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Biomedical subjects

G Hoyer

Publications and source records attributed to G Hoyer.

10 recordsLinked to original sources

Changes in opioid receptor selectivity following processing of peptide E: effect on gut motility.

Peptide E is a mu-selective opioid peptide derived from proenkephalin A which contains [Met5]-enkephalin at the amino end and [Leu5]-enkephalin at the carboxyl end. Peptide E is further processed both centrally and peripherally to a [Leu5]-enkephalin-containing fragment which was investigated to determine if processing leads to alterations in receptor selectivity. Peptide E-(15-25) inhibited electrically stimulated contractions in both the mouse vas deferens, longitudinal muscle, myenteric (IC50 = 459 nmol/L), and guinea pig ileum (IC50 = 2630 nmol/L), indicating a sixfold delta-receptor selectivity. When administered intracerebroventricularly to mice, peptide E-(15-25) also produced potent analgesia which was completely antagonized by naloxone pretreatment, but the peptide had no effect on intestinal transit as measured by the radiochromium geometric center method. This is consistent with earlier findings that intracerebroventricular delta-opioid-selective agents are analgesic but do not inhibit intestinal transit. In vitro radioligand binding assays were performed using male Sprague-Dawley rat whole brain homogenates. The IC50 for peptide E against [3H]naloxone was 1.8 nmol/L compared with the delta-opioid ligand, [3H] [D-Pen2, D-Pen5]-enkephalin of 38.8 nmol/L. The IC50 for peptide E-(15-25) against [3H]naloxone was 497 nmol/L, but for [3H] [D-Pen2, D-Pen5]-enkephalin it was 50.6 nmol/L. Therefore, peptide E loses mu-opioid receptor affinity (1.8-497 nmol/L) after proteolytic processing and the loss of the amino terminal tyrosine but maintains a high delta-opioid affinity (38.8-50.6 nmol/L). These studies demonstrate that enzymatic peptide processing of peptide E to peptide E-(15-25) leads to a shift from mu- to delta-receptor selectivity and a different spectrum of biological effects on gut motility.

Animals

Inhibition of an IUD-induced precocious luteolysis by prostaglandin E1 (PGE1) in sheep.

Fifteen ewes were assigned as they came into estrus to one of three randomized treatment groups: 1. Sham IUD + Vehicle, 2. IUD + Vehicle or 3. IUD + PGE1 in vehicle. An IUD was inserted adjacent to the luteal-bearing ovary on day 3 postestrus. Prostaglandin E1 (500 micrograms) in vehicle (Na2CO3) or vehicle was given intrauterine through an indwelling uterine cannula every four hours from day 3 postestrus until ewes returned to estrus. Precocious estrus was induced in both the sham IUD and IUD groups receiving vehicle. Prostaglandin E1 prevented an IUD-induced premature luteolysis based on daily concentrations of progesterone in peripheral blood and the interestrous interval. It is concluded that an IUD-induced premature luteolysis is not necessarily via physical distention by the IUD. It is also concluded that chronic intrauterine infusions of PGE1 can prevent an IUD-induced premature luteolysis.

Alprostadil

Effects of prostaglandin E2 (PGE2) on estradiol-17 beta-induced luteolysis in the nonpregnant ewe.

Fifteen ewes were assigned as they came into estrus to the following randomized treatment groups: 1) Vehicle (1 ml corn oil + vehicle Na2CO3 buffer), 2) Estradiol-17 beta + vehicle and 3) Estradiol-17 beta + PGE2 (500 micrograms) in Na2CO3 buffer (5 ewes/treatment group). Prostaglandin E2 was given through an intrauterine cannula every four hours from days 8 through 15 postestrus. PGE2 prevented a luteolytic dose of estradiol-17 beta given on days 9 and 10 from causing a precocious luteolysis. PGE2 maintained concentrations of progesterone in peripheral blood (days 8 through 15) and weights and concentrations of progesterone in corpora lutea on day 15 postestrus of ewes receiving estradiol-17 beta. It is concluded that chronic intrauterine infusions of PGE2 can prevent an estradiol-17 beta-induced premature luteolysis.

Animals

Effects of prostaglandin E1 (PGE1) on estradiol-17 beta induced luteolysis in the nonpregnant ewe.

Nonpregnant ewes were assigned as they came into estrus to one of the following randomized treatment groups: 1) Vehicle (1 ml corn oil) + Vehicle (buffer), 2) Estradiol-17 beta + Vehicle (buffer) or Estradiol-17 beta + PGE1 in buffer. Ewes were unilaterally ovariectomized on day 8 postestrus and an intrauterine cannula was installed in the uterine horn adjacent to the remaining luteal-bearing ovary. Buffer of PGE 1 (500 micrograms) in buffer was infused intrauterine every 4 hours from day 8 through day 15. Luteolysis was initiated by giving an intramuscular injection of estradiol-17 beta (500 micrograms) on days 9 and 10. Chronic intrauterine infusions of PGE1 maintained jugular progesterone through day 15 and weights of corpora lutea and progesterone in corpora lutea on day 15 although luteolysis was initiated by estradiol. It is concluded that chronic intrauterine infusions of PGE1 can prevent an estrogen-induced premature luteolysis.

Alprostadil

Prostaglandin E2 (PGE2) inhibits an IUD-induced premature luteolysis in sheep.

Fifteen ewes were assigned as they came into estrus to one of three randomized treatment groups: 1. Sham IUD + Vehicle, 2. IUD + Vehicle, and 3. IUD + PGE2 in Vehicle. An IUD was inserted adjacent to the luteal-bearing ovary of unilaterally ovariectomized ewes on day 3 postestrus. Vehicle (Na2CO3) or PGE2 (500 micrograms) in vehicle was given every 4 hours intrauterine through an indwelling uterine cannula from day 3 postestrus until ewes returned to estrus. Luteolysis was advanced in both the Sham IUD and IUD groups receiving vehicle. An IUD-induced premature luteolysis was prevented by PGE based on daily concentrations of progesterone in peripheral blood and the extended interestrous interval. It is concluded that chronic intrauterine injections of PGE2 (500 micrograms) every four hours can prevent an IUD-induced premature luteolysis. It is also concluded that an IUD-induced premature luteolysis is not necessarily through uterine distention.

Animals

[Initial experiences in developing family groups].

First experiences are told about activity of a group of relationship, who care for old members of family. Important are not only instructions for nursing and remedial gymnastics but also conversations in the group, by which individual problems are decreased and willingness for care of old patients in the family is promoted.

Adaptation, Psychological