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F M Bumpus

Publications and source records attributed to F M Bumpus.

At least 37 records · Page 2Linked to original sources

Angiotensin analogues that selectively augment the force of contraction of the isolated heart.

Angiotensin II (Ang II) produces a positive inotropic effect on the heart; however, its usefulness as an inotropic agent is limited because of its inherent vasoconstrictor action. We therefore designed Ang II analogues that are potent, positive inotropic agents with minimal myotropic properties. Replacement of the proline residue in position 7 with alanine reduced the pressor and vascular contractile response to less than 1% of Ang II. In spite of negligible vascular actions, however, [7-alanine]Ang II produced 50% of the inotropic activity of Ang II in the cat papillary muscle. The results of pharmacological evaluation of various position 7-substituted analogues were as follows: 1) Replacement of proline in position 7 of angiotensin I (Ang I) and Ang II with primary amino acids produced cardiac-specific, positive inotropic properties. 2) The selectivity of positive cardiac inotropic activity of position 7-substituted analogues of Ang II was dependent upon the nature of the amino acid in position 1. Replacement of aspartic acid in position 1 with sarcosine increased vasoconstrictor activity, thereby diminishing cardiac selectivity. However, this change did not affect cardiac selectivity in Ang I analogues. 3) Introduction of any type of steric hindrance in position 7 (e.g., replacement of alanine with N-methyl- or alpha-methylalanine) led to a considerable loss in inotropic activity. In conclusion, contrary to rigid, structural requirements (solution conformation) for the pressor action of Ang II, a less organized structure or a random conformation at the carboxyl terminus appears to favor cardiac-selective contractile response (or positive inotropic response).

Angiotensin I↗

Evidence for selective expression of angiotensin II receptors on atretic follicles in the rat ovary: an autoradiographic study.

Ovarian angiotensin II (Ang II) receptors display a cyclical pattern of variation during the rat estrous cycle. Ang II receptors, estimated by the specific binding of the Ang II receptor antagonist [125I]iodo-[Sar1,Ile8] Ang II to ovarian membranes, were lowest at estrus [binding site density (Bmax) = 35 +/- 2 fmol/mg; binding site affinity (KD) = 2.0 +/- 0.2 nM] and highest at diestrus I (Bmax = 59 +/- 3 fmol/mg; KD = 1.6 +/- 0.1 nM). We have previously shown that Ang II receptors in the rat ovary predominantly exist on the granulosa cell layer of a subpopulation of follicles. Our present studies show that the Ang II receptor-containing follicles in the rat ovary are mainly atretic (approximately 80%) or show signs of early atresia (approximately 15%) during all stages of the estrous cycle. A small number of Ang II receptor-containing follicles were healthy (approximately 5%). In contrast to the Ang II receptor-containing follicles, the FSH receptor-containing follicles were predominantly healthy (greater than 90%). Follicles which contained both Ang II receptors and FSH receptors were mainly early atretic. Since Ang II receptor-containing follicles in the rat ovary were mainly atretic these studies suggest that in the rat Ang II may be a major factor in regulating the function of atretic ovarian follicles.

1-Sarcosine-8-Isoleucine Angiotensin II↗

Rat ovarian renin: characterization and changes during the estrous cycle.

To demonstrate the existence and help clarify the function of renin in the rat ovary, we have characterized rat ovarian renin and examined ovarian renin levels during different stages of the rat estrous cycle. We show that high concentrations of active renin are present in the rat ovary (2.9 ng angiotensin I/h/mg). Ovarian renin activity has a pH optimum of about 7.0 and is due to a glycosylated aspartyl protease with an apparent mol wt of 39,000. These properties of rat ovarian renin are identical to previously characterized rat kidney renin. In PMSG-treated immature and adult 5-day cycling rats, ovarian renin was increased about 2-fold at estrus. At all stages of the estrous cycle in the 5-day cycling rat, the ratio of active to inactive ovarian renin was about 3:1, whereas about 90% of the renin in plasma was inactive. In the hypophysectomized diethylstilbestrol-treated rat ovary, over 90% of active renin remained in the residual ovary after the granulosa cells had been expressed, suggesting a theca-interstitial localization for renin. These studies indicate that active renin exists in the rat ovary, that its levels are cyclically increased at estrus, and that this increase may be due to enhanced local production and activation of the renin precursor. These findings greatly strengthen the concept of a functional renin-angiotensin system in the rat ovary.

