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Biomedical subjects

N Bodor

Publications and source records attributed to N Bodor.

At least 127 records · Page 7Linked to original sources

Growth hormone (GH) secretory dynamics in animals administered estradiol utilizing a chemical delivery system.

We have utilized a redox chemical delivery system (CDS) for the brain targeting of estradiol (E2) to ascertain its effects on GH secretory patterns in adult intact male rats. The E2-CDS (1.0 mg/kg) dissolved in 20% hydroxypropyl-cyclodextrin (HPCD), E2 (1.0 mg/kg) alone in 20% HPCD, or 20% HPCD was administered intravenously. GH secretory profiles, plasma steroid levels, and anterior pituitary levels of hormones were determined 1 week following steroid injection. Whereas E2 in HPCD and HPCD treatment did not alter masculine GH secretory patterns, animals administered the E2-CDS displayed disrupted GH patterns with attenuated individual pulse amplitudes and significantly elevated GH baseline levels. Moderate pituitary hyperplasia was evident only in the E2-CDS group of animals. Plasma testosterone (T) concentrations were reduced in only the E2-CDS group. T replacement reduced E2-CDS-associated pituitary hyperplasia and preserved the masculine GH secretory profiles, with only a slight reduction in individual GH peak amplitudes being observed. T replacement did not prevent the increase in pituitary and plasma levels of PRL associated with E2-CDS treatment but did block both the increase in pituitary GH content and the hyperplasia associated with prolonged E2 exposure. E2 given alone induced a significant increase in both GH and PRL in the pituitary without establishment of pituitary hyperplasia or elevated plasma PRL levels. These data indicate that E2-CDS is an effective mode of steroid administration. Changes in GH secretory dynamics, pituitary levels of GH, and degree of hyperplasia are dependent upon the chemical design of the delivery system for E2. Concomitant T therapy can prevent some of the changes in GH secretion associated with high-dose E2 exposure.

2-Hydroxypropyl-beta-cyclodextrin↗

Dose and time-course evaluation of a redox-based estradiol-chemical delivery system for the brain. I. Tissue distribution.

Brain-enhanced delivery and sustained release of estradiol (E2) may be potentially useful in the treatments of vasomotor hot flushes and prostatic adenocarcinoma and for fertility regulation. Therefore, we have evaluated a redox-based estradiol-chemical delivery system (E2-CDS) for the brain. The mechanism of this drug delivery is based on an interconvertible dihydropyridine in equilibrium pyridinium salt redox reaction. In this study, we investigated the dose- and time-dependent effects of E2-CDS on the tissue distribution of E2-Q+ and E2, the inactive (intermediate) and active metabolites, respectively, of the E2-CDS. Ovariectomized rats received a single iv injection of E2-CDS at 0.01, 0.1, or 1.0 mg/kg or an E2 dose of 0.7 mg/kg or the drug's vehicle, 2-hydroxypropyl-beta-cyclodextrin (HPCD), on day 0. Tissue samples including brain and peripheral tissues were then analyzed for both E2-Q+ and E2 at 1, 7, 14, 21, or 28 days following the E2-CDS administration. Initially, both E2-Q+ and E2 were detected in all tissues analyzed. The dose-distribution and time-course study demonstrates that (1) at 24 hr (1 day) after administration of E2-CDS, all tissues showed a dose-proportional increase in concentrations of E2-Q+ and E2; (2) the enzymatic oxidation of E2-CDS to E2-Q+ was dose dependent over the 100-fold dose range examined; and (3) the disappearance of E2-Q+ as well as E2 was slow in whole brain and hypothalamus, with an apparent t1/2 = 8-9 days, while both of these metabolites were rapidly cleared from plasma, liver, fat, anterior pituitary, kidney, lung, heart, and uterus.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Novel central nervous system targeted semisynthetic penicillins.

A novel series of semisynthetic penicillins was designed and synthesized. The compounds have as an integral part of the molecule a pyridinium <--> dihydropyridine redox system as a substituent at the 6-position. Esters of the dihydropyridine (pro-prodrug) forms of the drugs were expected, because of their pronounced lipophilic character, to easily penetrate biological membranes, including the blood-brain barrier, and to give rise to esters of polar pyridinium ions (prodrug) (via enzymic oxidation of the dihydropyridine moiety). The resulting ions were expected to be rapidly excreted from the periphery, but to be "locked" in the central nervous system; subsequent enzymic cleavage of the ester function was expected to release the free acid-pyridinium salts (drug) in the central nervous system in a sustained manner. The design approach, synthesis, study of some important physicochemical properties, stability determinations and preliminary in vivo distribution and potency evaluations of the novel drugs are described.

