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Biomedical subjects

M Manning

Publications and source records attributed to M Manning.

At least 163 records · Page 9Linked to original sources

Natriuretic effect of [7-glycine]oxytocin in the presence of diuretic agents in conscious rats.

Substitution of the amino acid glycine for 7-proline in oxytocin produces an analog, [7-glycine]oxygocin, having markedly reduced antidiuretic and vasopressor activities but retaining considerable natriuretic activity. We administered this analog alone and with distally acting diuretic agents to test the hypothesis that oxytocin and its analogs decrease proximal tubular fluid reabsorption. If [7-glycine]oxytocin shares a common mechanism of action with any of these agents, the response to combined treatment should be less than additive, otherwise, the saluretic effect of both agents should be maintained. Subcutaneous administration of [7-glycine]oxytocin, 10 micrograms/kg, to conscious fluid-loaded rats produced a natriuresis, diuresis and kaliuresis. Hydrochlorothiazide and [7-glycine]oxytocin administered together to the same rats had a greater than additive effect on urine volume and sodium excretion. Furosemide and [7-glycine]oxytocin had an additive effect on urine volume, sodium and chloride excretion. Triamterene blocked the kaliuresis caused by [7-glycine]oxytocin, although the two agents administered together had a greater than additive effect on sodium excretion. These results indicate that [7-glycine]oxytocin does not share a common natriuretic mechanism or site of action with the above diuretics. Our data are consistent with the hypothesis that oxytocin and its analogs may increase urinary sodium excretion by decreasing net proximal tubular fluid reabsorption.

Animals↗

Synthetic antagonists of in vivo responses by the rat uterus to oxytocin.

As part of a program in which we are attempting to synthesize in vivo antagonists of oxytocin, the following four analogues were synthesized and tested for antagonistic activities in rat uterus and rat vasopressor assay systems: [-(beta-mercapto-beta,beta-diethylpropionic acid), 4-threonine]oxytocin (1, dEt2TOT), [1-beta-mercapto-beta,beta-cyclopenta-methylenepropionic acid), 4-threonine]oxytocin [2, d(CH2)5TOT], [1-deaminopenicillamine,2-O-methyltyrosine]oxytocin [3, dPTyr(Me)OT], and [1-deaminopenicillamine,2-O-methyltyrosine,4-threonine]oxytocin [4, dPTyr(Me)TOT]. The required protected intermediates were synthesized by a combination of solid-phase peptide synthesis and by individual 8 + 1 couplings in solution. All four analogues antagonize the actions of oxytocin on the rat uterus (a) in the absence of Mg2+, (b) in the presence of 0.5 mM Mg2+, and (c) in situ. They exhibit, respectively, the following pA2 values in each of the assay systems a-c: (1) (a) 7.72 +/- 0.11, (b) 7.36 +/- 0.09, (c) 6.47 +/- 0.11; (2) (a) 7.91 +/- 0.13, (b) 7.81 +/- 0.09, (c) 6.94 +/- 0.11; (3) (a) 7.76 +/- 0.12, (b) 7.80 +/- 0.12, (c) 6.86 +/- 0.12; (4) (a) 7.64 +/- 0.14, (b) 7.79 +/- 0.09, (c) 6.84 +/- 0.10. They have the following antivasopressor pA2 values: (1) 6.30 +/- 0.13; (2) 5.86 +/- 0.03; (3) 7.59 +/- 0.05; (4) 7.32 +/- 0.04. Compounds 2-4 are among the most potent in vivo antagonists of oxytocin reported to date.

Animals↗

[1-Deaminopenicillamine,4-threonine]oxytocin, a potent inhibitor of oxytocin.

[1-Deaminopenicillamine,4-threonine]oxytocin was prepared in duplicate from S-benzyl-3-mercapto-3,3-dimethylpropanoyl-Tyr(Bzl)-Ile-Thr(Bzl)-Asn-Cys(Bzl)-Pro-Leu-Gly-NH2 (I) by removal of the Bzl-protecting groups with Na-NH3, followed by cyclization of the resulting disulfhydryl compound with K3Fo(CN)6. The analogue was purified by desalting on Sephadex G-15 in 50% acetic acid and gel filtration of Sephadex G-15. The protected peptide I was synthesized (a) by the solid-phase method and (b) by a combination of solid-phase synthesis and an [8 + 1] coupling in solution. The analogue has no detectable agonist activity in rat vasopressor or isolated rat uterus assays. It has an antivasopressor pA2 of 6.67 +/- 0.09. It is a potent inhibitor of the in vitro oxytocic response to oxytocin and has a pA2 value of 7.46 +/- 0.04. (Material from the repeat synthesis has a pA2 value of 7.59 +/- 0.08.) Thus the substitution of threonine for glutamine in the antagonist [1-deaminopenicilliamine]oxytocin (pA2, 7.14 +/- 0.05) has effected a twofold increase in inhibitory potency. [1-deaminopenicillamine,4-threonine]oxytocin is one of the most potent inhibitors of oxytocin known to date.

Animals↗

[1-(beta-mercapto-beta,beta-cyclopentamethylenepropionic acid),4-valine,-8-D-arginine]vasopressin, a potent and selective inhibitor of the vasopressor response to arginine-vasopressin.

