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E M Stricker

Publications and source records attributed to E M Stricker.

At least 19 recordsLinked to original sources

Gastric motility in conscious rats given oxytocin and an oxytocin antagonist centrally.

Previous experiments have shown that gastric motility is inhibited by microinjection of oxytocin (OT) into the dorsal motor nucleus of the vagus (DMN) in anesthetized rats, and that the inhibition of gastric motility after electrical stimulation of the hypothalamic paraventricular nucleus (PVN) is blocked by microinjection of an OT receptor antagonist directly into the DMN. As an extension of these observations, the present series of studies demonstrate that gastric motility in unanesthetized, freely moving rats was reduced both by intracerebroventricular (i.c.v.) administration of OT and by electrical stimulation of the PVN, and that both of these inhibitory effects were blocked by i.c.v. administration of an OT antagonist. Moreover, an OT antagonist administered i.c.v. alone caused an increase in baseline gastric motility. However, pretreatment with the same OT antagonist i.c.v. did not block the inhibitory effects of systemic LiCl or cholecystokinin on gastric motility in conscious rats. These results suggest that oxytocinergic neurons exert a tonic inhibitory effect on gastric motility in rats, but that the inhibitory effects of LiCl and cholecystokinin on gastric motility are not primarily mediated by parvocellular OT-containing neurons projecting from the PVN to the DMN.

Angiotensin Receptor Antagonists

Cholecystokinin induces c-fos expression in hypothalamic oxytocinergic neurons projecting to the dorsal vagal complex.

Systemic administration of cholecystokinin (CCK) decreases gastric motility and stimulates pituitary secretion of oxytocin (OT). Although peripheral OT does not affect gastric function, increasing evidence suggests that central OT secretion acting within the dorsal vagal complex (DVC) can alter gastric motility. To evaluate whether systemically administered CCK is capable of activating oxytocinergic neurons projecting to the DVC, we utilized fluorogold retrograde labeling from the DVC in combination with c-fos and OT immunocytochemical staining to quantitatively analyze paraventricular nucleus (PVN) neurons of rats following injection of CCK at a dose known to cause maximal pituitary OT secretion (100 micrograms/kg i.p.). Our results showed that 2320 +/- 63 PVN neurons were retrogradely labeled from the DVC; 146 +/- 21 (6.3%) of these contained OT, and these cells were predominantly located in the medial parvocellular subdivision of the PVN. Of all retrogradely labeled cells, 671 +/- 112 (28.9%) expressed c-fos after CCK stimulation, and 68 +/- 14 of these (10.1%) contained OT. Approximately 50% of the OT-containing neurons retrogradely labeled from the DVC stained positively for c-fos. Many magnocellular OT neurons in the PVN that were not retrogradely labeled from the DVC also expressed c-fos after CCK stimulation. These results demonstrate that parvocellular OT neurons projecting to the DVC are co-activated along with magnocellular OT neurons projecting to the pituitary following administration of a large dose of CCK, and lend support to a possible functional role for OT as a central neurotransmitter that modulates vagal efferent traffic to the gastrointestinal tract.

Animals

Salt appetite induced by DOCA treatment or adrenalectomy in rats: analysis of ingestive behavior.

A detailed description of the increased intake of 0.5 M NaCl solution by rats after systemic treatment with desoxycorticosterone acetate (DOCA) or after adrenalectomy was obtained by measuring feeding and drinking activity every 6 s for 23 h. In both models of salt appetite, the induced increase in saline intake occurred mostly at night and in close temporal association with bouts of eating and water drinking rather than in isolation. Consequently, there was no significant change in the total number of ingestive episodes, despite the substantial increase in the number of saline bouts. Saline drinking was in small draughts that usually were preceded by food bouts and followed promptly by water bouts. These and other observations indicate that under standard maintenance conditions of ad lib access to food and fluids, adrenalectomy and DOCA treatment each produce a relatively weak stimulus of salt appetite, and large daily intakes accrue because the animals do not remain satiated and the appetite recurs repeatedly.

Adrenal Glands

Gastric motility and food intake in rats after lesions of hypothalamic paraventricular nucleus.

