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A Parini

Publications and source records attributed to A Parini.

At least 37 records · Page 2Linked to original sources

Effect of imidazolines on Na+ transport and intracellular pH in renal proximal tubule cells.

Recently, we characterized an imidazoline-guanidinium receptive site (IGRS) in the renal proximal tubule of rabbit kidney. Although recognized by a series of imidazoline and guanidinium alpha-2 adrenergic compounds, IGRS is insensitive to catecholamines and can be physically separated from alpha-2 adrenergic receptors after solubilization. In the present study, we investigated the effect of imidazoline derivatives on 22Na+ uptake and intracellular pH in isolated cells from rabbit renal proximal tubule. After 5 min of preincubation, idazoxan inhibited the total 22Na+ influx (-30%) in a dose-dependent manner, with a maximum effect at 10(-5) M. The effect of idazoxan was not competitive as shown by the decrease of the maximal velocity of 22Na+ entry (control: 3.80 +/- 0.42; idazoxan 10(-5) M: 3.23 +/- 0.33 nmol/30 s per mg protein, P less than 0.01). A series of imidazoline derivatives inhibited 22Na+ entry with an order of potency similar to that previously found for inhibition of [3H]idazoxan binding to IGRS (cirazoline greater than idazoxan greater than UK 14304 greater than rilmenidine much greater than cimetidine). The inhibition of 22Na+ uptake by these compounds does not appear to be related to interaction with alpha-adrenergic receptors since it was observed in the presence of saturating concentrations of the adrenergic antagonists rauwolscine (alpha-2) or prazosin (alpha-1). When tested on the regulation of intracellular pH by fluorimetric techniques, 10(-5) M cirazoline or idazoxan inhibited by 20% the velocity of the sodium-dependent H+ efflux in acidified cells (P less than 0.02). The concomitant inhibition of 22Na+ entry and of cell realkalinization suggests that imidazoline derivatives inhibit Na+/H(+)-exchanger. This effect could be mediated via the renal IGRS and intracellular second messengers that are not yet known.

Amiloride

Imidazoline-guanidinium receptive site in renal proximal tubule: asymmetric distribution, regulation by cations and interaction with an endogenous clonidine displacing substance.

In the present report we have used [3H]idazoxan to characterize the rabbit renal imidazoline preferring site by defining its plasmalemma distribution, its regulation by cations and the type of interaction with the clonidine displacing substance (CDS), a putative endogenous ligand for the imidazoline receptor. The density of [3H]idazoxan binding sites was 12-fold higher in purified basolateral membranes than in brush-border membranes (maximal binding activity, 566 +/- 118 vs. 46 +/- 2 fmol/mg of protein). In basolateral membranes, [3H]idazoxan binding was inhibited not only by imidazoline compounds but also by guanidinium analogs such as guanabenz, amiloride, 5-(M-ethyl-N-isopropyl)amiloride and phenamylamiloride. Amiloride had no effect on the dissociation rate of [3H]idazoxan, suggesting a direct interaction of this molecule with the ligand binding site. [3H]Idazoxan binding was 80% inhibited by 150 mM K+ or Rb+. The effect of K+ appeared to occur through the interaction with an allosteric site in as much as both the apparent dissociation constant and the dissociation rate of [3H]idazoxan were increased in the presence of 75 mM K+. CDS inhibited [3H]idazoxan binding with a half-maximal effective concentration of 2 U/250 microliters. The competitive nature of CDS effect was indicated by the increase in the apparent dissociation constant of [3H]idazoxan (Kd from 3 +/- 0.3 to 8.5 +/- 0.2 nM, P less than .01) in the presence of CDS. In conclusion, our findings showed that the imidazoline-guanidinium receptive site is located mainly in the basolateral side of the tubular cell, recognizes CDS and is regulated by K+.(ABSTRACT TRUNCATED AT 250 WORDS)