Animals↗

Improved delivery through biological membranes. XXI. Brain-targeted anti-convulsive agents.

A dihydropyridine in equilibrium with pyridinium salt redox system was applied to effect brain delivery of gamma-aminobutyric acid (GABA) derivatives and analogues. The redox system allows the lipophilic dihydropyridine conjugates to penetrate the blood brain barrier, whereas corresponding oxidized pyridinium forms are retained in the brain for an extended period and rapidly eliminated from the periphery. The most promising compound was the GABA benzyl ester-CDS (1a, Scheme I). It had an ED50 of 15.8 mg/kg (i.v.) in protecting mice against maximal electroconvulsive shock-induced tonic hind-leg extension.

Animals↗

Tissue distribution of a brain-enhanced chemical delivery system for estradiol.

Enhanced delivery and sustained release of estradiol (E2) in the brain could have potential clinical applications in the effective treatment of vasomotor "hot flushes" and prostatic cancer. We have, therefore, evaluated a brain-enhanced E2-chemical delivery system (E2-CDS), which is based upon the interconvertible dihydropyridine in equilibrium with pyridinium salt redox reaction. In this study, we evaluated the tissue distributions of E2-Q+ and E2--the inactive and active metabolites of the E2-CDS. Both E2-Q+ and E2 were detected in all tissues analyzed. In peripheral tissues, E2-Q+ and E2 were rapidly cleared, but in brain, concentrations of both compounds exhibited a slow decline with a t1/2 = 8 days. 14 Days after the E2-CDS administration, brain levels of E2-Q+ exceeded plasma levels by 170-fold, fat levels by 20-fold, and liver levels by 8-fold. Similarly, brain-E2 levels exceeded plasma levels by 38-fold, fat levels by 11-fold, and liver levels by 7-fold. Furthermore, levels of E2-Q+ In anterior pituitary, kidney, heart, and lung were initially 2- to 6-fold higher than brain levels, but 14 days after the E2-CDS administration, brain levels of E2-Q+ exceeded E2-Q+ levels in these peripheral tissues by 1.5- to 3-fold. The increased brain/peripheral tissues ratios of E2-Q+ and E2 in rats treated with the E2-CDS support brain-enhanced delivery and sustained release of E2 from this delivery system.

Animals↗

Brain and CSF specific chemical delivery systems for beta-lactam antibiotics. Study of two dihydropyridine derivatives of benzylpenicillin in rabbits and dogs.

Following previous studies in rats, the ability of two chemical delivery systems (CDSs) to deliver benzyl penicillin (1) to the central nervous system of rabbits and dogs was investigated. One of the systems (3) was a diester of methylene diol, and the other (5) a diester of ethylene 1,2-diol; in both, one hydroxyl group of the diol was esterified by the 3-carboxylic acid group of benzylpenicillin, and the other by the carboxy group of an N-methyldihydropyridine (dihydrotrigonelline). The basis of the system is the ability of the dihydropyridine components to undergo oxidation to quaternary pyridinium salts (2 from 3, and 4 from 5). In vitro relative stability studies were first performed in 10% rabbit brain homogenate, rabbit CSF and dog CSF. The results showed that the CDSs (3 and 5) were more stable than the corresponding quaternary salts (2 and 4). Hydrolysis of 2 and 3 resulted in the release of 1, whereas hydrolysis of 4 and 5 released both 1 and the hydroxyethyl ester (6) of 1. In vivo distribution studies were performed in rabbits and dogs. After i.v. administration of equimolar doses of 1 or the CDSs, levels of 1 in brain and CSF were substantially higher and more prolonged in the cases of the CDSs than in the case of 1 itself. Brain levels of 1 were lower following administration of 5, as compared with 3, due to the release of the intermediate compound, the hydroxyethyl ester (6) of 1, which was not hydrolyzed efficiently to 1 in rabbit or dog brain. The substantially increased and prolonged penicillin levels following administration of the CDSs arise as the result of improved penetration of the lipophilic CDSs across the blood-brain barrier, and a "lock-in" effect of the corresponding quaternary salts generated in situ.

Animals↗

Desorption chemical ionization, thermospray, and fast atom bombardment mass spectrometry of dihydropyridine in equilibrium with pyridinium salt-type redox systems.

Trigonellyl-substituted (pyridinium salt type) compounds decompose during sample introduction using desorption chemical ionization (DCI) and thermospray (TSP) ionization. Thermal dequaternization is the main degradation process in DCI, while hydrolytically sensitive bonds are subject to cleavage in the TSP source, and dequaternization and reduction to the dihydropyridine analogues are also observed. Fast atom bombardment (FAB) is the suggested method of ionization because of its ability to provide an intense intact cation. The neutral dihydropyridine analogues can be effectively ionized by DCI and TSP. These methods are recommended, because bombardment-induced oxidation produces artifacts and shows a matrix effect in positive FAB.