As part of a program in which we are attempting the design and synthesis of an antagonist of the antidiuretic response to arginine-vasopressin (AVP) [1-(beta-mercapto-beta,beta-cyclopentamethylenepropionic acid),4-valine,8-D-arginine]vasopressin [d(CH2)5VDAVP] was synthesized and assayed for antidiuretic, vasopressor, and oxytocic activities. The required protected intermediate was synthesized by a combination of solid-phase synthesis and an [8 + 1] coupling in solution. d(CH2)5VDAVP has an antidiuretic potency of 0.10 +/- 0.02 unit/mg, less than 1/10000 that of its parent [deamino,4-valine,8-D-arginine]vasopressin (dVDAVP). d(CH2)5VDAVP is a specific antagonist of the vasopressor responses to AVP. It has an antivasopressor pA2 value of 7.68 +/- 0.05 when tested against AVP. It is also an antagonist of the in vitro oxytocic response to oxytocin (pA2 value = 6.62 +/- 0.07). With its negligible antidiuretic activity, absence of oxytocic activity, and its potent and specific ability to antagonize the vasopressor effects of AVP, d(CH2)5VDAVP is one of the most potent and selective vasopressor antagonists reported to date. It should thus be a useful tool with which to probe the possible role(s) that AVP may play in cardiovascular regulation under normal and pathological conditions.

Animals↗

Design of potent antagonists of the vasopressor response to arginine-vasopressin.

As part of a program in which we are attempting to design and synthesize antagonists of the vasopressor response to arginine-vasopressin (AVP), [1-deaminopenicillamine]arginine-vasopressin (dPAVP), [2-O-methyl)tyrosine]-arginine-vasopressin [Tyr(Me)AVP], and [1-deaminopenicillamine,2-(O-methyl)tyrosine]arginine-vasopressin [dPTyr(Me)AVP] were synthesized by the solid-phase method and assayed for vasopressor, antidiuretic, and oxytocic activities. Tyr(Me)AVP has a vasopressor potency of 9.7 +/- 0.5 units/mg and an antidiuretic potency of 386 +/- 36 units/mg. These values are 2.5 and 120%, respectively, of the corresponding potencies of AVP. The analogue is an antagonist of the in vitro response to oxytocin (pA2 = 7.44 +/- 0.12). dPAVP has an antivasopressor pA2 of 7.45 +/- 0.11. Its antidiuretic potency is 42.2 +/- 2 units/mg, 2.5% that of its parent, 1-[deamino]arginine-vasopressin (dAVP). It is an antagonist of the in vitro response to oxytocin (pA2 value = 6.93 +/- 0.10). dPTyr(Me)AVP has an antivasopressor pA2 of 7.96 +/- 0.05 and an antidiuretic potency of 3.5 +/- 0.5 units/mg. It is also an antagonist of the in vitro oxytocic response to oxytocin (pA2 value = 7.61 +/- 0.14). It is thus one of the most potent vasopressor antagonists reported to date.

Animals↗

Synthesis and some pharmacological properties of [4-threonine, 7-glycine]oxytocin, [1-(L-2-hydroxy-3-mercaptopropanoic acid), 4-threonine, 7-glycine]oxytocin (hydroxy[Thr4, Gly7]oxytocin), and [7-Glycine]oxytocin, peptides with high oxytocic-antidiuretic selectivity.

[4-Threonine, 7-glycine]oxytocin and [1-(L-2-hydroxy-3-mercaptopropanoic acid), 4-threonine, 7-glycine]oxytocin (hydroxy[Thr4, Gly7]oxytocin) were synthesized by a combination of solid-phase and classical methods of peptide synthesis. A protected octapeptide was synthesized by the solid-phase method and following ammonolysis and purification 1 + 8 couplings in solution were employed to furnish the required key nonapeptide and acyl octapeptide intermediates, respectively. [7-Glycine]oxytocin was prepared from a sample of the protected nonapeptide intermediate used in the original synthesis of this peptide. [7-Glycine]oxytocin has an oxytocic potency (O) of 93 +/- 4 units/mg and an antidiuretic potency (A) of 0.0056 +/- 0.0003 units/mg. It has an O/A ratio of 16 000. [4-Threonine, 7-glycine]oxytocin has an oxytocic potency of 166 +/- 4 units/mg and an antidiuretic potency of 0.002 +/- 0.0004 units/mg. Its O/A ratio is 83 000. Threonine substitution has thus brought about a substantial enhancement in oxytocic activity and a fivefold enhancement in O/A selectivity. Hydroxy [Thr4, Gly7]oxytocin has an oxytocic potency of 218 +/- 8 units/mg and antidiuretic potency of 0.0040 +/- 0.0005 units/mg. Its O/A ratio is thus 54 500. All three 7-glycine-substituted analogues exhibit a marked sensitivity to Mg2+ on the rat uterus assay ststem and in the presence of 0.5 mM Mg2+ had oxytocic potencies in the range of 900-1000 units/mg. Should these peptides exhibit enhanced oxytocic selectivity in humans, they might offer a greater margin of safety than oxytocin in those clinical stiuations in which the latter is currently employed.