Ammonium Sulfate↗

Cellular organization of the brain renin-angiotensin system.

A model of intracellular Ang II formation (Figure 1) implies that angiotensinogen neurons exist and that CNS Ang II acts both as a neurotransmitter as well as a neurohormone. Such a mechanism is consistent with the immunocytochemical localization of a fraction of brain Ang II in neurosecretory vesicles. To date, several dozen peptide neurotransmitters and neurohormones have been studied. Those assigned to peptidergic systems follow the generalized pathway of biosynthesis shown in Figure 1. In peptidergic systems, a prohormone and all of its processing enzymes are synthesized in the rough endoplasmic reticulum of a cell and move into the Golgi apparatus (Figure 1: #1-3). In the Golgi the prohormone and processing enzymes are packaged into the same vesicle (#3). These secretory vesicles then migrate toward the plasma membrane, frequently via axonal or dendritic projections to terminals. Within these cytoplasmic vesicles and prior to release, the processing enzymes are activated (#4) and the prohormone enzymatically processed, yielding the active peptide (#5-6). Only then do the vesicles fuse with the plasma membrane (in a calcium-dependent process), releasing their contents (#7-8). Once released, the active peptide migrates across the extracellular space and interacts with specific cell surface receptors to initiate a response (#9). Finally, receptor-bound peptide degradation is initiated by receptor-mediated endocytosis (#10-11). For angiotensin peptides to be produced intracellularly, the cell must present only one secretory pathway for Golgi packaging of renin and angiotensinogen; otherwise current theories of protein sorting would predict that these two proteins would be segregated even if synthesized within the same cell. Small quantities of co-packaged renin and angiotensinogen occurring via "spill-over" between compartments seems an unsatisfactory process for a regulated hormone system. Figure 2, depicting an extracellular mechanism for producing Ang II in the brain, has also been proposed. The mechanism of extracellular angiotensin formation is consistent with the molecular information encoded within the component proteins, known mechanisms of protein secretio, well-defined systemic renin-angiotensin enzymatic cascades, and demonstration of all the components of the renin-angiotensin system in the extracellular compartments of the brain. This model (Figure 2) allows independently coordinated gene expression and synthesis of renin (#1R), angiotensinogen (#1A), and angiotensin-converting enzyme (# 1C) in the same or different cells.(ABSTRACT TRUNCATED AT 400 WORDS)

Angiotensin I↗

Rat ovarian angiotensin II receptors. Characterization and coupling to estrogen secretion.

Angiotensin II receptor agonist (125I-angiotensin II) and antagonist (125I-[Sar1,Ile8]angiotensin II) bind in a specific and saturable manner to rat ovarian membranes. Agonist and antagonist binding affinity (KD approximately 0.5 nM) and the number of sites estimated (Bmax approximately 60 fmol/mg of protein) were similar. Dissociation of receptor-bound agonist was more rapid than the dissociation of receptor-bound antagonist, and agonist, but not antagonist, dissociation from the receptor was accelerated by GTP gamma S. A 0-150 mM increase in Na+ produced a 27% increase in the KD of agonist binding. Antagonist binding was not modified by Na+. These studies suggest that both agonist and antagonist identify putative angiotensin II receptors in the ovary but that the properties of agonist and antagonist binding are distinct. Angiotensin II antagonist binding sites are present on the granulosa cell layer of rat ovarian follicles (Speth, R. C., Bumpus, F. M., and Husain, A. (1986) Eur. J. Pharmacol. 130, 351-352). To determine the role of angiotensin II in ovarian function, we examined angiotensin II receptors and function during the onset of puberty. High affinity and low capacity angiotensin II receptors were present in ovaries from immature rats. After pregnant mare's serum gonadotropin induced ovulation in immature rats, antagonist binding to total ovarian membranes increased over 3-fold. In vitro incubation of peripubertal ovaries with 1 microM angiotensin II produced a stimulation of estrogen, but not progesterone, secretion. This steroidogenic effect of angiotensin II was most pronounced in the luteal phase of the estrus cycle. These studies point toward the involvement of angiotensin II in the regulation of ovarian function, possibly through modulation of follicular estrogen levels.

1-Sarcosine-8-Isoleucine Angiotensin II↗

Localization of angiotensin II receptors in ovarian follicles and the identification of angiotensin II in rat ovaries.

