxidative or nonoxidative fragmentation of the Amadori product emerge as the more likely mechanism of collagen cross-linking in aging.

Aging↗

Neuroendocrine and pharmacological manipulations to assess how caloric restriction increases life span.

As part of an effort to review current understanding of the mechanisms by which caloric restriction (CR) extends maximum life span, the authors of the present review were requested to develop a list of key issues concerning the potential role of neuroendocrine systems in mediating these effects. It has long been hypothesized that failure of specific neuroendocrine functions during aging leads to key age-related systemic and physiological failures, and more recently it has been postulated that physiological neuroendocrine responses to CR may increase life span. However, although the acute neuroendocrine responses to fasting have been well studied, it is not clear that these responses are necessarily identical to those observed in response to the chronic moderate (30% to 50% reduction) CR that increases maximum life span. Therefore the recommendations of this panel fall into two categories. First, further characterization of neuroendocrine responses to CR over the entire life span is needed. Second, rigorous interventional studies are needed to test the extent to which neuroendocrine responses to CR mediate the effects of CR on life span, or alternatively if CR protects the function of essential neuroendocrine cells whose impairment reduces life span. Complementary studies using rodent models, nonhuman primates, and humans will be essential to assess the generality of elucidated mechanisms, and to determine if such mechanisms might apply to humans.

Animals↗

Food restriction differentially affects pituitary hormone mRNAs throughout the adult life span of male F344 rats.

Because neuroendocrine mechanisms may contribute to the antiaging effects of food restriction (FR), we measured the effect of FR on mRNAs encoding anterior pituitary (AP) tropic hormones. Slot blots or RNase protection assays were done on AP RNA from 3-, 6-, 12-, 18- and 24-mo-old male F344 rats consuming food ad libitum (AL) or food restricted (FR; to 60% of AL food intake) from 6 wk. Both AL and FR rats gained body weight during the study (P < 0.05), but FR rats weighed approximately 40% less (P < 0.0001). Messenger RNA levels were expressed in two ways, i.e., per total AP and per microgram total AP RNA. Proopiomelanocortin (POMC) mRNA/microg RNA was higher (P < 0.0005) in FR than in AL rats at all ages. Thyroid-stimulating hormone (TSH) beta mRNA declined with age (P < 0.05) in AL but not FR rats and was reduced by FR up to 12 mo (P < 0.01). Growth hormone (GH) mRNA/microg RNA declined with age (P < 0.05) in AL but not FR rats, and total GH mRNA in the AP was reduced by FR at early ages (P < 0.05). FR reduced prolactin (PRL) mRNA and its age-related increase (P < 0.0005). Levels of luteinizing hormone (LH) beta and follicle-stimulating hormone (FSH) beta mRNAs did not differ between AL and FR rats until 12 mo, but thereafter rose in FR (LH beta mRNA; P < 0.01, FSH beta mRNA; P < 0.05). Many of these changes in gene expression corroborate previously reported hormonal changes in FR rodents and mutant mice with extended life spans, and thus provide further support for the hypothesis that an altered hormonal milieu contributes to the antiaging effects of food restriction.

Aging↗

Calorie restriction attenuates inflammatory responses to myocardial ischemia-reperfusion injury.

The life-prolonging effects of calorie restriction (CR) may be due to reduced damage from cumulative oxidative stress. Our goal was to determine the long-term effects of moderate dietary CR on the myocardial response to reperfusion after a single episode of sublethal ischemia. Male Fisher 344 rats were fed either an ad libitum (AL) or CR (40% less calories) diet. At age 12 mo the animals were anaesthetized and subjected to thoracotomy and a 15-min left-anterior descending coronary artery occlusion. The hearts were reperfused for various periods. GSH and GSSG levels, nuclear factor-kappaB (NF-kappaB) DNA binding activity, cytokine, and antioxidant enzyme expression were assessed in the ischemic zones. Sham-operated animals served as controls. Compared with the AL diet, chronic CR limited oxidative stress as seen by rapid recovery in GSH levels in previously ischemic myocardium. CR reduced DNA binding activity of NF-kappaB. The kappaB-responsive cytokines interleukin-1beta and tumor necrosis factor-alpha were transiently expressed in the CR group but persisted longer in the AL group. Furthermore, expression of manganese superoxide dismutase, a key antioxidant enzyme, was significantly delayed in the AL group. Collectively these data indicate that CR significantly attenuates myocardial oxidative stress and the postischemic inflammatory response.

Animals↗

cDNA expression arrays reveal incomplete reversal of age-related changes in gene expression by calorie restriction.