Chemical Phenomena↗

Improved anticonvulsant activity of phenytoin by a redox brain delivery system. II: Stability in buffers and biological materials.

The stability of nine chemical delivery systems (CDSs) for phenytoin (DPH) was studied in aqueous buffers and in biological materials. The systems were based on a dihydropyridine in equilibrium quaternary pyridinium salt redox pair attached to 3-(hydroxymethyl)phenytoin via an ester linkage. The pyridinium derivatives released DPH in aqueous buffers and their hydrolytic reactivity was consistent with their chemical structure. Although in rat blood and plasma all pyridinium esters hydrolyzed rapidly, there was a wide range in the hydrolysis rates in rat brain homogenate. The sterically hindered 1-alkylcarboxynicotinamide was the least reactive ester (t1/2 = 98.2 min), while the trigonellylglycolate ester was the fastest to hydrolyze enzymatically (t1/2 = 2 min) in rat brain homogenate. In acidic media, the major products of all dihydropyridine esters were the corresponding water adducts, the 6-hydroxy- 1,4,5,6-tetrahydropyridines. These adducts were of no significance in biological materials. After comparison of the relative stability of the corresponding pairs of dihydropyridine and pyridinium ion in brain homogenate and the absolute stability of the various dihydropyridines, two CDSs were chosen for further in vivo evaluations. The CDSs chosen were the dihydrotrigonellinate ester and its 6-methyl derivative.

Animals↗

A rapid, sensitive method for the simultaneous quantitation of estradiol and estradiol conjugates in a variety of tissues: assay development and evaluation of the distribution of a brain-enhanced estradiol-chemical delivery system.

A rapid and sensitive method that permits the simultaneous quantitation of estradiol (E2) and the E2 conjugate [estradiol 17-(1,4-dihydrotrigonellinate)] in biological tissues from rats is described. This method development was necessitated by the design of this E2-chemical delivery system (E2-CDS) which permits the predictable metabolism of the E2-CDS to a charged quaternary ion (E2-Q+) and its subsequent hydrolysis to slowly liberate E2. Based upon in vitro determinations of the rates of oxidation of E2-CDS to E2-Q+ and hydrolysis of E2-Q+ to E2, we anticipated that concentrations of E2-Q+ would be several orders of magnitude higher in tissues than E2. Three steps were used to extract and prepare samples for the radioimmunoassay (RIA) of estradiol. The first step is homogenization and extraction of the biological samples with an organic solvent; the second step is the base catalyzed hydrolysis of the E2 conjugate in 1 N NaOH; and the third step utilizes solid-phase extraction (SPE) with C18 reversed-phase columns which provide a means of achieving a rapid and precise extraction and separation of E2. The analysis of plasma samples does not require the initial solvent extraction. All purified E2 samples were then reconstituted in the assay buffer and assayed by RIA for E2. The application of this procedure to the determination of E2-Q+ and E2 in biological materials was assessed for specificity, reliability and recovery in vitro by using tissues and plasma from rats and in vivo evaluations of the distribution of E2 and E2-Q+ were done using rats treated with 1 mg E2-CDS/kg. Our in vitro analyses revealed that E2 and E2-Q+ could be differentially extracted with a high recovery and that both compounds could be specifically and reliably assayed in brain, plasma, anterior pituitary, liver, kidney, lung, heart and adipose tissue. In vivo analyses revealed that following a single i.v. injection of E2-CDS, brain levels of E2 exceeded serum levels by 30-, 41-, and 82-fold while brain levels of E2-Q+ exceeded serum levels by 33-, 70-, and 294-fold at 1, 7 and 14 days, respectively. Collectively, these data indicate that E2-Q+ and E2 can be reliably quantitated in a variety of tissues following the administration of an E2-chemical delivery system.

Animals↗

Brain-specific chemical delivery systems for beta-lactam antibiotics. Synthesis and properties of some dihydropyridine and dihydroiosquinoline derivatives of benzylpenicillin.