Specific, high-affinity (Kd approximately equal to 0.6 nM), and saturable (3.3 fmol/mg of tissue, wet weight) binding of 125I-labeled [Sar1,Ile8]angiotensin II to rat ovarian membranes was observed. Displacement of 125I-labeled [Sar1,Ile8]angiotensin II binding to rat ovarian membranes by angiotensin II analogs and fragments resembled the potency order of these compounds on angiotensin II receptors in other tissues: [Sar1,Ile8]angiotensin II greater than angiotensin II greater than des-Asp1-angiotensin II greater than angiotensin I greater than des-Asp1,Arg2-angiotensin II. Several unrelated peptides, including follicle-stimulating hormone at 10 microM, did not displace ovarian 125I-labeled [Sar1,Ile8]angiotensin II binding. Autoradiograms of 125I-labeled [Sar1,Ile8]angiotensin II binding to ovarian sections indicated that the angiotensin II receptor binding sites were localized exclusively to a subpopulation of follicles, occurring on the granulosa and theca interna cells. Other follicles were devoid of 125I-labeled [Sar1,Ile8]angiotensin II binding sites. Angiotensin II immunoreactive material was also identified in the ovary. The concentration of ovarian Ang II immunoreactivity was 8- to 75-fold greater than that of plasma, was not reduced in bilaterally nephrectomized rats, and was shown by high-pressure liquid chromatographic analysis to be the native angiotensin II octapeptide. The presence of angiotensin II and its receptor binding sites in the ovary suggests a role for angiotensin II as a regulator of ovarian function.

Angiotensin II↗

Selective pharmacological effects of triprolyl and pentasarcosyl angiotensin II.

Among the various biological effects of angiotensin II (AII), both pressor activity and aldosterone stimulation appear to be mediated by functionally different receptors. With this in mind, we compared pressor and aldosterone-stimulating activities of AII with those of triprolyl [(Pro)3] AII and pentasarcosyl [(Sar)5] AII. In conscious male Wistar rats (Pro)3 AII and (Sar)5 AII produced 48 and 46% of the pressor activity of AII. After intravenous infusion (conscious unrestrained rats, 125 pmol/kg/min for 30 min), plasma aldosterone concentrations were not significantly different from those of control rats which were infused with saline. However, when the rats were infused with AII (125 pmol/kg/min for 30 min), plasma aldosterone concentrations increased significantly (1,306 +/- 80 pg/ml). This study indicates that (Pro)3 AII and (Sar)5 AII may prove to be useful tools to elucidate biological actions of AII.

1-Sarcosine-8-Isoleucine Angiotensin II↗

Regulation of angiotensin II in rat adrenal gland.

Levels of angiotensin II immunoreactivity in the rat adrenal gland are over one hundredfold higher than those in plasma. It is unclear, however, whether the major source of adrenal angiotensin II immunoreactivity is intracellular synthesis by a local renin-angiotensin system, uptake by angiotensin II receptors, or both. Our studies show that angiotensin II immunoreactivity in the adrenal gland is predominantly attributable to angiotensin II (greater than 75%). Angiotensin III (16%) and other angiotensin II fragments are also present. The majority of angiotensin II immunoreactivity (73%), renin activity (73%), and angiotensin II receptor binding activity (66%) in the adrenal gland is located in the capsular glomerulosa cell layers. Dehydration produced by 2% NaCl imbibition decreased these activities in the capsular-glomerulosa. In the fasciculata-medullary regions of the adrenal gland, dehydration decreased renin activity but not angiotensin II immunoreactivity or angiotensin II receptor binding activity. Combined data from control and dehydrated rats showed a close correlation of the capsular-glomerulosa angiotensin II immunoreactivity with angiotensin II receptor binding activity (r = 0.94, p less than 0.001) and a weaker, nonsignificant correlation with renin activity (r = 0.66, p less than 0.1). In the fasciculata-medullary cell layers, no significant correlations were found between angiotensin II immunoreactivity and either renin or angiotensin II receptor binding activity. These data demonstrate that functionally distinct layers of the rat adrenal gland differentially regulate angiotensin II receptors and the renin-angiotensin system.(ABSTRACT TRUNCATED AT 250 WORDS)

Adrenal Glands↗

Characterization of receptors for angiotensin-induced drinking and blood pressure responses in conscious rats using angiotensin analogs extended at the N-terminal.