Amiloride

Characterization of an imidazoline/guanidinium receptive site distinct from the alpha 2-adrenergic receptor.

alpha 2-Adrenergic receptors recognize a number of molecules with diverse chemical structures, including the yohimban diastereoisomers yohimbine and rauwolscine, catecholamines, guanidinium analogs, and imidazolines, such as clonidine. The affinity of the receptor protein for some of these ligands can vary by 10-100-fold among various tissues and species, suggesting a heterogeneous class of binding sites. Certain cellular effects elicited by the compounds possessing an imidazoline or guanidinium moiety may actually be mediated by a membrane receptor distinct from the alpha 2-adrenergic receptor. To determine whether this imidazoline/guanidinium receptive site (IGRS) and the alpha 2-adrenergic receptor represent distinct proteins, we solubilized and partially characterized the two binding sites in rabbit kidney. This tissue expresses both alpha 2-adrenergic receptors and high affinity imidazoline/guanidinium binding sites, the latter which are rauwolscine-insensitive but can be identified with the benzodioxan [3H]idazoxan. The IGRS and alpha 2-adrenergic receptor in rabbit kidney exhibit distinct ligand recognition properties, which are maintained after solubilization and partial purification. In addition, the two receptors can be physically separated by heparin-agarose or lectin affinity chromatography indicating that the two binding sites are distinct entities. [3H]Idazoxan binding is trypsin-sensitive, indicating that the IGRS is a protein rather than a lipid component of the plasma membrane. [3H]Idazoxan binding is not inhibited by endogenous agonists for known neurotransmitter receptors. However, the IGRS does recognize clonidine-displacing substance, a small non-catechol compound isolated from calf brain, suggesting the existence of a previously uncharacterized hormonal/neurotransmitter receptor system.

Animals

Glycerol, sodium phosphate, and sodium chloride permit the solubilization and partial purification of rat hepatic alpha 1-receptors by 3-(3-cholamidylpropyl)-dimethylammonio-1-propanesulfonate.

CHAPS [3-(3-cholamidylpropyl)-dimethylammonio-1-propanesulfonate], a zwitterionic detergent, has been used to solubilize the rat hepatic alpha 1-adrenergic receptor. Although the use of this detergent alone permitted a poor receptor solubilization, the inclusion of sodium phosphate, sodium chloride, and glycerol to the medium allowed 30% of the binding activity observed in plasma membranes to be recovered. Binding of the selective alpha 1-adrenergic antagonist, [3H]prazosin, by the solubilized preparation was saturable and of high affinity. In addition, binding of the radioligand was inhibited by a variety of adrenergic agents with affinity, specificity, and stereoselectivity comparable to that observed in plasma membranes. The use of glycerol in the solubilization medium permitted recovery of the solubilized receptor in a stable form (T1/2 = 72 h at 4 degrees C). Sequential affinity and size-exclusion gel chromatography allowed a 1000-fold purification of the solubilized receptor. The Stokes' radius and the apparent molecular mass of the purified receptor-Chaps complex (48.4 A and 160,000 Da, respectively), determined by gel filtration chromatography, were similar to those previously obtained for the rat hepatic alpha 1-receptor purified after solubilization with the nonionic detergent digitonin. These data indicate that the combination of Chaps, sodium phosphate, sodium chloride, and glycerol permitted the solubilization and partial purification of hepatic alpha 1-receptor in an active and stable form. The use of this technique might be useful for the solubilization of other membrane-bound proteins by Chaps whose biophysical characteristics make it an ideal detergent for reconstitution experiments.

Animals

Different affinities of alpha 2-agonists for imidazoline and alpha 2-adrenergic receptors.

