Assessment of nephrotoxicity.
1982; Wiley; Volume: 13; Issue: 3 Linguagem: Inglês
10.1111/j.1365-2125.1982.tb01379.x
ISSN1365-2125
Autores Tópico(s)Drug Transport and Resistance Mechanisms
ResumoBritish Journal of Clinical PharmacologyVolume 13, Issue 3 p. 303-311 Free Access Assessment of nephrotoxicity. LF Prescott, LF PrescottSearch for more papers by this author LF Prescott, LF PrescottSearch for more papers by this author First published: March 1982 https://doi.org/10.1111/j.1365-2125.1982.tb01379.xCitations: 22AboutPDF ToolsRequest permissionExport citationAdd to favoritesTrack citation ShareShare Give accessShare full text accessShare full-text accessPlease review our Terms and Conditions of Use and check box below to share full-text version of article.I have read and accept the Wiley Online Library Terms and Conditions of UseShareable LinkUse the link below to share a full-text version of this article with your friends and colleagues. Learn more.Copy URL Share a linkShare onEmailFacebookTwitterLinkedInRedditWechat References ADDIS, T. (1948). Glomerular nephritis. Diagnosis and treatment. New York: Macmillan. Google Scholar BALAZS, T., HATCH, A., ZAWIDZKA, Z. & GRICE, H.C. (1963). Renal tests in toxicity studies on rats. Tox. appl. Pharmac., 5, 661–674. 10.1016/0041-008X(63)90010-3 CASPubMedWeb of Science®Google Scholar BEN-ISHAY, D. (1964). Aminoaciduria induced by salicylates. J. lab. clin. Med., 63, 924–932. CASPubMedWeb of Science®Google Scholar BERG, K.J. (1977). Acute effects of acetylsalicylic acid in patients with chronic renal insufficiency. Eur. J. clin. Pharmac., 11, 111–116. 10.1007/BF00562901 CASPubMedWeb of Science®Google Scholar BROWN, D.M. & HARDY, T.L. (1968). Short-term study of the effect of phenacetin, phenazone and amidopyrine on the rat kidney. Br. J. Pharmac. Chemother., 32, 17–24. 10.1111/j.1476-5381.1968.tb00424.x CASPubMedWeb of Science®Google Scholar BUCHT, G., WAHLIN, A., WENTZEL, T. & WINBLAD, B. (1980). Renal function and morphology in long-term lithium and combined lithium-neuroleptic treatment. Acta med. Scand., 208, 381–385. 10.1111/j.0954-6820.1980.tb01216.x CASPubMedWeb of Science®Google Scholar BURRY, A., CROSS, R. & AXELSEN, R. (1977). Analgesic nephropathy and the renal concentrating mechanism. Pathology Annual, 12, Part 2, 1–31. PubMedGoogle Scholar CHANTLER, C., GARNETT, E.S., PARSONS, V. & VEALL, N. (1969). Glomerular filtration rate measurement in man by the single injection method using: 31Cr-EDTA. Clin. Sci., 37, 169–180. PubMedWeb of Science®Google Scholar COPPEN, A., BISHOP, M.E., BAILEY, J.E., CATTELL, W.R. & PRICE, R.G. (1980). Renal function in lithium and non-lithium treated patients with affective disorders. Acta psychiat. scand., 62, 343–355. 10.1111/j.1600-0447.1980.tb00620.x CASPubMedWeb of Science®Google Scholar CURTIS, J.R. & DONOVAN, B.A. (1979). Assessment of renal concentrating ability. Br. med. J., 1, 304–305. 10.1136/bmj.1.6159.304 CASPubMedWeb of Science®Google Scholar DAVIES, D.F. & SHOCK, N.W. (1950). Age changes in glomerular filtration rate, effective renal plasma flow, and tubular excretory capacity in adult males. J. clin. Invest., 29, 496–507. 