Search PubMed⌕ Search

Biomedical subjects

G Ziv

Publications and source records attributed to G Ziv.

At least 55 records · Page 3Linked to original sources

Pharmacokinetics and bioavailability of ceftriaxone administered intravenously and intramuscularly to calves.

Ceftriaxone was administered to Israeli-Friesian male calves by IV and IM routes. The antibiotic was administered IV (10 mg/kg) to 10 calves and IM to 23 calves; 8 were given the antibiotic at the rate of 10 mg/kg of body weight, 5 were given 20 mg/kg, and 10 were given 10 mg/kg, together with probenecid at 40 mg/kg. Serum concentration vs time profiles measured after IV and IM administration were analyzed by use of statistical moment theory. The following mean values +/- SD were found: elimination half-life (t1/2) was 83.8 +/- 8.6 minutes after IV administration and significantly longer 116.8 +/- 20.5 minutes (P less than 0.001) after IM administration at 10 mg/kg. The t1/2 was increased to 141.3 +/- 24.4 minutes by the coadministration of probenecid and to 145.0 +/- 48.2 minutes by doubling the IM dosage to 20 mg/kg. The total body clearance was 3.39 +/- 0.42 ml/min/kg and the renal clearance 2.37 +/- 0.74 ml/min/kg. The specific volume of distribution was 0.2990 +/- 0.0510 L/kg. The average mean residence time (MRT) was 94.0 +/- 12.3 minutes after IV administration and 137.6 +/- 19.9 minutes after IM administration of ceftriaxone at 10 mg/kg. The MRT was increased to 198 +/- 48.8 minutes by the coadministration of probenecid and to 191.0 +/- 59.4 minutes by doubling the IM dose. The former value was significantly different from the MRT after IM administration of the antibiotic at 10 mg/kg. Bioavailability of ceftriaxone after IM administration at 10 mg/kg and at 20 mg/kg was 78% and 83%, respectively.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Pharmacokinetics of phenoxymethyl penicillin (penicillin V) in calves.

Phenoxymethyl penicillin (penicillin V) was administered intravenously (i.v.) and orally to pre-ruminant calves and the distribution and elimination kinetics, as well as the oral bioavailability, were determined. After i.v. injection, the drug was distributed rapidly in the body, the elimination half-life (t1/2 beta) was 34 min and the apparent volume of distribution at steady-state (Vd ss) was 0.30 l/kg. Mean peak serum drug concentrations were directly related to the oral dose administered, i.e. 0.22 microgram/ml, 1.06 micrograms/ml and 2.14 micrograms/ml after dosing at 10, 20 and 40 mg/kg, respectively. The elimination t1/2 of the drug after oral dosing varied between 90 and 110 min, and the oral bioavailability was approximately 30% of the dose. The co-administration of phenoxymethyl penicillin and probenecid resulted in elevation and prolongation of serum drug concentration. The percentage of drug bound to serum proteins was 78.8% +/- 8.2%. Phenoxymethyl penicillin was probably inactivated and degraded in the gastrointestinal tract of 6-week-old calves fed exclusively hay, silage and concentrates as very low and erratic serum drug concentrations were measured after these calves were dosed orally with the drug at 40 mg/kg. In view of the narrow antibacterial spectrum of the drug and the relatively high dose required, it appears that phenoxymethyl penicillin can only be of limited practical value for the treatment of bacterial infections in preruminant calves.

Administration, Oral↗

Clavulanate-potentiated amoxycillin: in vitro antibacterial activity and oral bioavailability in calves.