It has recently been shown that imidazoline alpha 2-adrenergic agonists, such as clonidine and UK 14,304, selectively bind to both alpha 2- and imidazoline receptors in basolateral membranes from rabbit renal proximal tubule. In order to define the relative affinity of three antihypertensive alpha 2-agonists for the two classes of receptors, we performed competition studies of imidazoline alpha 2-antagonist 3H-RX 781094 and nonimidazoline antagonist 3H-rauwolscine binding to basolateral membranes from rabbit proximal tubule. The order of potency for inhibition of radioligand binding to basolateral membranes was rilmenidine greater than clonidine greater than guanfacine and clonidine greater than guanfacine greater than rilmenidine for 3H-RX 781094 and 3H-rauwolscine binding, respectively. These data show that not only clonidine, but also rilmenidine and guanfacine, drugs usually used as specific alpha 2-agonists, bind to both alpha 2- and imidazoline receptors. The higher affinity of these molecules for one or the other class of receptors could explain their different capacity to induce hypotension and side effects.

Adrenergic alpha-Agonists

Alpha-adrenoceptor properties in rat strains sensitive or resistant to salt-induced hypertension.

Cerebral and renal alpha 2-adrenoceptors are implicated in the control of sympathetic activity and of sodium reabsorption respectively. In addition, sodium ions play an important role in the regulation of either alpha 2-adrenoceptor densities and affinities for adrenergic agonists. In the present study, alpha-adrenoceptor properties were investigated in genetically predetermined salt-sensitive and salt-resistant Dahl and Sabra rats. Cerebral alpha 2-adrenoceptor densities were higher in salt-resistant than in salt-sensitive Dahl and Sabra rats. In contrast, renal alpha 2-adrenoceptor density was higher in salt-sensitive than in salt-resistant rats. No difference in cerebral and renal alpha 1-adrenoceptor densities was observed between Dahl and Sabra substrains. Noradrenaline content in cerebral and renal cortex were also similar in both these rat substrains. Sodium ions markedly increased cerebral and renal high-affinity alpha 2-adrenoceptor densities in salt-sensitive but not in salt-resistant rats. Cerebral and renal alpha 1-adrenoceptor densities were unchanged in salt-sensitive and salt-resistant substrains of Dahl and Sabra rats. In addition, sodium ions reduced the affinity of adrenaline for renal alpha 2-adrenoceptors in salt-sensitive rats but not in salt-resistant rats. We can conclude that there exist genetically determined differences in the densities and properties of cerebral and renal alpha 2-adrenoceptors between salt-sensitive and salt-resistant rat strains. Abnormal densities of alpha 2-adrenoceptors may play a primary role in the role in the development of hypertension in salt-sensitive animals. These results also suggest an association between absence of sodium regulation of alpha 2-adrenoceptors and resistance to salt-induced hypertension. The absence of sodium regulation in salt-resistant rats may be linked either to a particular receptor conformation or to an abnormal structure of the receptor system. This property may represent a genetically-mediated change responsible for the resistance to the development of salt-induced hypertension.

Animals

Selective inhibition of adrenaline-induced human platelet aggregation by the structurally related Paf antagonist Ro 19-3704.

1. Two non-lipid antagonists of platelet-activating factor acether (Paf), BN 52021 and WEB 2086, at concentrations which completely blocked Paf-induced platelet aggregation, failed to interfere with aggregation by adrenaline. In contrast, Ro 19-3704, a structurally related antagonist of Paf, inhibited concentration-dependently aggregation induced by adrenaline or by the simultaneous addition of submaximal concentrations of adrenaline and Paf. Reversal of aggregation was obtained when Ro 19-3704 was added to the platelet suspension after adrenaline. 2. Ro 19-3704 was selective for Paf and adrenaline since it failed to interfere with platelet aggregation induced by arachidonic acid or ADP. CV-3988, an antagonist of Paf structurally similar to Ro 19-3704, also inhibited adrenaline-induced aggregation. However, a morpholine analogue (MA) of Paf, which has no anti-Paf activity, failed to interfere with the aggregation induced by adrenaline. This suggests that the effect of Ro 19-3704 and CV-3988 on adrenaline is not simply due to their lipid structure. 3. Experiments on plasma membrane preparations showed that Ro 19-3704 inhibited [3H]-yohimbine binding with an inhibition constant (Ki) of 7 +/- 3 microM. In contrast, BN 52021 and MA did not interfere with [3H]-yohimbine binding. Equilibrium binding experiments showed that Ro 19-3704 increased the apparent KD of [3H]-yohimbine binding from 2.02 +/- 0.15 to 7.3 +/- 0.4 nM. The Paf antagonist Ro 19-3704 interacts specifically with the alpha 2-adrenoceptor and may thus prevent the early steps involved in the mechanism of adrenaline-induced platelet activation.