Angiotensin II analogs with N-terminal extensions were synthesized to examine their effects on the brain and vascular angiotensin II (Ang II) receptors of the rat. Ang II, Crinia-Ang II, Thr.Ala.Gly-Ang II and Val. Ser.Leu.Thr.Ala.Gly-Ang II were all found to elicit drinking and raise blood pressure when given into the cerebrospinal fluid (CSF), and elevate blood pressure when given intravenously. When given intracerebroventricularly, the order of potency of the peptides in eliciting blood pressure and drinking responses was: Ang II (100%) = Crinia-Ang II (100%) greater than Thr.Ala.Gly-Ang II (10% blood pressure, 15% drinking) greater than Val.Ser.Leu.Thr.Ala.Gly-Ang II (5%). The order of pressor potency did not change when the Ang II analogs were given intravenously, but compared with the central effects, there was a marked difference in the relative potencies of the peptides. The potencies were: Ang II (100%) greater than Crinia-Ang II (80%) greater than Thr.Ala.Gly-Ang II (60%) greater than Val.Ser.Leu.Thr.Ala.Gly-Ang II (20%). Blood pressure and drinking responses produced by all of these peptides were markedly attenuated by the Ang II receptor antagonist, [Sar1,Thr8] Ang II. These findings indicate a difference in the Ang II receptors present in the brain and the periphery. However, no differences were noted between the central Ang II receptors mediating the pressor responses and the central Ang II receptors stimulating drinking behavior.

Angiotensins↗

A cardiac specific analog of angiotensin I potentiated by converting enzyme inhibition.

[1-Sarcosine, 7-Alanine] angiotensin I [( 1-Sar, 7-Ala] AI) and closely related analogs were tested for inotropic activity in the isolated cat heart, and for pressor activity in the intact conscious sheep both before and during converting enzyme inhibition (CEI). [1-Sar, 7-Ala] AI exhibited potent inotropic activity but was only weakly pressor. [1-Sar] AI, [1-Sar, 5-Val] AI, [1-Sar, 7-alpha MeAla] AI [1-Sar, 5-Val, 7-NMeAla] AI and [1-Sar, 5-Val, 7-Sar] were all potent agonists in both preparations. The action of [1-Sar, 7-Ala] AI was potentiated by CEI in both the isolated heart and the intact sheep. The activity of the remaining analogs was either partially or completely blocked by CEI. The activity of all analogs was inhibited by AII receptor blockade. These data indicate that the nature of the substitution in position 7 determines the affinity of the analog for converting enzyme. The [7-Ala] substitution appears to decrease the effect of the analog upon vascular receptors.

Angiotensin I↗

Identification and synthesis of [1-asparagine, 5-valine, 9-glycine] angiotensin I produced from plasma of American eel Anguilla rostrata.

The major peptide produced by incubation of American eel (Anguilla rostrata) plasma with the eel kidney extract was identified as [1-asparagine, 5-valine, 9-glycine] angiotensin I (I). Two minor peptides were also identified as [1-aspartic acid, 5-valine, 9-glycine] angiotensin I (II) and [5-valine, 9-glycine] angiotensin I-(3-10)-octapeptide (III). These structures were further confirmed by comparison of these peptides on high-pressure liquid chromatography (HPLC) and high-performance thin-layer chromatography (HPTLC) with the synthetic peptides and the tryptic and chymotryptic digests of the synthetic and natural angiotensins. In the rat pressor bioassays, the synthetic decapeptides I and II possessed 45.4 and 52.2%, respectively, of the pressor activity of [1-aspartic acid, 5-isoleucine] angiotensin II. The pressor activity of I and II was blocked with the converting enzyme inhibitor captopril. Study of the conversion of asparaginyl decapeptide into aspartyl decapeptide in eel plasma indicated that the presence of thimerosal (sodium ethylmercurithiosalicylate) in the incubation mixture inhibited the conversion of I into II. These results suggest that (a) I is the natural form of angiotensin inherent in the American eel while II may be formed during incubation with plasma; (b) eel plasma contains an enzyme which is capable of converting asparaginyl angiotensins into aspartyl angiotensins; and (c) pressor activity of I and II is due to their conversion into the corresponding octapeptides. In a previous work when thimerosal was not included in the incubation mixture, the major peptide produced by incubation of Japanese eel (Anguilla japonica) plasma with its kidney extract was identified as II. (Y. Hasegawa, T. Nakajima, and H. Sokabe, 1983, Biomed. Res. 4, 417-420).