The minimal inhibitory concentrations (MIC) of amoxycillin and clavulanate-potentiated amoxycillin (amoxycillin:clavulanic acid, 4:1 by weight) were compared for 171 Salmonella, 170 Escherichia coli, and 32 Pasteurella isolates recovered from infected neonatal calves. In the presence of clavulanic acid, the MIC of amoxycillin was reduced to levels less than or equal to 12.5 micrograms/ml for all the Salmonella group B, all the Pasteurella, and for 12 out of the 44 E. coli isolates which were resistant to amoxycillin (MIC greater than or equal to 100.0 micrograms/ml). For isolates sensitive to amoxycillin (MIC less than or equal to 1.56 microgram/ml) there was no change in MIC values in the presence of clavulanic acid. A small proportion of Salmonella and E. coli isolates were resistant to clavulanate-potentiated amoxycillin. In a cross-over trial involving 10 preruminant (2 weeks old) calves, amoxycillin trihydrate and clavulanate-potentiated amoxycillin were administered orally at 10 mg/kg. An analysis of serum amoxycillin level data showed that the pharmacokinetic parameters t1/2ab, Cmax, t1/2 beta, AUC, Cp degree, and f' (estimated drug absorption ratio) were the same after treatment with amoxydrate and clavulanate-potentiated amoxycillin. Administration of clavulanate-potentiated amoxycillin and probenecid resulted in elevation and prolongation of serum amoxycillin levels. Computations showed that in preruminant calves serum amoxycillin concentrations sufficient to inhibit sensitive pathogens can be maintained by oral clavulanate-potentiated amoxycillin treatment at 10 mg/kg TID. At two times that dose rate serum drug concentrations capable of inhibiting 50% of all types of pathogens examined can be maintained.(ABSTRACT TRUNCATED AT 250 WORDS)

Amoxicillin↗

Clinical pharmacokinetics of five oral cephalosporins in calves.

The minimal inhibitory concentrations (MIC) of cephalexin, cephradine, cefaclor, cefatrizine and cefadroxil for Salmonella species, Escherichia coli and Pasteurella multocida isolated previously from young calves were determined. The MIC90 values for cephalexin, cephradine and cefadroxil ranged between 3.12 micrograms ml-1 and 12.5 micrograms ml-1, whereas those of cefatrizine and cefaclor were 3.12 micrograms ml-1 and 0.78 microgram ml-1, respectively. Each drug was administered intravenously and orally to groups of pre-ruminating calves and orally to early ruminating calves. Although the pharmacokinetic characteristics of the drugs after intravenous injection were similar to other beta-lactam antibiotics, significant differences between the cephalosporins examined were found in respect of certain kinetic parameters. The drugs showed rapid absorption into the systemic circulation after oral administration to pre-ruminating calves but the elimination half-life values (t1/2 beta) varied between three hours (cefaclor and cefadroxil) and nine hours (cefatrizine). The bioavailability of the drugs was about 35 per cent of the administered dose. Co-administration of probenecid with each antibiotic caused a twofold or greater increase in peak serum drug concentrations (Cmax) but the effect on t1/2 beta was variable. Cephalexin, cephradine and cefaclor given to the ruminating calves resulted in very low serum or plasma concentrations and their use should be restricted to younger calves. Cefadroxil was found to give the highest serum concentrations in this age group but had significantly lower bioavailability when compared with the unweaned calves. Provisional oral dosage regimens were computed for each cephalosporin on the basis of the MIC data and the kinetic parameters derived from intravenous and oral drug administration.

Absorption↗

Pharmacokinetic changes of several antibiotics in chickens during induced fatty liver.