Systemic administration of cholecystokinin (CCK) or LiCl inhibits gastric motility and food intake in rats. Brain stem-projecting oxytocin (OT) neurons in the hypothalamic paraventricular nucleus (PVN) have been proposed to mediate the inhibitory effects of CCK and LiCl on gastric motility and food intake. In the present studies, we found that basal gastric motility was elevated in rats 12-20 h after knife-cut lesions of the PVN; however, this effect disappeared 3 days later. Furthermore, CCK and LiCl inhibited gastric motility at 12-20 h, 3 days, and 3 wk after PVN lesions, although their effects were blunted. Injection of the local anesthetic lidocaine into the PVN had effects similar to acute PVN lesions. In rats with PVN lesions, the inhibitory effects of CCK and LiCl on food intake were indistinguishable from those in sham-lesioned rats. We conclude that the PVN tonically inhibits gastric motility and that it participates in, but is not essential for, the inhibitory effects of CCK and LiCl on gastric motility and food intake in rats.

Animals

Selective activation of norepinephrine- and epinephrine-secreting chromaffin cells in rat adrenal medulla.

The differential effects of insulin-induced hypoglycemia and cold exposure on adrenal medullary epinephrine (Epi) and norepinephrine (NE) cells were investigated in male Sprague-Dawley rats. In rats fasted overnight, insulin produced a marked hypoglycemia that resulted in a 70% decrease in adrenal medullary Epi content 3 h after the insulin was administered. No change in NE content was observed. Plasma Epi concentration was increased markedly after insulin, with a smaller increment in NE. In contrast, exposure to a 4 degrees C environment selectively reduced adrenal NE content, with the effect reaching statistical significance at 18 h. Cold exposure also led to a significant rise in plasma NE but not Epi. Both insulin-induced hypoglycemia and cold exposure significantly elevated adrenal dopamine, indicating that catecholamine synthesis was stimulated. Further evidence of enhanced catecholamine formation was the observation that inhibition of synthesis with alpha-methyl-p-tyrosine (AMT) greatly augmented the ability of insulin-induced hypoglycemia to selectively reduce adrenal medullary Epi content. Similarly, in cold-exposed animals, AMT pretreatment accelerated the NE depletion so that a significant decline was observed at 3 h. These results support the conclusion that the two major populations of adrenal catecholamine-secreting cells may be preferentially stimulated by different stressors. Moreover, augmented synthetic activity functions to maintain catecholamine stores in both Epi- and NE-secreting cells.

Adrenal Medulla

Central oxytocin inhibition of angiotensin-induced salt appetite in rats.

In several models of salt appetite in the rat, stimulated NaCl intake can be severely blunted by treatments associated with pituitary release of oxytocin (OT). Central administration of the potent dipsogen angiotensin II (ANG II) is known to elicit a limited salt appetite as well as thirst, but it has also been reported to stimulate pituitary OT secretion. These results suggest the possibility that the expression of ANG II-induced salt appetite in rats may be inhibited by a simultaneous central release of OT in response to this stimulus. To investigate this possibility, rats were given intracerebroventricular injections of OT-receptor antagonists before administration of 5 ng ANG II intracerebroventricularly in a 1-h two-bottle (water and 0.3 M NaCl) drinking test. This pretreatment resulted in a three- to fourfold potentiation of ANG II-induced saline ingestion, which was most prominent during the first 15 min of the test. OT-receptor antagonism did not, however, interfere with the dipsogenic properties of ANG II, nor did it stimulate saline ingestion alone in the absence of ANG II. Immunocytochemical studies demonstrated that central administration of ANG II at this dose caused pronounced c-fos expression in hypothalamic magnocellular OT and vasopressin neurons and also in OT neurons in parvocellular subdivisions of the paraventricular nucleus. These results therefore demonstrate that central administration of small doses of ANG II activates both magnocellular and parvocellular OT neurons in rats and indicate that some of the activated central OT pathway(s) may mediate an inhibitory effect that limits the salt ingestion induced by this treatment.

Angiotensin II

Central oxytocin mediates inhibition of sodium appetite by naloxone in hypovolemic rats.

Pituitary oxytocin (OT) secretion is inversely related to saline consumption in several experimental models of sodium appetite in rats. Because systemic OT administration does not inhibit sodium appetite, release of OT as a neurotransmitter within the brain, coincident with its secretion from the pituitary, may be related to inhibition of sodium ingestion. The present studies evaluated this possibility by increasing brain OT concentrations both exogenously and endogenously in rats with hypovolemia produced by subcutaneous administration of polyethylene glycol (PEG) solution. Intracerebroventricular (i.c.v.) administration of OT completely abolished intake of 0.5 M NaCl in PEG-treated hypovolemic rats, but did not significantly affect PEG-stimulated water intakes. Endogenous OT secretion was stimulated by systemic treatment with naloxone, which has been shown to increase peripheral and central OT levels. In both one-bottle (0.5 M NaCl) and two-bottle (water and 0.5 M NaCl) drinking tests, intraperitoneal naloxone completely abolished sodium appetite in association with markedly increased pituitary secretion of OT. This inhibition of sodium appetite could be prevented by i.c.v. pretreatment with a specific OT-receptor antagonist, although the antagonist by itself did not affect PEG-stimulated sodium intake. These findings therefore support previous reports which have found that sodium appetite in rats is inhibited by treatments that elicit pituitary release of OT, and provide more direct evidence that brain OT is causally involved in the inhibition of sodium appetite stimulated by such treatments in rats.

