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E S Foster

Publications and source records attributed to E S Foster.

30 records · Page 2Linked to original sources

Role of aldosterone and dietary potassium in potassium adaptation in the distal colon of the rat.

The present experiments were designed to differentiate the effects of aldosterone and chronic potassium loading in the mechanism of colonic potassium adaptation, using a recently described animal model that permits systematic manipulation of aldosterone and dietary potassium. Unidirectional 42K fluxes were performed under short-circuit conditions across isolated distal colonic mucosa from rats with intact adrenal glands and in adrenalectomized, hormone-replaced animals. Administration of a potassium-enriched diet reversed net potassium absorption (+0.43 +/- 0.10 muEq/h.cm2) in intact animals to net potassium secretion (-0.76 +/- 0.08 muEq/h.cm2). Infusion of aldosterone in adrenalectomized animals, in an amount equivalent to that produced by potassium loading in intact rats, reduced JnetK to zero (-0.03 +/- 0.06 muEq/h.cm2). Similarly, zero net potassium transport (-0.14 +/- 0.08 muEq/h.cm2) was observed when experimental rats were fed a potassium-enriched diet and maintained with basal aldosterone levels. Therefore, both elevated aldosterone levels and a potassium-enriched diet had an effect on net potassium transport, but neither produced the full effects of chronic potassium loading. An increase in net potassium secretion (-0.57 +/- 0.07 myEq/h.cm2) comparable to that of intact potassium-loaded animals did, however, occur when potassium loading and elevated aldosterone levels were combined in experimental animals. These studies demonstrate that (a) chronic potassium loading alters active potassium transport by an aldosterone-independent mechanism and (b) the mechanism of chronic potassium adaptation represents the additive effects of increased dietary potassium and aldosterone.

Adaptation, Physiological↗

Mechanism of active potassium absorption and secretion in the rat colon.

To characterize and contrast the active potassium absorptive and secretory processes present in the rat colon, unidirectional 42K fluxes were performed under short-circuit conditions across isolated distal (D) and proximal (P) colonic mucosa of control rats and animals with hyperaldosteronism due to sodium depletion (aldosterone group). In the control D colon there was net potassium absorption (+0.51 +/- 0.07 mueq X h-1 X cm-2). The absorptive process appears electroneutral because net potassium flux ( JK net ) was unchanged in sodium-free Ringer solution (+0.76 +/- 0.12 mueq X h-1 X cm-2), whereas short-circuit current (Isc) was reduced to zero, and in chloride-free Ringer solution. In P colon of controls, net potassium secretion was -0.19 +/- 0.02 mueq X h-1 X cm-2 and was abolished by removal of sodium but not by removal of chloride. In both P and D colon aldosterone produced active potassium secretion (-0.39 +/- 0.06 mueq X h-1 X cm-2, P less than 0.001, and -0.90 +/- 0.07 mueq X h-1 X cm-2, P less than 0.001, respectively) that was sodium and chloride dependent. Although mucosal amiloride in D colon of aldosterone animals reduced net sodium flux to zero and reversed Isc from 4.1 +/- 0.6 to -1.1 +/- 0.1 mueq X h-1 X cm-2, net potassium secretion was not affected. Thus, in the presence of amiloride, Isc is accounted for by JK net (-0.93 +/- 0.12 mueq X h-1 X cm-2). These data indicate that 1) the active potassium absorptive process is electroneutral and could be explained by a potassium-proton exchange, and 2) the potassium secretory process is stimulated by aldosterone, is not inhibited by amiloride, and probably is electrogenic.

Aldosterone↗

Corticosteroid alteration of active electrolyte transport in rat distal colon.