5-Hydroxytryptophan

Adrenergic agonists and the Na+-K+-adenosine triphosphatase from rabbit proximal tubules and their basolateral membranes.

Several studies suggested that catecholamines modulate renal sodium and water excretion by direct stimulation of adrenergic receptors located on the renal proximal tubule. However, neither the mechanism nor the class of adrenoceptor involved in this effect have yet been established definitively. In the present study, we examined the effects of L-norepinephrine (NE) and selective alpha-1, alpha-2 and beta adrenergic agonists on monovalent cation transport and on Na+-K+-adenosine triphosphatase (ATPase) activity from homogenates, intact tubules and highly purified basolateral membranes prepared from superficial rabbit kidney cortex. Our results showed that neither NE nor specific alpha-1, alpha-2 and beta adrenergic agonists (10 microM) modified ouabain-sensitive uptake of 86Rb+ (a K+ analog) in intact proximal tubules. Similarly, it is demonstrated that NE and alpha and beta adrenergic agonists did not affect Na+-K+-ATPase activity from homogenates, intact tubules and basolateral membranes. The integrity of the alpha-2 adrenergic receptor system, the predominant adrenergic subtype in rabbit proximal tubule, was supported by the following findings: 1) maximal binding of [3H] rauwolscine was about 4-fold higher in basolateral membranes than in homogenates; 2) 5'-guanylimidodiphosphate induced a 27-fold increase in the Ki of NE for alpha-2 receptor in basolateral membranes; 3) NE (5 microM) inhibited by 35% parathyroid hormone-stimulated cyclic AMP production in intact tubules. In conclusion, these data fail to demonstrate that NE, as well as other adrenergic agonists, directly increases Na+-K+-ATPase in the rabbit proximal tubule. Further investigations are needed to clarify the interaction of catecholamines with the renal Na+K+ pump.

Animals

[Selectivity of alpha 2-adrenergic agonists for the imidazoline-guanidine and alpha 2-adrenergic receptors].

Imidazolines have been proposed as highly selective drugs for alpha 2-adrenergic receptors. However, we have recently showed that the imidazoline ligand 3H-RX 781094 (idazoxan) binds to both alpha 2-receptors and imidazoline guanidinium receptive substance (IGRS) in rabbit renal proximal tubule. Binding of 3H-RX 781094 to the purified basolateral membranes (15-fold enriched in Na-KATPase activity) was rapid (t 1/2 = 5 mn.) reversible (t 1/2) = 4 mn.), saturable and of high affinity. Scatchard analysis of equilibrium binding data showed that 3H-RX 781094 labels 566 +/- 118 fmol/mg of proteins of binding sites with an apparent dissociation constant (Kd) of 1.45 +/- 0.14 nM. On the other hand, the non imidazoline ligand 3H-rauwolscine binds only to the alpha 2-adrenergic receptors with a maximal density of 155 +/- 28 fmol/mg of protein and a Kd of 11.5 +/- 1.5 nM. In order to define the relative affinity of the alpha-2-agonists, clonidine, rilmenidine and guanfacine for the two classes of receptors, we performed competition studies of the alpha 2-antagonists 3H-RX 781094 (imidazoline) and 3H-rauwolscine (non imidazoline) binding to basolateral membranes from rabbit proximal tubule. The order of potency for inhibition of the two radioligand binding was rilmenidine greater than clonidine greater than guanfacine for 3H-RX 781094 and clonidine greater than guanfacine greater than rilmenidine for 3H-rauwolscine. Therefore, rilmenidine displayed a higher affinity for IGRS than for alpha 2 adrenergic receptors; on the other hand, clonidine and guanfacine preferentially interact with alpha 2 receptors.(ABSTRACT TRUNCATED AT 250 WORDS)