Calorie restriction (CR) extends life span and retards many age-related cellular and molecular changes in laboratory rodents. However, neither the breadth of its effects, its underlying mechanisms, nor the limits of its action is fully understood. Expression levels of 588 genes in livers from 3- and 24-month-old ad libitum-fed (AL), and 24-month-old CR (60% of AL intake) male C57BL/6J mice (four per group) were measured. Six genes met the statistical criteria for differential expression in old AL compared to young AL mice. Only one of these age-related changes was attenuated by CR. Four additional gene products, that did not change with age in AL mice, were differentially expressed in old CR compared to old AL mice. Northern and RT-PCR analyses confirmed differential expression of four of the six candidate genes identified by the array results. Many of the identified genes have not previously been reported to be affected by CR or aging. Some of the age-related changes in gene expression are consistent with an increased vulnerability of the aged liver to carcinogenic or other insults, with only partial protection against insult by CR. Incomplete reversal by CR of age-related changes in gene expression provides a potentially important path for probing the limits of CR action. These results also show the importance of independent confirmation in expression array profiling of age-related changes in gene expression.

Aging↗

Food restriction differentially affects mRNAs encoding the major anterior pituitary tropic hormones.

Chronic food restriction (FR) leads to adaptive cellular changes, some of which retard aging. Moreover, some of these changes occur within weeks after onset of FR. Because neuroendocrine mechanisms may mediate these effects, we measured the effect of FR on the messenger ribonucleicacids (mRNAs) encoding all of the tropic hormones of the anterior pituitary (AP). Slot blot and solution hybridization were conducted on AP ribonucleicacid (RNA) samples obtained at 0500 h (AM) and 1500 h (PM) from 3-month-old male Fischer 344 rats fed ad libitum (AL) or FR (60% of AL calories) since 6 weeks of age. PolyA RNA/microgram total RNA was similar in AL and FR rats, indicating that there was no overall effect of FR on mRNA levels. The level of proopiomelanocortin (POMC) mRNA was not reduced by FR when expressed per microgram of RNA or as total AP content. By contrast, the total AP content of the mRNAs encoding LH beta, FSH beta, TSH beta, GH, and PRL was markedly reduced by FR. When expressed per microgram of RNA, however, only GH (AM and PM), FSH beta (AM), TSH beta (PM), and PRL (PM) were reduced by FR. These results reveal that FR differentially affects pituitary tropic hormone mRNA levels within weeks after onset of FR, and are consistent with a role for neuroendocrine alterations in the initiation of adaptive cellular responses to FR.

Animals↗

Adrenocortical responsiveness to adrenocorticotropic hormone is enhanced in chronically food-restricted rats.

Chronic food restriction (FR) of rats and mice results in moderate hyperadrenocorticism, which may play a role in activating cellular mechanisms that retard aging. Previously, we reported that the FR-induced hyperadrenocorticism is not due to an activated hypothalamo-pituitary unit. Therefore, we investigated in a series of experiments whether adrenal responsiveness to adrenocorticotropic hormone (ACTH), in vitro and in vivo, is enhanced by FR. Three mo-old male Fischer 344 rats were either given free access to food (AL rats) or restricted to 60% of food consumed by AL rats (FR rats) from 6 wk of age. They were killed by decapitation in the morning (AM) and afternoon (PM) when endogenously circulating corticosterone levels are at their nadir and peak, respectively. In vitro, adrenal glands from FR rats (1.5 mo FR) produced more corticosterone per mg at all doses of ACTH than those from AL rats in both the AM and PM (diet main effect, P < 0.001). FR (1.5 to 2.5 mo) also enhanced adrenal responsiveness to physiologic (diet main effect, P < 0.05) and superphysiologic (diet main effect, P < 0.001) levels of ACTH administered in vivo to dexamethasone-treated rats. ACTH-receptor (ACTH-R) mRNA, normalized to adrenal mass or to total RNA, was not influenced by FR (1.5 mo). However, adrenal ACTH-R mRNA, as well as adrenal mass, per unit body weight was greater in FR than in AL rats (diet main effect, P < 0.001). These results indicate that enhanced adrenocortical responsiveness to ACTH plays a major role in the hyperadrenocortical state of chronically FR rats.

Adrenal Cortex↗

Diminished alpha-inhibin messenger ribonucleic acid in in vitro fertilization-embryo transfer poor responders reflects declining follicle reserve.