The concentrations of five antibiotics (erythromycin, lincomycin, penicillin G, streptomycin and oxytetracycline) were determined in chicken serum before and after induced fatty liver. The pharmacokinetic variables were calculated according to the obtained data. The crossover trial design involved 10 chickens for each antibiotic. The fatty liver was produced by oestradiol-dipropionate injections and monitored by serum malic enzyme activity determinations. Protein binding of the respective antibiotics was determined in vitro in the serum obtained from normal and oestrogen-treated birds. Induction of fatty liver caused several changes in the determined variables. The measured peak concentrations were higher for lincomycin and erythromycin and lower for penicillin and oxytetracycline while streptomycin remained unchanged. The peak concentration of streptomycin appeared earlier and the peak of oxytetracycline later than in the normal chickens. The elimination half-lives were shorter for erythromycin, lincomycin and streptomycin and increased for penicillin and oxytetracycline. The area under the concentration curve (AUC) decreased for erythromycin, penicillin and streptomycin, increased for oxytetracycline and remained unchanged for lincomycin. The body clearance (ClB/f) and the apparent specific volume of distribution (Vd(area'/f) were considerably changed in association with fatty liver induction. Since the fraction of the drug absorbed (f) is not known, it can only be speculated that changes in distribution rather than reduced liver function altered the kinetics. The protein binding was decreased for all the antibiotics, but this did not seem to be the reason for changes in kinetics, except perhaps in the case of penicillin.

Animals↗

Clinical pharmacokinetics of flumequine in calves.

The minimal inhibitory concentration (MIC) of flumequine for 249 Salmonella, 126 Escherichia coli, and 22 Pasteurella multocida isolates recovered from clinical cases of neonatal calf diarrhoea, pneumonia and sudden death was less than or equal to 0.78 microgram/ml. The pharmacokinetics of flumequine in calves was investigated after intravenous (i.v.), intramuscular (i.m.) and oral administration. The two-compartment open model was used for the analysis of serum drug concentrations measured after rapid i.v. ('bolus') injection. The distribution half-life (t1/2 alpha) was 13 min, elimination half-life (t1/2 beta) was 2.25 h, the apparent area volume of distribution (Vd(area)), and the volume of distribution at steady state (Vd(ss)) were 1.48 and 1.43 l/kg, respectively. Flumequine was quickly and completely absorbed into the systemic circulation after i.m. administration of a soluble drug formulation; a mean peak serum drug concentration (Cmax) of 6.2 micrograms/ml was attained 30 min after treatment at 10 mg/kg and was similar to the concentration measured 30 min after an equal dose of the drug was injected i.v. On the other hand, the i.m. bioavailability of two injectable oily suspensions of the drug was 44%; both formulations failed to produce serum drug concentrations of potential clinical significance after administration at 20 mg/kg. The drug was rapidly absorbed after oral administration; the oral bioavailability ranged between 55.7% for the 5 mg/kg dose and 92.5% for the 20 mg/kg dose. Concomitant i.m. or oral administration of probenecid at 40 mg/kg did not change the Cmax of the flumequine but slightly decreased its elimination rate. Flumequine was 74.5% bound in serum. Kinetic data generated from single dose i.v., i.m. and oral drug administration were used to calculate practical dosage recommendations. Calculations showed that the soluble drug formulation should be administered i.m. at 25 mg/kg every 12 h, or alternatively at 50 mg/kg every 24 h. The drug should be administered orally at 30 and 60 mg/kg every 12 and 24 h, respectively. Very large, and in our opinion impractical, doses of flumequine formulated as oily suspension are required to produce serum drug concentrations of potential clinical value.

Administration, Oral↗

Clinical pharmacology of mecillinam in calves.

The minimal inhibitory concentrations (MIC) of mecillinam, a novel beta-amidinopenicillanic acid derivative with unusual activity against Gram-negative bacteria, were compared with the MIC of cephazolin, cephalothin, amoxycillin, oxytetracycline, chloramphenicol, dihydrostreptomycin, neomycin, kanamycin, gentamicin and sulfadoxin/trimethoprim (TMP) against pathogenic Gram-negative bacteria recovered from neonatal calves. The MIC values of mecillinam ranged between 0.05 microgram/ml and 12.5 micrograms/ml, and the MIC90 values were 1.56 micrograms/ml and 3.12 micrograms/ml. The activity of mecillinam against salmonella, Escherichia coli and Pasteurella multocida was similar to or slightly greater than the activities of the first-generation cephalosporins, gentamicin and sulfa/TMP. Mecillinam concentrations less than or equal to 3.12 micrograms/ml inhibited the growth of the majority of isolates which were resistant (MIC90 greater than 100 micrograms/ml) to the other antibiotics studied. The minimum bactericidal concentration (MBC) values of mecillinam were two- to three-fold higher than the MIC values. The two-compartment open model was appropriate for the analysis of serum mecillinam concentrations measured after intravenous administration. The distribution half-life (t1/2 alpha) was 11.7 min, the elimination half-life (t1/2 beta) was 53.3 min, and the apparent volume of distribution (Vd (area)) and the distribution volume at steady state (Vd (ss)) were 0.568 and 0.896 l/kg, respectively. The drug was quickly absorbed after intramuscular (i.m.) injection; peak serum drug concentrations were directly related to the dose administered. They were obtained 30 min after treatment and the i.m. t1/2 was approximately 65 min.(ABSTRACT TRUNCATED AT 250 WORDS)