Adrenergic alpha-Agonists

[Interaction of rilmenidine with renal imidazoline-guanidine sites].

Several studies have suggested that clonidine, guanfacine and rilmenidine decrease systemic blood pressure by stimulating central alpha 2-adrenergic receptors. However, we have shown that these molecules interact not only with alpha 2-adrenergic but also a new type of "non catecholamine" receptor in rabbit and human renal proximal tubules. This receptor, which we have called the imidazoline-guanidium receptor site (IGRS) seems to be pharmacologically, biochemically and fractionally distinct from alpha 2-adrenergic receptors. In order to determine the relative affinity of rilmenidine for these two types of receptor, we studied its capacity to inhibit the liaison of (H3)-idazoxan, a ligand with a high affinity for the IGRS, and of (H3)-rauwolscine, a ligand selective for alpha 2-adrenergic receptors in the rabbit kidney. The results based on the apparent constants of inhibition (Ki) of the two radioligands [231 +/- 34 nM for (H3)-idazoxan and 2440 +/- 322 nM for (H3)-rauwolscine] showed that the selectivity of rilmenidine was 10 times greater for IGRS than for alpha 2-adrenergic receptors. This preferential activity on IGRS was confirmed by studies of the influx of Na22 into isolated renal proximal tubule cells of the rabbit. They showed that rilmenidine, in contrast to catecholamines, inhibited the transport of Na22 into the renal cells. In conclusion, the data from our studies shows that rilmenidine interacts with renal IGRS and inhibits cellular transport of sodium by a mechanism other than the stimulation of alpha 2-adrenergic receptors.(ABSTRACT TRUNCATED AT 250 WORDS)

Adrenergic alpha-Agonists

Noradrenaline content and adrenergic receptors in kidney and heart of the prehypertensive and hypertensive Lyon rat strain.

Sympathetic activity modulates the blood pressure in part by activation of cardiac and renal adrenergic receptors. Thus an alteration of tissue noradrenaline content and/or adrenergic receptors in heart and kidney might be involved in the pathogenesis of hypertension. In order to verify this possibility, we studied tissue noradrenaline content and alpha and beta adrenergic receptors in the heart and kidney of Lyon hypertensive (LH), normotensive (LN), and low-pressure (LL) rats. Density and affinity of receptors were determined using the specific radioligands [3H]-prazosin (alpha 1), [3H]-rauwolscine (alpha 2), and [3H]-dihydroalprenolol (beta) in prehypertensive (5-week-old) and hypertensive (21-week-old) rats. In the prehypertensive period, no differences concerning renal and cardiac noradrenaline content and adrenergic receptor densities and affinities were observed. In the hypertensive period, an age-related decrease of renal alpha 1 and beta receptors was observed in LN and LL (P less than 0.01) but not in LH rats. Consequently, at this time, density of renal alpha 1 and beta receptors was higher in LH than in LN and LL (P less than 0.01). In contrast, the density and affinity of renal alpha 2 and cardiac alpha 1 and beta receptors and tissue noradrenaline content were similar in the three rat strains. Because renal alpha 1 and beta receptors mediate various functions involved in the control of blood pressure such as tubular sodium reabsorption, renin secretion, and glomerular filtration, the different density of these receptors in LH rats might be involved in the development or maintenance of hypertension.