OBJECTIVES: To quantitate and compare granulosa cell alpha-inhibin messenger RNA (mRNA) levels in IVF-ET poor and good responders and thereby learn how alpha-inhibin mRNA levels change in states of diminished ovarian responsiveness. DESIGN: Ribonucleic acid analysis of stored luteinized granulosa cell samples. SETTING: Academic tertiary care institution. PATIENTS: Fifty-three women undergoing follicle aspiration for IVF-ET were studied. Patients were classified as poor responders (n = 16) or good responders (n = 37) according to their E2 concentration on the day of hCG; the E2 of poor responders was < 1,000 pg/mL (3,671 pmol/L) and that of good responders was > or = 1,000 pg/mL (3,671 pmol/L). MAIN OUTCOME MEASURES: Messenger RNA levels were measured using dot blot RNA analysis. The following parameters were determined or derived: total mRNA levels, total alpha-inhibin mRNA levels, alpha-inhibin mRNA per follicle, and proportional alpha-inhibin mRNA as the ratio of alpha-inhibin mRNA:total mRNA. RESULTS: Proportional alpha-inhibin mRNA and alpha-inhibin mRNA per follicle were not significantly different between poor responders and good responders. Total mRNA and total alpha-inhibin mRNA levels, however, were diminished significantly in poor responders. CONCLUSIONS: The observations that proportional alpha-inhibin mRNA and alpha-inhibin mRNA per follicle do not significantly change in poor responders, whereas total alpha-inhibin mRNA does, indicate that the decrease in total alpha-inhibin mRNA in poor responders reflects a decreased pool of total mRNA, likely because of a reduction in follicle number. These findings are in contrast to other recent reports that describe a change in granulosa cell function accompanying states of decreased ovarian responsiveness.

Adolescent↗

Hyperadrenocorticism, attenuated inflammation, and the life-prolonging action of food restriction in mice.

Food restriction (FR), which extends life span, is associated with an enhanced diurnal elevation of glucocorticoids. This increase in glucocorticoids may contribute to longevity by chronically enhancing the same protective mechanisms mobilized during acute stress. The objective of this study was to determine if attenuation of inflammation, a presumably protective effect of glucocorticoids, occurs in FR mice. Two-month-old male BALB/c mice were either fed ad lib (AL) or FR (60% AL calories) for 2 months. After one month, the diurnal elevation of plasma corticosterone was threefold higher in FR mice. Two weeks after corticosterone sampling, a hind foot pad of each mouse was injected with 20 microliters of 4% carrageenan. Maximum observed edema did not differ between FR and AL groups, but edema was reduced at onset and fell earlier in FR mice. Results indicate that at least one inflammatory reaction is attenuated by FR and are consistent with the hypothesis that FR enhances a potentially protective glucocorticoid activity.

Adrenal Cortex↗

Hyperadrenocorticism and food restriction-induced life extension in the rat: evidence for divergent regulation of pituitary proopiomelanocortin RNA and adrenocorticotropic hormone biosynthesis.

The increased diurnal elevation of plasma corticosterone (B) induced by food restriction (FR) may play a role in the life span extension of FR. We investigated whether FR alters adrenocorticotropic hormone (ACTH) and proopiomelanocortin (POMC) mRNA levels in plasma and anterior pituitary (AP), since these molecules both regulate and can be suppressed by B. Measurements were made in 3-month-old male Fischer 344 rats that had been ad libitum (AL) or FR (60% of AL calories) since 6 weeks of age. Plasma B was 2-fold higher in FR rats in the PM samples, but did not differ in AM samples. By contrast, plasma ACTH did not differ in the PM samples of FR and AL rats and was 20% lower in AM samples (p < .05) of FR rats. AP content of ACTH was 50% lower in FR rats in both AM and PM samples (p < .01). In contrast, AP contents of POMC and mRNA, primary transcript, and processing intermediate were not reduced in FR rats, and PM content of POMC primary transcript was elevated in FR rats (p < .05). The reduced pituitary and plasma ACTH of FR rats may be the consequence of their elevated plasma B levels. This study also suggests that factors other than elevated ACTH account for FR-induced hyperadrenocorticism. These results also indicate that POMC mRNA and ACTH biosyntheses are differentially regulated in FR rats.

Adrenocorticotropic Hormone↗

Proliferating cell nuclear antigen marks the initiation of follicular growth in the rat.

Despite expanding knowledge on the kinetic aspects of folliculogenesis, the question of what initiates follicle growth remains unanswered. Efforts to solve this problem have been thwarted by the absence of sensitive markers to identify the onset of follicular growth. In this study, we determined whether increased proliferating cell nuclear antigen (PCNA) correlates with initiation of follicle growth and might therefore be useful for studying early events in this process. Paraffin sections of ovaries from cycling adult rats, prepubertal eCG+hCG-primed rats, and prepubertal control rats were processed for immunocytochemistry by use of a PCNA primary antibody. In primordial follicles, neither granulosa cells nor oocytes stained for PCNA. PCNA immunoreactivity coincided with the earliest sign of follicle growth, appearing in pregranulosa cells of early primary follicles just beginning to grow. In all primary follicles, some granulosa cells were PCNA-positive. PCNA immunoreactivity in oocytes first appeared in primary follicles, preceding oocyte enlargement. In preantral and antral follicles, granulosa cell PCNA staining was uniform throughout the granulosa cell layers. Oocytes were positive for PCNA in both preantral and antral follicles. PCNA expression diminished in atretic follicles. In CL, granulosa cell PCNA expression was also decreased. Theca cell PCNA expression was first evident in the transitional follicle (1-2-layer granulosa cells) and was present in all stages thereafter. The pattern of PCNA expression did not differ among adult cycling, prepubertal eCG+hCG-stimulated, and control rat ovaries.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Dissociation kinetics of the uterine estrogen receptor-estradiol complex are unaltered in aging C57BL/6 mice.