10.1172/JCI102286 CASPubMedWeb of Science®Google Scholar DAVIES, D.J. & KENNEDY, A. (1967). The excretion of renal cells following necrosis of the proximal convoluted tubule. Br. J. exp. Path., 48, 45–50. CASPubMedWeb of Science®Google Scholar de WARDENER, H.E. (1956). Vasopressin tannate in oil and the urine concentration test. Lancet, i, 1037–1038. 10.1016/S0140-6736(56)90801-7 Google Scholar DONKER, A.J.M., ARISZ, L., BRENTJENS, J.R.H., VAN DER HEM, G.K. & HOLLEMANS, H.J.G. (1976). The effect of indomethacin on kidney function and plasma renin activity in man. Nephron, 17, 288–296. 10.1159/000180733 CASPubMedWeb of Science®Google Scholar DOSSETOR, J.B. (1966). Creatininemia versus uremia. The relative significance of blood urea nitrogen and serum creatinine concentrations in azotemia. Ann. intern. Med., 65, 1287–1299. 10.7326/0003-4819-65-6-1287 CASPubMedWeb of Science®Google Scholar DUBACH, U.C. & JÖSCH, W. (1967). Urinenzyme nach medikamentoser Nierenreizung durch Salicylat. Schweiz. med. Wschr., 91, 1314–1317. Google Scholar EHRLICH, G.E. & WORTHAM, G.F. (1975). Pseudoproteinuria in tolmetin-treated patients. Clin. Pharmac. Ther., 17, 467–168. 10.1002/cpt1975174467 CASPubMedWeb of Science®Google Scholar FREDRIKSSON, A. (1975). Renal handling of β2-microglobulin in experimental renal disease. Scand. J. clin. lab. Invest., 35, 591–600. 10.3109/00365517509095785 CASPubMedWeb of Science®Google Scholar GALPIN, J.E., SHINABERGER, J.H., STANLEY, T.M., BLUMENKRANTZ, M.J., BAYER, A.S., FREIDMAN, G.S., MONTGOMERIE, J.Z., GUZE, L.B., COBURN, J.W. & GLASSOCK, R.J. (1978). Acute interstitial nephritis due to methicillin. Am. J. Med., 65, 756–765. 10.1016/0002-9343(78)90793-3 CASPubMedWeb of Science®Google Scholar GENT, A.E., TAYLOR, J.F.N. & BROOK, G.C.D. (1968). Effect of frusemide, lactose, and urea on urinary cell loss. Br. med. J., 4, 294–296. 10.1136/bmj.4.5626.294 CASPubMedWeb of Science®Google Scholar GOLDRING, W., CHASIS, H., RANGES, H.A. & SMITH, H.W. (1940). Relations of effective renal blood flow and glomerular filtration to tubular excretory mass in normal man. J. clin. Invest., 19, 739–750. 10.1172/JCI101179 CASPubMedWeb of Science®Google Scholar HARDING, S. & MUNRO, A.J. (1978). Frusemide and renal enzyme excretion. Br. med. J., 2, 1431. 10.1136/bmj.2.6149.1431-b CASPubMedWeb of Science®Google Scholar HARDY, T.L. (1970). Identification of cells exfoliated from the rat kidney in experimental nephrotoxicity. Ann. rheum. Dis., 29, 64–66. 10.1136/ard.29.1.64 CASPubMedWeb of Science®Google Scholar HAYES, D.M., CVITKOVIC, E., GOLBEY, R.B., SCHEINER, E., HELSON, L. & KRAKOFF, I.H. (1977). High dose cisplatinum diamine dichloride. Amelioration of renal toxicity by mannitol diuresis. Cancer, 39, 1372–1381. 10.1002/1097-0142(197704)39:4 3.0.CO;2-J CASPubMedWeb of Science®Google Scholar HOOK, J.B., McCORMACK, K.M. & KLUWE, W.M. (1979). Biochemical mechanisms of nephrotoxicity. Reviews in Biochemical Toxicology. eds E. Hodgson, J.R. Bend & R.M. Philpot, 1, 53–78. New York, North Holland: Elsevier. Web of Science®Google Scholar HOORNTJE, S.J., DONKER, A.J.M., PRINS, E.J.L. & WEENING, J.J. (1980). Membranous glomerulopathy in a patient on captopril. Acta. med. Scand., 208, 325–329. 