Amdinocillin↗

Mammary leukocyte response to drug therapy.

The possibility exists that antibiotics and anti-inflammatory agents will be used indiscriminately in attempts to reduce leukocyte or somatic cell counts in mammary secretions to conform with Interstate Milk Shippers quality standards for raw milk to be implemented July 1, 1986. Recent in vivo studies evaluating the effect of intramammary drug injection on milk leukocytes confirmed previous in vitro investigations demonstrating that certain drugs have a significant effect on leukocyte antimicrobial activity. Antibiotics commonly included in commercial infusion products used in this country such as penicillin G, semisynthetic penicillins, the mycins, cephalosporins, and sulfonamides did not affect leukocyte function. However, some drugs were detrimental, notably chloramphenicol, tiamulin, tetracycline, gentamicin, rifampicin, amikacin, and nitrofurantoin. In vitro investigations on the use of anti-inflammatory agents demonstrated that methylprednisolone had a stabilizing effect on leukocytes by maintaining viability and reducing degranulation, whereas flumethasone was detrimental to cell viability. The nonsteroid agent, ibuprofen, decreased viability and increased degranulation but also increased phagocytosis and bacterial killing. Intramammary infusion of anti-inflammatory agents was generally ineffective in lowering somatic cell counts of endotoxin-infused quarters, but certain drugs may be advantageous in limiting milk production losses during udder inflammation.

Animals↗

Clinical pharmacology of apramycin in calves.

The minimal inhibitory concentrations (MIC) of apramycin, a unique aminocyclitol antibiotic, were compared with the MIC of dihydrostreptomycin and neomycin for 323 Salmonella, 178 Escherichia coli and twenty-six Pasteurella multocida isolates recovered from newborn calves. Apramycin exhibited better in vitro anti-bacterial activity than dihydrostreptomycin and neomycin; isolates of Salmonella group B and E. coli resistant to the latter were sensitive to apramycin. The two-compartment open model was appropriate for the analysis of serum apramycin concentrations measured after intravenous (i.v.) administration. The distribution half-life (t 1/2 alpha) of the drug was 28 min, the elimination half-life (t 1/2 beta) was 4.4 h, and the apparent volume of distribution (V1) and the distribution volume at steady state (Vdss) were 0.34 and 0.71 l/kg, respectively. The drug was quickly and completely absorbed after intramuscular (i.m.) injection; peak serum drug concentrations were directly related to the dose administered, they were obtained 1-2 h after treatment and the i.m. t 1/2 beta was 5 h. There was no evidence of drug accumulation in the serum after three daily i.m. injections at 20 mg/kg. More than 95% of the i.v. and i.m. doses were recovered in the urine within 96 h post-treatment but the cumulative percentage of drug recovery in the urine after oral treatment was 11%. The durations of free drug concentrations in the tissues after i.v. and i.m. injection were estimated from the serum drug level data, percent of serum protein binding, Vdss, t 1/2 beta, and the MIC. Computations showed that apramycin should be administered i.m. at 20 mg/kg every 24 h in order to maintain in tissues potentially effective drug concentrations sufficient to inhibit 50% of the Salmonella, E. coli, and P. multocida isolates, and at 12-h intervals to inhibit 90% of the isolates.