Several, though not all, estrogen-dependent phenomena show reduced responsiveness to estradiol (E2) during aging. One factor contributing to this reduced sensitivity could be an increase in the dissociation rate of the estrogen receptor-hormone complex. We therefore studied the effect of aging on the dissociation rate of 3HE2 from the uterine cytosolic estrogen receptor (ER) of C57BL/6 mice that had been ovariectomized 48 h earlier. Measurements were made at 28 degrees C at two concentrations of cytosol. In dilute cytosol ([ER] = 0.01 nM) the dissociation of ER-3HE2 displayed a single phase, first order profile which did not differ among young (4-6 month), middle-aged (15-18 month) and old (23-30 month) mice. In more concentrated cytosol ([ER] = 2 or 6 nM) the dissociation of ER-3HE2 displayed a biphasic first order profile that consisted of an initial rapidly dissociating phase followed by a more slowly dissociating phase. There was no effect of age on the dissociation rate constant (K) of either the rapid (K-1) or slow (K-2) phase. Shortening the time allotted for the concentrated cytosol to equilibrate with 3HE2 before measuring the dissociation rate reduced the fraction of the receptor hormone complex that dissociated in the slow phase, but, once again, the dissociation profiles did not differ between age groups. These results indicate that uterine ER dissociation kinetics remain unaltered in middle-aged and old mice and are therefore unlikely to play a role in the attenuated responsiveness to estrogen during aging.

Aging↗

Accelerated disappearance of ovarian follicles in mid-life: implications for forecasting menopause.

Menopause is triggered by the number of ovarian follicles falling below a threshold number and is irreversible because oogonial stem cells disappear after birth. Since it is the result of programmed disappearance of a limited store of follicles, menopause can be predicted using mathematical models based on total follicle counts at different ages. Our model shows follicle numbers decline bi-exponentially rather than as a simple exponential function of age, as had been assumed, with a first exponential rate parameter of -0.097 and a second of -0.237. The change occurred when numbers had fallen to the critical figure of 25,000 at age 37.5 years. The unexpectedly faster rate of ovarian ageing afterwards lowers the follicle population to 1000 at approximately 51 years, and was adopted as the menopausal threshold because it corresponds to the median age of menopause in the general population. Had the earlier rate persisted menopause would not be expected until 71 years. The impact of step reductions of follicle numbers on the prospective span of menstrual life was predicted by the model. A reduction by 50% before age 30 years resulted in the threshold being reached at 44 years and 0.6 year later for every subsequent year until age 37.5 years after which it is reached at 48 years. A reduction of 90% in childhood before age 14 years could result in menopause as early as 27 years, with increments of 0.6 year per year afterwards until after 37.5 years when it is expected at age 41 years.(ABSTRACT TRUNCATED AT 250 WORDS)

Adolescent↗

Aging impairs estrogenic suppression of hypothalamic proopiomelanocortin messenger ribonucleic acid in the mouse.

Altered neuroendocrine sensitivity to estrogen is a characteristic of reproductive aging in female rodents, but its molecular basis is not well understood. The objective of this study was to determine whether altered modulation of hypothalamic proopiomelanocortin (POMC) mRNA by estradiol (E2) is a component of reduced neuroendocrine sensitivity to estrogen in the aging mouse. Young (4 month-old), middle-aged (13 month-old), and old (25 month-old) C57BL/6J mice were ovariectomized, implanted 2 weeks later with Silastic capsules containing E2 or cholesterol (CHOL), and sacrificed 3 days later. Hypothalamic POMC mRNA was measured by solution hybridization/RNase protection, using a RNA probe complementary to a fragment of mouse POMC mRNA. In the group with CHOL implants, POMC mRNA was 36% lower in middle-aged and old mice compared to young mice. E2 treatment reduced POMC mRNA levels by 44% in young mice but failed to lower POMC mRNA in middle-aged and old animals. These results confirm earlier evidence of reduced levels of POMC mRNA in hypothalami of aging rodents and indicate that the ability of E2 to reduce hypothalamic POMC mRNA is lost by middle age.

Aging↗