Original Article
Estimation of In-vitro Plasma Protein Binding of Ampicillin in Horses Based on Spectrophotometric Method
Year: 2020 | Month: June | Volume 10 | Issue 3
Andes, D. and Craig, W.A. 2002. Animal model pharmacokinetics and pharmaco-dynamics: a critical review. Int. J. Antimicrob. Agents, 19: 261-268.
View at Google ScholarAskal, H.F., Saleh, G.A. and Omer, N.M. 1991. Utility of certain pi-acceptors for the spectrophotometric determination of some penicillins. Analyst, 116: 387-395.
View at Google ScholarBaggot, J.D. and Prescott, J.F. 1987. Antimicrobial selection and dosage in the treatment of equine bacterial infections. Equine Vet. J., 19: 92-96.
View at Google ScholarBurns, D.T., O’Callaghan, M., Smyth, W.F. and Ayling, C.J. 1991. High-performance liquid chromatographic analysis of ampicillin and cloxacillin and its application to an intramammary veterinary preparation. Fresenius J. Anal. Chem., 340(1): 53–56.
View at Google ScholarCraig, W.A. and Kunin, C.M. 1976. Significance of serum protein and tissue binding of antimicrobial agents. Annu. Rev. Med., 27: 287-300.
View at Google ScholarDurr, A. 1976. Comparision of pharmacokinetics of penicillin G and ampicillin in horses. Res. Vet. Sci., 20(1): 24-29
View at Google ScholarGreenwood, D. 2008. Antimicrobial drugs: chronicle of a twentieth century medical triumph. Oxford University Press, Oxford, UK. p. 124.
View at Google ScholarGupta, A., Hammarlund-Udenaes, M., Chatelain, P., Massingham, R. and Jonsson, E.N. 2006. Stereoselective pharmacokinetics of cetirizine in the guinea pig: role of protein binding. Bio pharm. Drug. Dispos., 27(6): 291-297.
View at Google ScholarHaginaka, J., Junk, W., Hiroyuki, Y., Toyozo, U., Kouichi, T. and Toyoshi, K. 1987. High-performance liquid chromatographic determination of ampicillin and its metabolites in rat plasma, bile and urine by post-column degradation with sodium hypochlorite. J. Chromatogr. B., 400: 101-111.
View at Google ScholarHornish, R.E. and Kotarski, S.F. 2002. Cephalosporins in veterinary medicine-ceftiofur use in food animals. Curr. Top. Med. Chem., 2: 717-731.
View at Google ScholarMeijer, M.C., Van Weeren, P.R. and Rijkenhuizen, A.B.M. 2000. Clinical experiences of treating septic arthritis in the equine by repeated joint lavage: a series of 39 cases. J. Vet. Med., 47: 351-365.
View at Google ScholarPilloud, M. 1973. Pharmacokinetics, plasma protein binding and dosage of oxytetracycline in cattle and horse. Res. Vet. Sci., 15(2): 224-230.
View at Google ScholarSastry, C.S.P., Rao, S.G., Naidu, P.Y. and Srinivas, K.R. 1998. New spectrophotometric method for the determination of some drugs with iodine and wool fast blue. Talanta, 45: 1227-1235.
View at Google ScholarSingh, S.K., Sharma, S.K., Sidhu, R.K., Dumka, V.K. and Lamba, J.S. 2019. In-vitro plasma protein binding of marbofloxacin in healthy and disease condition of buffalo calves. J. Anim. Res., 9(1): 75-78.
View at Google ScholarSmith, J.W.G., De Grey, G.E. and Patel, V.J. 1967. The spectrophotometric determination of ampicillin. Analyst., 92: 247-252.
View at Google ScholarWilliam, A. and Petri, Jr. 2011. Penicillins, cephalosporins and other β-lactum antibiotics. In: Laurence Brunton, Bruce Chabner and Bjorn Knollman (eds) 2011. Goodman and Gilman’s The pharmacological basis of therapeutics 12th Edn. pp. 1477-1504. McGraw Hill, New York, USA.
View at Google ScholarWise, R., Gilette, A.P., Cadge, B., Duncham, S.R. and Baker, S. 1980. The influence of protein binding upon the tissue fluid levels of six beta-lactam antibiotics. J. Infect. Dis., 142: 17- 82.
View at Google ScholarYamada, H., Ichihashi, T., Hirana, K. and Kinoshita, H. 1981. Plasma protein binding and urinary excretion of R- and Sepimers of an aryl malonyl amino 1-oxacephen I in humans. J. Pharm. Sci., 70: 112-113.
View at Google ScholarZiv, G. and Sulman, F. G. 1972. Binding of antibiotics to bovine and ovine serum. Antimicrob. Agents. Chemother., 2(3): 206- 213.
View at Google Scholar