Amino Acids, Sulfur↗

[1-(L-2-hydroxy-3-mercaptopropanoic acid)] analogues of arginine-vasopressin, [8-D-arginine]vasopressin, and [4-valine,8-D-arginine]vasopressin.

[1-(L-2-Hdroxy-3-mercaptopropanic acid)]arginine-vasopressin (hydroxy-AVP), [1-(L-2-hydroxy-3-mercaptopropanoic acid),8-D-arginine]vasopressin (hydroxy-DAVP), and [1-(L-2-hydroxy-3-mercaptopropanoic acid),4-valine,8-D-arginine]vasopressin (hydroxy-VDAVP) were synthesized by a combination of the solid-phase and solution methods of peptide synthesis. Protected octapeptides synthesized by the solid-phase method were further acylated by 1 + 8 couplings in solution to furnish the key intermediates. Hydroxy-AVP has antidiuretic potency of 470 units/mg and activity in the rat vasopressor assay of 550 units/mg, representing a small enhancement of activity over that of arginine-vasopressin (AVP) in each case. Hydroxy-DAVP and hydroxy-VDAVP have essentially the same high antidiuretic activity (900 units/mg) and very low vasopressor potencies (0.9 and less than 0.02 units/mg, respectively). Hydroxy-AVP, hydroxy-DAVP, and hydroxy-VDAVP thus have antidiuretic-pressor selectivity (A/P) of 1, 1000, and greater than 45 000, respectively. These data are compared with those of other vasopressin analogues. Hydroxy-VDAVP is a highly specific antidiuretic peptids and may be useful in pharmacological studies of antidiuresis.

Arginine Vasopressin↗

[1-deaminopenicillamine,4-valine]-8-D-arginine-vasopressin, a highly potent inhibitor of the vasopressor response to arginine-vasopressin.

In attempting to design an antagonist of the antidiuretic response to arginine-vasopressin (AVP) [1-deaminopenicillamine,4-valine,8-D-arginine]vasopressin (dPVDAVP) was synthesized by the solid-phase method and assayed for antidiuretic, vasopressor, and oxytocic activities. dPVDAVP has an antidiuretic potency of 123 +/- 22 units/mg, one-tenth that of its parent [deamino,4-valine,8-D-arginine]vasopressin (dVDAVP). Like dVDAVP its antidiuretic effect in conscious diabetes insipidus rats is greatly prolonged when compared to AVP. dPVDAVP causes a prolonged inhibition of vasopressor responses to AVP but not to norepinephrine or angiotensin II. It has an antivasopressor pA2 value of 7.82 +/- 0.05 when tested against AVP. Thus the penicillamine substitution at position 1 in dVDAVP increased its antivasopressor activity sixfold (dVDAVP has a pA2 value of 7.03 +/- 0.11). dPVDAVP is thus the most potent vasopressor antagonist yet reported. dPVDAVP was also found to be a potent inhibitor of the in vitro oxytocic response to oxytocin (pA2 value = 7.23 +/- 0.04). dPVDAVP with its potent and specific ability to antagonize the vasopressor effects of AVP should be a useful pharmacological tool with which to explore the possible participation of AVP's potent vasoconstrictor properties in cardiovascular regulation in physiological and pathological states.

Animals↗

Design of neurohypophyseal peptides that exhibit selective agonistic and antagonistic properties.

Within the spectrum of the characteristic pharmacological activities (oxytocic (O), milk-ejecting (ME), antidiuretic (A), pressor (P) associated with the known natural and synthetic analogs of oxytocin and vasopressin it is possible to discern patterns of selectivity of these types: 1) interpeptide-like (a) O/A, (b) O/P; 2) intraoxytocin-like (a) O/ME; (b) ME/O; 3) intravasopressinlike (a) A/P, (b) P/A. Consideration of structural modifications of oxytocin or vasopressin, which individually or in combination give rise to peptides possessing enhanced selectivity of a given type, can in some cases provide a rational basis for the design of peptides with even greater selectivity. [1-Deamino-4-valine-8-D-arginine]vasopressin, the most highly specific antidiuretic peptide known to date, was designed in this fashion. By contrast, intraoxytocin-like selectivity, is manifested to only a minor degree in all peptides studied to date. Enhanced interpeptide-like selectivity of the type 1a (O/A; O/P) is readily attainable by specific single substitutions at positions 4 or 7 in oxtocin. Substitution of threonine in the 4 position of the oxytocic antagonist [1-deaminopenicillamine]oxytocin brought about a threefold enhancement in oxytocic inhibitory activity. Thus [1-deaminopenicillamine-4-threonine]oxytocin (dPTOT) is the most potent antagonist of the in vitro oxytocic response to oxytocin known to date. Thus analysis of the pharmacological data from over 300 analogs of oxytocin and vasopressin allows the delineation of those structural modifications that can optimize selectivities. The potential and limitations of this approach for the design of peptides possessing desired agonistic or antagonistic selectivity for potential clinical use and for studies on oxytocin and vasopressin receptors is discussed.

Animals↗