Animals↗

Apramycin: minimal inhibitory concentrations for avian Escherichia coli and serum levels after intramuscular injection in turkeys.

The minimal inhibitory concentrations (MIC) of apramycin, a unique aminocyclitol antibiotic, for 100 Escherichia coli isolates recovered from clinical cases of avian colibacillosis were determined using the agar dilution method. All isolates were inhibited at apramycin concentration of 8.0 micrograms/ml; 90 and 50% of the isolates were inhibited at 6.6 and 3.4 micrograms/ml, respectively. A commercial injectable product containing 200 mg apramycin/ml was administered intramuscularly (i.m.) to groups of 6- and 12-week-old turkeys at 10, 15 and 20 mg/kg. Apramycin was quickly absorbed from the i.m. injection site. Mean peak serum drug concentrations were reached 1 h after treatment and were 19.5, 27.5 and 36.0 micrograms/ml, respectively. The serum elimination half-life (t 1/2) of the drug ranged between 1.75 h for the 10 mg/kg dose and 2.5 h for the 20 mg/kg dose. Very low concentrations of the drug were found 24 h after treatment. Duration of serum apramycin concentrations in relation to the MIC, dose, and age of birds was determined.

Age Factors↗

Intramuscular treatment of subclinical staphylococcal mastitis in lactating cows with penicillin G, methicillin and their esters.

The relationship between antibiotic milk concentrations and bacteriological efficacy was investigated in groups of lactating cows with subclinical mastitis due to either penicillin G-sensitive or penicillin G-resistant Staphylococcus aureus. Treatments consisted of the intramuscular injection of procaine penicillin G, or its weak base ester penethamate hydriodide, and sodium methicillin, or its weak base ester tamethicillin. Antibiotics were administered once daily for 2 or 4 days at accepted dosages. After four daily, treatments with procaine penicillin G and penethamate hydriodide, infections were eliminated from 56.5% and 68.8%, respectively, of quarters infected with penicillin G-sensitive staphylococci, and from 14.3% and 7.7%, respectively, of quarters infected with penicillin G-resistant staphylococci. After four daily treatments with sodium methicillin and tamethicillin, infections were eliminated from 32.4% and 48.6%, respectively, of quarters infected with penicillin G-resistant staphylococci. The better efficacy of penethamate hydriodide and tamethicillin was considered to be linked to the higher milk drug concentrations obtained with these drugs as opposed to the lower concentrations measured in the milk after treatment with the parent drugs. Cure rates were generally higher after treatment for 4 days than after the 2-day course of therapy. Treatment efficacy decreased progressively with increasing age of the cows. Intramuscular treatment of subclinical staphylococcal mastitis in lactating cows can serve as a useful model for screening existing and new antibacterial agents and drug products intended for the parenteral treatment of clinical staphylococcal mastitis.

Animals↗

Clinical pharmacokinetics of carbenicillin, carfecillin, ticarcillin and BL-P 1654 in dairy cows.

The minimal inhibitory concentrations (MIC) of carbenicillin, ticarcillin and BL-P 1654 for gram-negative udder pathogens were determined using the agar plate dilution method. The MIC of the drugs for 50% and 90% of the isolates examined ranged for Escherichia coli and Aerobacter spp. from 1.56 to 25 micrograms/ml, and for Klebsiella spp. and Pseudomonas spp. from 3.12 to 50 micrograms/ml. The Serratia spp. were relatively non-susceptible for the drugs studied (MIC greater than 50 micrograms/ml). Each drug was administered intravenously at 5 g and 15 g per cow to different groups of cows with normal and inflamed quarters of the udder. Distribution and elimination kinetic parameters calculated from serum drug level data were very similar to those of other beta-lactam antibiotics. Although drug concentrations in milk from inflamed quarters were higher than in milk from normal quarters, they were considerably below the MIC for the majority of gram-negative udder pathogens. The data suggest that parenteral treatment of gram-negative udder infections with carbenicillin, carfecillin, ticarcillin and BL-P 1654 at the dose levels used in the present study is unlikely to result in a bacteriological cure and would probably be clinically ineffective.