Six chemical delivery systems (CDS) were synthesized for benzylpenicillin in order to improve its transport across the blood-brain barrier. The CDS's were based on a dihydropyridine----quaternary pyridinium ion redox system, analogous to the naturally occurring NADH----NAD+ system. Two different types of CDS's were prepared: benzylpenicillin esters of diols in which the other hydroxyl group is esterified by dihydrotrigonelline and benzylpenicillin esters of amino alcohols in which the amine group is acylated by dihydrotrigonelline, or by 1,2-dihydro-2-methyl-4-isoquinolinecarboxylic acid. Lipophilicities of the CDS's were proved to be much higher than those of benzylpenicillin by using Rm values as lipophilicity indexes. Upon oxidation, all of the CDS's gave the quaternary ion forms. Kinetic studies in buffer (pH profiles) indicated that the quaternary salts released benzylpenicillin in pH range of 5-9 via hydrolysis. The CDS's in acidic media yielded as the major reaction product 6-hydroxy-1,4,5,6-tetrahydropyridines as a result of water addition, while in basic conditions benzylpenicillin was released. The water addition reaction was dependent on the CDS's structure, being more prevalent in the case of the "amide-esters". The dihydroisoquinoline CDS was rather stable in the pH range 5-8.

Blood-Brain Barrier↗

Brain-specific chemical delivery systems for beta-lactam antibiotics. In vitro and in vivo studies of some dihydropyridine and dihydroisoquinoline derivatives of benzylpenicillin in rats.

Four chemical delivery systems (CDS's) based on a dihydropyridine----quaternary pyridinium salt redox system were used for the brain delivery of benzylpenicillin (BP). CDS's 5 and 9 are diesters of C1 and C2 diols in which one hydroxyl group is esterified by the benzylpenicillin-3-carboxylic group and the other by dihydrotrigonelline. CDS's 13a and 17 are benzylpenicillin esters of amino alcohols in which the amine group is acylated by dihydro-trigonelline (13a) or by 1,2-dihydro-2-methyl-4-isoquinolinecarboxylic acid (17). In vitro relative stability studies showed that both CDS's and quaternary pyridinium salts were quite unstable in rat and rabbit blood or brain but much more stable in dog or human blood. Kinetic studies performed in rat brain homogenate demonstrated the facile enzymatic oxidation of the CDS's to the corresponding quaternary salts. Hydrolysis of the CDS's and the quaternary salts resulted in the release of benzylpenicillin. In biological media CDS 13a also yielded a water addition product, the 6-hydroxy-1,4,5,6-tetrahydropyridine derivative. In vivo distribution studies were carried out in rats. After iv administration of equimolar doses of BP and CDS's, brain benzylpenicillin levels were found to be substantially higher and more prolonged in case of 5 and 9 than of BP itself. However, administration of 13a and 17 resulted in lower brain benzylpenicillin levels due to the water addition reaction and a nonspecific brain delivery, respectively. The remarkable increase of BP levels as well as the prolonged effect after the administration of 5 and 9 is a result of an improved penetration through the blood-brain barrier of the lipophilic CDS's and a "lock-in" effect of the corresponding quaternary salts generated in situ.

Animals↗

Chemical delivery systems for some penicillinase-resistant semisynthetic penicillins.

Chemical delivery systems (CDS's) based on a dihydropyridine----quaternary pyridinium ion redox system analogous to the naturally occurring NADH----NAD+ system were synthesized for a group of staphylococcal penicillinase resistant penicillins, including methicillin, oxacillin, cloxacillin, and dicloxacillin, in order to improve their penetration of the central nervous system (CNS). The CDS's are penicillin monoesters of gem-diols in which the other hydroxyl group is esterified by the dihydrotrigonelline carrier. The CDS's were found to be much more lipopholic than the parent drugs by comparing their log k' values used as lipophilicity indexes. A study of the chemical oxidation of the CDS's performed by a UV spectrophotometric method showed relatively slow reaction. Stability studies were performed in buffers and different animal tissues for both the CDS's and the quaternary salt type derivatives. These studies showed that the CDS's were oxidized to the quaternary salt forms at neutral and basic pH and added water at lower pH. The quaternary salts released the parent drugs both in buffers and in vitro. A preliminary in vivo distribution study in the rat and rabbit demonstrated blood-brain barrier (BBB) penetration by the CDS, whereas no drug was detected by administering the drug itself.

Animals↗

Improved delivery through biological membranes. XXXVII. Synthesis and stability of novel redox derivatives of naproxen and indomethacin.

Several novel bioreversible redox derivatives of the nonsteroida, antinflammatory drugs (NSAID) naproxen and indomethacin were synthesized. The stability of these dihydropyridine-NSAID derivatives their synthetic precursors, and predicted products of oxidative metabolism, the corresponding pyridinium salts, was determined in buffer, human and rat blood, and rat organ homogenate. The dihydropyridines exhibited the expected stability profiles in the media examined: oxidation, water addition, and/or ester hydrolysis. The corresponding pyridinium salts were quite stable in biomedia. ester hydrolysis being the primary route of decomposition. The results of this study may be useful in selecting suitable candidates for selective delivery of naproxen and indomethacin across the blood-brain barrier.