Animals

Thermal homeostasis in pregnant rats during heat stress.

Rats exposed to inescapable heat stress maintained a controlled hyperthermia while increasing heat loss by cutaneous vasodilatation and by grooming behavior. In nonpregnant rats, the evaporation of saliva groomed onto the body surfaces increased exponentially as a function of ambient temperature above 36 degrees C. This was associated with a decrease in the body temperature threshold for salivary secretion from the submaxillary gland, which then began at approximately the same body temperature as cutaneous vasodilatation. In addition, the pregnant rats maintained a lower level of controlled hyperthermia during heat stress than did nonpregnant rats. This appeared to result from a decreased production of metabolic heat, reduced insulation on the ventral surface, and an increased motivation to keep cool during heat stress. These changes met the increased need for thermolysis during pregnancy and provided for thermal homeostasis both in the pregnant rat and in the unborn fetuses.

Animals

Acute homeostatic imbalances reinstate sensorimotor dysfunctions in rats with lateral hypothalamic lesions.

It has previously been demonstrated that rats recovered from aphagia and adipsia after large bilateral electrolytic lesions of the lateral hypothalamic area do not show the normal feeding response to 2-deoxyglucose or drinking response to polyethylene glyol. The present work reveals that such homeostatic imbalances reinstate the profound sensorimotor impairments that are seen in the immediate postoperative period but abate in parallel with the gradual recovery of ingestive behaviors. Administration of alpha-methyltyrosine or spiroperidol produced sensory and motor dysfunctions in rats with lateral hypothalamic lesions that were similar to those observed after 2-deoxyglucose. These results suggest that the residual feeding and drinking deficits of rats with lateral hypothalamic lesions after apparent recovery of function do not reflect specific loss of putative gluco- and volume-regulatory contributions to ingestive behavior. Instead, they may indicate continued impairments in nonspecific activational components of motivation that normally are mediated, in part, by central dopaminergic neurons.

Animals

Renin and aldosterone secretions during hypovolemia in rats: relation to NaCl intake.

Plasma renin activities (PRA) and aldosterone concentrations increased in parallel over a wide range of plasma volume deficits produced in unanesthetized rats by extravascular administration of polyethylene glycol (PEG) solution. When PEG-treated rats were given water to drink, their intakes were proportional to PRA; when given water and 0.5 M NaCl, PRA and the steroid concentrations diminished concurrently in association with sodium consumption. Aldosterone concentrations and NaCl intakes were markedly enhanced after PEG treatment in rats maintained on a sodium-deficient diet for 4 days. On the other hand, a clear relation between PRA and water intake, and between circulating aldosterone levels and sodium intake, was not suggested by other experiments in this series. For example, bilateral nephrectomy abolished the rise in PRA during hypovolemia yet rats drank water normally. Moreover, aldosterone concentrations were substantially elevated by PEG treatment in the nephrectomized rats yet sodium appetite was abolished. These and other findings suggest that neither angiotensin nor aldosterone plays a prominent role in stimulating water and saline intakes during hypovolemia.

Aldosterone

Hyperphagia.

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Animals

Hepatic versus cerebral origin of stimulus for feeding induced by 2-deoxy-d-glucose in rats.

Intravenous administration of 2-deoxy-D-glucose (2-DG), a competitive inhibitor of glucose utilization, increased the food intake of rats. Infusions of glucose or mannose abolished this effect, whereas equimolar fructose solutions did not affect 2-DG-induced feeding. Similar results were obtained when 2-DG and the hexoses were administered into the hepatic portal vein. These findings suggest that 2-DG elicits feeding due to glucoprivation at a site that is inaccessible to fructose. This site is likely to be in the brain, not the liver, because all three sugars can nourish peripheral tissue but only fructose cannot penetrate the blood-brain barrier. Moreover, 2-DG-induced feeding was abolished by intravenous infusion of beta-hydroxybutyrate, a substrate that can be oxidized by brain and other tissues but not by the liver.

Animals