Animals↗

Permeability of the blood-milk barrier to methylene blue in cows and goats.

A 2% aqueous solution of methylene blue was administered as a single intravenous (i.v.) bolus injection (10 mg/kg) to six lactating cows and seven lactating goats and a continuous i.v. drip to five lactating goats. The same dose was administered as a 10% solution by intramammary infusion to five lactating goats. Blood and milk samples collected at various times after these treatments were assayed for the drug by a colorimetric method. Methylene blue, a highly charged molecule (pKa less than or equal to 1), passed readily from blood into milk; drug concentrations in milk 4-36 h after the single i.v. bolus injection were higher than those in blood. When examined at constant methylene blue levels in blood, a milk--blood ratio of 5:1 was observed. After intramammary infusion, the drug passed quickly into systemic circulation, peaked at 3 h and was still detectable in blood 12 h after infusion. The drug appeared in the urine within 15 min after intramammary infusion. The rapid movement of the drug across the blood--milk barrier cannot be explained on the basis of its known physicochemical properties or according to the pH--pKa passive diffusion concept.

Animals↗

Depletion of antibiotics from the mammary gland of goats.

Four intramammary infusion products were tested in 10 normal goats to determine their rates of depletion from milk. The products tested, which are marketed for treatment of mastitis in the bovine, contained the single active ingredient erythromycin, oxytetracycline, penicillin, or cephapirin. Each mammary gland was infused, after the goats were milked, with the maximum recommended dose of test product (dosing frequency and quantity) for administration to lactating dairy cattle. With one exception, no antibiotics could be detected in the milk by the end of the bovine milk-discard period. Penicillin was detectable in the milk of one goat for 72 h after the last dose of product containing this antibiotic was given (60-h withdrawal period). Only the product containing oxytetracycline produced significant adverse reactions in the mammary gland. The applicator tips of the products were too large for atraumatic insertion into the teat opening of some goats. Overall, results of this limited study indicated that some intramammary infusion products can be used to treat mastitis in the goat if instructions for use in the bovine are followed.

Animals↗

Clinical pharmacology of tiamulin in ruminants.

Median values for the minimum inhibitory concentrations (MIC) of tiamulin for Mycoplasma and Acholeplasma isolated from ruminants were 0.05 micrograms/ml and 0.025 micrograms/ml, respectively. These values were close to the MIC values of tylosin and considerably lower than the respective values for spectinomycin, Spiramycin and oxytetracycline. The serum concentration--time profile of tiamulin after intramuscular (i.m.) injection to goats, ewes, cows and calves, and after oral administration to preruminant calves was characterized by a rapid absorption phase (absorption t1/2 of less than 30 min.), a short plateau phase, an elimination t1/2 ranging between 3 and 6 h, and low peak serum drug levels. The serum elimination t1/2 of the drug after intravenous (i.v.) injection was 25 min. It appears that tiamulin is extensively metabolized in ruminants and is well distributed throughout the body. Drug concentrations in the lungs, liver, and the kidneys 1 h after i.v. injection were four to seven times higher than in blood. The drug penetrated very rapidly into the milk after i.m. administration; mean peak drug concentrations in normal milk and in milk secreted from inflamed glands of cows were 7.5 times and 1.2 times higher respectively, than the mean peak serum drug concentrations. Concentrations of tiamulin of potential therapeutic value in the treatment of mycoplasmal infections can be maintained in the lungs for at least 12 h after i.m. injection at 10 mg/kg, and in preruminant calves after an oral dose of 20 mg/kg. However, tiamulin possesses several very serious side-effects and the i.v. route of administration is definitely contraindicated.

Administration, Oral↗