Blood-Brain Barrier↗

Effects of a brain-enhanced chemical delivery system for estradiol on body weight and food intake in intact and ovariectomized rats.

Studies were undertaken to determine the effects on body weight of a brain-enhanced chemical delivery system for estradiol. This estradiol-chemical delivery system (E2-CDS) has a long half-life in the brain, where it slowly releases estradiol but is quickly cleared from peripheral tissues. We administered, by a single iv injection, E2-CDS (0.2, 1.0, or 5.0 mg/kg), equimolar doses of another 17-hydroxy-substituted estrogen, estradiol valerate (E2-VAL), or the dimethyl sulfoxide (DMSO) vehicle to female rats. Daily food intake and body weight was determined for 24 days thereafter. E2-CDS caused an initial dose-dependent suppression in body weight for up to 8 days and a suppression in food intake for up to 4 days. In response to E2-VAL, the initial declines in body weight and food intake were lower in magnitude, were shorter in duration, and showed no dose dependency. Following this period of weight loss, E2-CDS-treated rats gained weight at a rate greater than that of the DMSO controls, and at the 0.2- and 1.0-mg/kg doses, body weights achieved were greater than control levels. To determine the role of the ovaries on this biphasic response to E2-CDS, long-term ovariectomized rats were treated with E2-CDS (1.0 mg/kg) or the vehicle and parameters of body weight regulation were determined for 25 days. Ovariectomized rats responded to E2-CDS with a prompt and sustained decrease in body weight which did not recover over the 25-day course of the study. The body-weight loss in ovariectomized rats was associated with a marked reduction in food intake for 8 days.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Effect of choline esters and oleic acid on the penetration of acyclovir, estradiol, hydrocortisone, nitroglycerin, retinoic acid and trifluorothymidine across hairless mouse skin in vitro.

Five choline esters, lauroylcholine, myristoylcholine, palmitoylcholine, stearoylcholine and oleoylcholine, were evaluated as skin penetration enhancers by testing their effects on the penetration of six drugs, acyclovir, 17 beta-estradiol, hydrocortisone, nitroglycerin, all-trans-retinoic acid and trifluorothymidine, across hairless mouse skin in vitro and comparing the results to those obtained with oleic acid. The results show that the transdermal delivery of the drugs tested from propylene glycol vehicle systems, can be significantly increased by adding small amounts of choline esters and/or oleic acid to the vehicle. Lauroylcholine was a better enhancer than oleic acid for the transdermal delivery of 17 beta-estradiol and, in mixtures, lauroylcholine and oleic acid acted as synergists giving larger enhancement of the transdermal delivery of nitroglycerin and acyclovir than when used separately.

Acyclovir↗

Chemical delivery systems for drugs containing an amino group: synthesis and properties of some pyridine derivatives of desipramine.

Seven chemical delivery systems (CDS) based on a dihydropyridine<-->quaternary pyridinium salt type redox system and analogous to the naturally occurring NADH<-->NAD+ coenzyme system were applied in the case of the antidepressant drug desipramine. The pyridine moiety-containing carriers were linked to the amino function of desipramine either as amides or substituted carbamates. Lipophilic properties were expressed in terms of chromatographic Rm values. Oxidative stability of the dihydropyridine forms of the CDSs were determined in vitro. The amide type derivatives were stable toward hydrolysis in buffers and in biological fluids, whereas the carbamates released the parent drug in a very efficient manner. In a behavioral despair test, the CDSs did not show improved activity when compared to desipramine. In vivo distribution studies of one of the CDS did not show more efficient delivery of the desipramine into the rat brain but did show a prolonged presence at a constant level.

Animals↗

Effects of 2-hydroxypropyl-beta-cyclodextrin on the aqueous solubility of drugs and transdermal delivery of 17 beta-estradiol.

The effect of 2-hydroxypropyl-beta-cyclodextrin (2-HPCD) on the aqueous solubility of 18 drugs possessing different physiochemical properties was investigated. The largest increase in aqueous solubility was obtained with very lipophilic drugs with low aqueous solubility and the enhancement was larger at low temperature than at high temperature. In many cases a linear relationship exists between the drug solubility and the 2-HPCD concentration. Ionization of a drug molecule enhanced the solubility effects of 2-HPCD, resulting in greater aqueous solubility than if either method was used by itself. 2-HPCD was found to be an effective transdermal permeability enhancer.

2-Hydroxypropyl-beta-cyclodextrin↗