To determine the effect of corticosteroids on active transport processes, unidirectional fluxes of 22Na, 36Cl, and 42K were measured under short-circuit conditions across isolated stripped distal colonic mucosa of the rat in control, secondary hyperaldosterone, and dexamethasone-treated animals. In controls net sodium and chloride fluxes (JNanet and JClnet) and short-circuit current (Isc) were 6.6 +/- 2.2, 7.6 +/- 1.6, and 1.3 +/- 0.2 mu eq X h-1 X cm-2, respectively. Although aldosterone increased Isc to 7.3 +/- 0.5 mu eq X h-1 X cm-2, JNanet (6.9 +/- 0.7 mu eq X h-1 X cm-2) was not altered and JClnet was reduced to 0 compared with controls. Dexamethasone also stimulated Isc but did not inhibit JClnet. In Cl-free Ringer both aldosterone and dexamethasone produced significant and equal increases in JNanet and Isc. Theophylline abolished JNanet in control animals but not in the aldosterone group. Aldosterone reversed net potassium absorption (0.58 +/- 0.11 mu eq X h-1 X cm-2) to net potassium secretion (-0.94 +/- 0.08 mu eq X h-1 X cm-2). Dexamethasone reduced net potassium movement to 0 (-0.04 +/- 0.12 mu eq X h-1 X cm-2). These studies demonstrate that 1) corticosteroids stimulate electrogenic sodium absorption and 2) aldosterone, but not dexamethasone, inhibits neutral NaCl absorption and stimulates active potassium secretion. The effects of mineralocorticoids and glucocorticoids on electrolyte transport are not identical and may be mediated by separate and distinct mechanisms.

Aldosterone↗

Cyclic adenosine monophosphate stimulates active potassium secretion in the rat colon.

To determine whether cyclic adenosine monophosphate influences active potassium transport in the rat colon, we studied the effect of dibutyryl cyclic adenosine monophosphate and theophylline on unidirectional transmural 42K fluxes across proximal colonic mucosa under short-circuited conditions. Active potassium secretion (-0.19 +/- 0.02 microEq/h X cm2) was present in animals maintained on a normal potassium diet. Both 0.5 mM dibutyryl cyclic adenosine monophosphate and 5 mM theophylline significantly increased net potassium secretion by 0.49 +/- 0.04 and 0.33 +/- 0.03 microEq/h X cm2, p less than 0.001, respectively; the stimulation of net potassium secretion was secondary to an increase in serosal-to-mucosal potassium transport without change in mucosal-to-serosal potassium movement. A similar increase in active potassium secretion (from -0.15 +/- 0.03 to -0.32 +/- 0.03 microEq/h X cm2, p less than 0.005) was produced by bethanechol, a cholinergic muscarinic agonist that alters sodium and chloride transport by a noncyclic adenosine monophosphate, calcium-dependent process. In animals maintained on a high potassium diet, active potassium secretion was significantly increased to -0.79 +/- 0.17 microEq/h X cm2 (p less than 0.001). In these potassium-loaded animals, theophylline produced a greater increase in active potassium secretion (0.91 +/- 0.10 vs. 0.33 +/- 0.03 microEq/h X cm2, p less than 0.001) than in animals fed a normal potassium diet. These studies demonstrate that cyclic adenosine monophosphate and noncyclic adenosine monophosphate mediated secretogogues stimulate active potassium secretion. We speculate that the mechanism by which cyclic adenosine monophosphate increases active potassium secretion is related to an increase in luminal potassium conductance.

Animals↗

Clinical signs of tumors affecting the rostral cerebrum in 43 dogs.

The clinical and pathologic features of 43 dogs with neoplasia of the rostral cerebrum were reviewed. Primary brain tumors included meningioma, astrocytoma, neuroblastoma, oligodendroglioma, and ependymoma. Other tumors that secondarily affected these areas included solitary hemangiosarcoma, nasal neuroendocrine carcinoma, nasal cell adenocarcinoma, nasal squamous cell carcinoma, and nasal neurofibrosarcoma. Older dogs were usually affected (mean, 10 years), and meningioma was the most frequent tumor type. Thirty-one dogs (72% of total) had a late-onset (greater than 5 years of age) of either generalized seizures or behavior abnormalities, or both, with an initially normal neurologic examination. In these 31 dogs, a mean time of 78 days (range, 2 to 400 days) elapsed from the onset of seizures or behavior change to the detection of a persistently abnormal neurologic examination. In all 43 dogs, the time from the detection of neurologic deficits to death or euthanasia and necropsy ranged from 1 to 63 days (mean, 13 days). On the basis of this review, it appears that dogs with late-onset seizures or behavior change, or both, should be suspected of having tumors involving the rostral cerebrum, despite the absence of persistent neurologic deficits commonly associated with cerebral tumors. Further, the onset of abnormalities in the neurologic examination and the time of death seem to occur within predictable time periods.

Adenocarcinoma↗