Angiotensin I↗

Studies on angiotensin II and analogs: impact of substitution in position 8 on conformation and activity.

Affinity, residual agonist activity, and inhibitor properties of a series of angiotensin II analogs modified at the COOH-terminal position (X8-substituted peptides) have been probed for structure/conformation-biological activity relationships. The results emphasize (i) the large impact that subtle conformational variations caused by structural alterations in the position 8 side chain have on biological properties, (ii) the implication of the COOH-terminal carboxyl group in both affinity and intrinsic activity, and (iii) the influence that the bulkiness of the side chain in position 8 of antagonists has on the local conformation at the COOH terminus and thus on the inhibitory properties. In the hormone, the phenylalanine-8 ring is required for its steric influence and aromaticity to ensure a fully active conformation at the COOH terminus. Especially, correct orientation of the position 8 carboxyl group relative to the phenyl group of the phenylalanine residue may be necessary for agonistic activation of the angiotensin receptor complex. Replacement of the aromatic ring on the COOH-terminal residue by a nonaromatic group leads to incorrect orientation of the carboxyl group and causes the appearance of antagonist properties. Although the steric effects of the side chain can be modulated by specific interaction of its chemical groups (if any) with the peptide backbone, we found a good correlation between the size of the side chain-e.g., the steric parameter V gamma (the van der Waals volume consisting of the C alpha, C beta, and C gamma atoms), the conformational properties in the backbone (3J HC alpha-NH), and the binding capacities in all compounds tested.

Angiotensin II↗

Efficacy of octa- and heptapeptide antagonists of angiotensin II as inhibitors of angiotensin III binding in the rat adrenal glomerulosa.

Angiotensin III (Ang III) is a carboxy-terminal 7-amino acid analog of angiotensin II (Ang II) with similar receptor binding affinity and biological activity in adrenal glomerulosa. Specific competitive antagonists have been synthesized for both compounds, and structure-activity studies have demonstrated that Ang II (octapeptide) antagonists compete better for Ang II receptors in adrenal glomerulosa than do Ang III (heptapeptide) antagonists. These differences were observed in spite of only 1 amino acid difference in chain length of antagonist analogs. These earlier observations by our group provided support for the current hypothesis that Ang III binding would be preferentially inhibited by Ang III antagonists compared to Ang II antagonists. To accomplish these studies, we used [125I]Ang III and [125I]Ang II as ligands and 5 pairs of heptapeptide and octapeptide antagonists with identical substituent amino acids in the carboxy-terminal position. [Sar1,Ile8]- and des Asp1 [Ile8]Ang II did not differ in potency as antagonists of Ang II binding, but with 4 other pairs of antagonists, the octapeptide antagonists were more potent than the corresponding hepatapeptide antagonist. Six of 10 antagonists exhibited similar potencies as antagonists of equimolar concentrations of Ang II and Ang III. One heptapeptide antagonist was twice as potent against Ang III, and 3 octapeptide antagonists were more potent against Ang II. In general, the order of potencies of the 10 antagonists as inhibitors of Ang III binding was linearly related to their potencies against Ang II. Hence, our hypothesis of preferential activity of Ang III antagonists (compared to Ang II antagonists) as inhibitors of Ang III binding to adrenal glomerulosa was not borne out by the present studies. When this observation was combined with the finding of similar receptor densities of Ang III and Ang II receptors, we concluded that Ang III and Ang II probably bind to the same receptor site in the adrenal glomerulosa.

Adrenal Glands↗

Central actions of circulating angiotensin II on the sympathetic nervous system and blood pressure control.

The effects of intravertebral artery infusions of [Sar1, Ile8] and [Sar1, Thr8] angiotensin II on the central nervous system were studied in furosemide-treated dogs anesthetized with alpha-chloralose. Acute administration of furosemide led to a significant increase in plasma renin activity, plasma noradrenaline levels and heart rate, and also to a slight rise of blood pressure. In the furosemide-treated dogs, intravertebral artery infusion of either angiotensin II antagonist (250 ng/Kg/min, for 30 min) suppressed the furosemide-induced increases in plasma noradrenaline, heart rate and arterial blood pressure. The effects of [Sar1, Thr8] angiotensin II on the last two parameters were more pronounced than those of [Sar1, Ile8] angiotensin II. Intravenous infusion of the same dose of each antagonist had little influence on the furosemide-induced increases in arterial blood pressure, heart rate and plasma noradrenaline levels. These results suggest that the central actions of angiotensin II contribute to the regulation of blood pressure through the sympathetic nervous system.