Aging

Alpha-adrenoceptors in Dahl hypertensive and normotensive rats: effect of sodium.

Sodium ions play an important role in vitro and in vivo in the regulation of alpha 2-adrenoceptors. The in vitro effect of sodium on cerebral and renal alpha-adrenoceptors was investigated in Dahl salt-sensitive and salt-resistant rats. Cerebral alpha 2-adrenoceptor densities were higher in Dahl salt-resistant rats. In contrast, the renal alpha 2-adrenoceptor density was higher in Dahl salt-sensitive than in Dahl salt-resistant rats. No difference in cerebral and renal alpha 1-adrenoceptor densities was observed between the two types of rat. Noradrenaline contents in the cerebral and renal cortex were also similar in these two rat substrains. An influx of sodium ions markedly increased cerebral and renal high-affinity alpha 2-adrenoceptor densities in Dahl salt-sensitive but not in Dahl salt-resistant rats. Under these conditions alpha 1-adrenoceptor densities remained unchanged. The absence of sodium regulation in Dahl salt-resistant rats may be linked either to a particular receptor conformation or to an abnormal structure of the alpha 2-adrenoceptor system. We conclude from the present study that there are marked differences in density and in the role of sodium regulation of cerebral and renal alpha 2-adrenoceptors from salt-sensitive and salt-resistant Dahl rats. These differences may play a primary role in the resistance or in the sensitivity of salt-induced hypertension.

Animals

Interaction of clonidine and rilmenidine with imidazoline-preferring receptors.

In the present study the imidazoline radioligand 3H-RX 781094 (idazoxan) was used to characterize the alpha 2-adrenergic receptors in basolateral membranes of rabbit proximal tubule. Scatchard analysis of equilibrium binding data showed that 3H-RX 781094 labels 566 +/- 118 fmol/mg protein of binding sites with an apparent dissociation constant (Kd) of 1.45 +/- 0.14 nmol/l. However, in competition studies, only 25% of the 3H-RX 781094 binding was inhibited by catecholamines and alpha 2-adrenergic compounds; the remaining 75% of specific binding was inhibited only by molecules having an imidazoline or oxazoline ring with the following order of potency: cirazoline greater than tolazoline greater than UK 14 304 greater than rilmenidine greater than clonidine. These data suggest that imidazoline compounds bind to both alpha 2-adrenergic receptors and to a 'non-adrenergic site' which might be defined as an imidazoline-preferring receptor. Based on these results, it is possible to hypothesize that imidazoline and oxazoline drugs, such as clonidine and rilmenidine, exert their hypotensive activity partly through the stimulation of imidazoline receptors.

Animals

[Hereditary resistance to salt-induced hypertension. What mechanisms?].

The Sabra hypertension resistant rats (SBN) have an outstanding ability to maintain normal blood pressure when exposed to procedures that ordinarily cause hypertension in normal rats. The following findings may be relevant to resistance to hypertension of these rats: 1) In SBN rats, cardiac norepinephrine content is not affected by DOCA-salt treatment. Since depletion of cardiac norepinephrine is an index of cardiac adrenergic nerve overactivity, the results suggest an attenuated cardiac sympathetic nerve activity in these rats. 2) In SBN rats, the sensitivity of the baroreflex control of the heart is markedly increased compared with other strains. Reduction of baro-receptor sensitivity by aortic-baroreceptor deafferentation renders them susceptible to DOCA-salt hypertension. The results suggest a strong relationship between baroreflex supersensitivity and resistance to hypertension in these rats. 3) The amount of alpha 2 adrenoreceptor densities in cerebral and renal cortical membranes of normal rats increased in vitro, in the presence of sodium and guanyl nucleotide (GTP). In SBN rats, the effect of sodium is markedly attenuated compared with SBH, while response to GTP is identical in the two strains. The demonstration of a similar pattern of response in the Dahl rats suggests that alpha 2 adrenoreceptor may be involved in the sensitivity or resistance to salt induced hypertension.

Animals

Evidence for imidazoline binding sites in basolateral membranes from rabbit kidney.

[3H]-RX 781094 and [3H]-rauwolscine, two potent alpha 2-adrenergic antagonists, were used to characterize alpha 2 receptor in basolateral membranes from rabbit kidney. However, the following findings suggest that the imidazoline [3H]-RX 781094 binds to an heterogeneous population of binding sites: 1) dissociation plot was biphasic with a fast and slow component, 2) in saturation experiments, [3H]-RX 781094 labels 3.5 more binding sites than [3H]-rauwolscine (p less than 0.02), 3) competition studies showed that molecules with imidazoline structure completely inhibited the [3H] RX 781094 binding; in contrast, only 25% of binding was affected by non-imidazoline alpha 2 adrenergic compounds. These results suggest that in basolateral membranes from rabbit kidney, [3H] RX781094 labels alpha 2 adrenergic and non-adrenergic receptors which might be imidazoline-preferring binding sites.

Adrenergic alpha-Antagonists

Selective modification of renal alpha 2-adrenergic receptors in Milan hypertensive rat strain.

Cerebral and renal alpha-adrenergic receptors play an important role in the control of blood pressure. We studied alpha-adrenergic receptors in the cerebral and renal cortex of Milan hypertensive strain (MHS) and normotensive strain (MNS) rats, a genetic model of spontaneous hypertension linked to a kidney abnormality. Binding of the selective alpha 1-adrenergic antagonist [3H]prazosin and the alpha 2-adrenergic antagonist [3H]rauwolscine was used for receptor studies in tissues of prehypertensive (24-day-old) and hypertensive (60-day-old) rats. In the cerebral cortex, no between-strain differences in alpha 1-adrenergic and alpha 2-adrenergic receptor density and affinity were observed in prehypertensive and hypertensive periods. The density of these receptors increased similarly with age in MHS and MNS rats. In the renal cortex, the differences between MHS and MNS rats concerned alpha 2-adrenergic receptors only. Compared with their age-matched normotensive controls, MHS rats showed 1) a lower affinity for the antagonist (p less than 0.05) in the prehypertensive period, 2) absence of the normal age-related increase in receptor density, and 3) a lower density of [3H]rauwolscine binding sites (p less than 0.001) in the hypertensive period. In this period, studies of competitive inhibition of [3H]rauwolscine binding showed that l-epinephrine bound to one class of sites in MHS rats (pseudo-Hill plot, 0.90) and to two classes in MNS rats (pseudo-Hill plot, 0.68). In addition, the lack of any guanylylimidodiphosphate effect on the l-epinephrine competition curve observed in MHS rats suggests the uncoupling of these receptors from the guanosine 5'-triphosphate binding protein.(ABSTRACT TRUNCATED AT 250 WORDS)

Age Factors

Structural properties of the alpha 1-adrenergic receptor: studies with membrane and purified receptor preparations.

The contribution of hydrophobic, ionic, and disulfide bonds in the alpha 1-adrenergic receptor structure was evaluated using rat hepatic plasma membrane and purified receptor preparations. In addition, the findings were compared with similar structural evaluations of the beta 2-adrenergic receptor purified from canine lung. Both the alpha 1- and beta 2-adrenergic receptors contain a disulfide bond critical for ligand binding. However, the disulfide bond in the beta-receptor structure is accessible to solvent, while the disulfide bond within the alpha-receptor structure is "masked" and inaccessible to solvent. Reduction of this disulfide bond requires initial denaturation of the alpha 1-receptor. Although the tertiary structures of both receptor proteins appear to be stabilized by strong hydrophobic interactions, differential sensitivities are observed with a variety of structural perturbants, including high concentrations of sodium chloride, guanidine hydrochloride, and ethylene glycol.

Animals