1-Sarcosine-8-Isoleucine Angiotensin II↗

Idiopathic hyperaldosteronism. A possible role for aldosterone-stimulating factor.

To test the hypothesis that idiopathic hyperaldosteronism is secondary to increased adrenal stimulation by aldosterone-stimulating factor, we measured the latter in seven patients with idiopathic hyperaldosteronism and in four patients who had undergone surgical removal of an aldosterone-producing adenoma. In the patients with hyperaldosteronism, plasma aldosterone concentrations (mean +/- 1 S.E.) were 38 +/- 10 and 78 +/- 19 ng per deciliter in the supine and upright position, respectively (P less than 0.01). Supine plasma aldosterone-stimulating factor was 81 +/- 5 ng per deciliter in 15 normal subjects and 185 +/- 10 (P less than 0.01) in the patients with idiopathic hyperaldosteronism. After removal of an aldosterone-producing adenoma, plasma aldosterone-stimulating factor was normal. The supine value in each patient with idiopathic hyperaldosteronism was above the normal range (61 to 91 ng per deciliter) and increased to 290 +/- 59 ng per deciliter after four hours of upright posture. Twenty-four hour urinary excretion of aldosterone-stimulating factor was 424 +/- 35 ng (normal, 145 +/- 3; P less than 0.01) by affinity chromatography and high-pressure liquid chromatography, and it was not suppressed after two days of treatment with dexamethasone (0.5 mg orally every six hours). At the end of 48 hours, plasma concentrations were 248 +/- 40 ng per deciliter. Plasma cortisol and ACTH concentrations were under 2 micrograms per deciliter and under 40 pg per milliliter, respectively. We conclude that increased secretion of aldosterone-stimulating factor may be the cause of idiopathic hyperaldosteronism.

Adenoma↗

Biochemical and immunological properties of dog brain isorenin.

A neutral protease with angiotensin I-forming activity which could readily be separated from acid proteases and plasma and renal renin was obtained from extracts of dog brain. This enzyme has an apparent mol wt of 40,000 by Sephadex chromatography. On chromatofocusing, it displays isoelectric points of 7.92, 7.73, and 7.42, and thus, it is a basic protein, in contrast to either renal or plasma renin which are acidic proteins. This brain enzyme does not react with antibodies specific for dog kidney renin. Since the brain enzyme forms angiotensin I from renin substrate at neutral pH, yet can be separated from and has isoelectric points different from renal renin, it is an isoenzyme of the kidney counterpart. The majority of the renin-like activity of dog brain is due to this isoenzyme.

Animals↗

Steroidogenic properties of a new aldosterone-stimulating factor: interaction with angiotensin II and adrenocorticotropin during variations of dietary sodium.

We investigated the in vitro steroidogenic activity of a new aldosterone-stimulating factor (ASF). Aldosterone responses of adrenal zona glomerulosa cells to ASF were assessed in response to variations in sodium intake and during incubation with either ACTH or angiotensin II (AII). Studies were performed in collagenase-dispersed adrenal capsular cells harvested from male New Zealand White rabbits that were on either regular or low sodium diets for 7-10 days. ASF, AII, and ACTH produced dose-dependent increases in aldosterone production. In cells from sodium-replete rabbits, the concentrations required to elicit the half-maximum response (ED50) were 2.2 +/- 0.3 (+/-SE) X 10(-11), 7.2 +/- 1.1 X 10(-10), and 3.4 +/- 0.5 X 10(-8) M for ACTH, AII, and ASF, respectively. Sodium depletion increased maximal responses but not sensitivity to AII and ACTH; responses to ASF were essentially unchanged. Large concentrations of ASF (10(-7) M) potentiated AII-induced aldosterone responses of adrenal capsular cells from sodium-depleted, but not sodium-replete, rabbits. In marked contrast, similar concentrations of ASF inhibited ACTH-induced aldosterone production of adrenal capsular cells from both sodium-replete and sodium-depleted rabbits. It is concluded that ASF has its own intrinsic steroidogenic activity. Furthermore, although large concentrations of ASF potentiate AII responses in sodium-depleted animals, ASF inhibits the aldosterone-stimulating activity of ACTH in both sodium-replete and sodium-depleted animals.

Adrenocorticotropic Hormone↗