10.1111/j.0954-6820.1980.tb01203.x CASPubMedWeb of Science®Google Scholar HUVAR, A. & SITAR, J. (1971). Zmeny hippuranove renograficte krivky po fenylbutazonu spofa. Vitrn. Lek., 17, 147–153. CASPubMedGoogle Scholar JACOBSEN, F.K., CRISTENSEN, C.K., MOGENSEN, C.E., ANDREASEN, F. & HEILSKOV, N.S.C. (1979). Pronounced increase in serum creatinine after eating cooked meat. Br. med. J., 1, 1049–1050. 10.1136/bmj.1.6170.1049 CASPubMedWeb of Science®Google Scholar JONES, B.R., BHALLA, R.B., MALDEK, J., KALEYA, R.N., GRALLA, R.J., ALCOCK, N.W., SCHWARTZ, M.K., YOUNG, C.W. & REIDENBERG, M.M. (1980). Comparison of methods of evaluating nephrotoxicity of cisplatinum. Clin. Pharmac. Ther., 27, 557–562. 10.1038/clpt.1980.79 CASPubMedWeb of Science®Google Scholar JÖSCH, W. & DUBACH, U.C. (1967). Einfluss der Diurese aufdie Enzymurie. Clin. Chim. Acta, 15, 325–330. 10.1016/0009-8981(67)90072-1 Web of Science®Google Scholar JÖSCH, W., DUBACH, U.C. & STROBEL, M. (1967). Der Einfluss des Urin-pHauf die Aktivität von Urinenzymen. Experientia, 23, 342–345. 10.1007/BF02144504 CASPubMedWeb of Science®Google Scholar KALKAY, N.M. (1977). Polyuric renal failure and hepatitis associated with methoxyflurane anesthesia. N. Y. State J. Med., 11, 2265–2269. Google Scholar KAMPMANN, J.P. & MØLHOLM HANSEN, J. (1981). Methods in Clinical Pharmacology: Glomerular filtration rate and creatinine clearance. Br. J. clin. Pharmac., 12, 7–14. 10.1111/j.1365-2125.1981.tb01848.x CASPubMedWeb of Science®Google Scholar KIMBERLY, R.P., BOWDEN, R.E., KEISER, H.R. & PLOTZ, P.H. (1978). Reduction of renal function by newer nonsteroidal anti-inflammatory drugs. Am. J. Med., 64, 804–807. 10.1016/0002-9343(78)90520-X CASPubMedWeb of Science®Google Scholar KUNIN, C.M., CHESNEY, R.W., CRAIG, W.A., ENGLAND, A.C. & DeANGELIS, C. (1978). Enzymuria as a marker of renal injury and disease: studies of N-acetyl-β-glucosaminidase in the general population and in patients with renal disease. Pediatrics, 62, 751–760. CASPubMedWeb of Science®Google Scholar LEE, M.R. (1981). Methods in Clinical Pharmacology: Effects of drugs on water metabolism. Br. J. clin. Pharmac., 12, 289–293. 10.1111/j.1365-2125.1981.tb01216.x CASPubMedWeb of Science®Google Scholar LEATHWOOD, P.D. & PLUMMER, D.T. (1969). The excretion of lactic dehydrogenase in human urine after the ingestion of aspirin. Biochem. J., 114, 197–202. CASPubMedWeb of Science®Google Scholar LEWIS, W.H. & ALVING, A.S. (1938). Changes with age in the renal function in adult men. Am. J. Physiol., 123, 500–515. CASGoogle Scholar LINDVALL, N. (1978). Radiological changes of renal papillary necrosis. Kidney Intermit., 13, 93–106. 10.1038/ki.1978.12 CASPubMedWeb of Science®Google Scholar MAGOS, L. & TANDON, S.K. (1979). Decreased nephrotoxic effect of mercuric chloride on the regenerating kidneys. Br. J. Pharmac., 66, 437P–8P. CASPubMedWeb of Science®Google Scholar MERLE, L.J., REIDENBERG, M.M., CAMACHO, M.T., JONES, B.R. & DRAYER, D.E. (1980). Renal injury in patients with rheumatoid arthritis treated with gold. Clin. Pharmac. Then, 28, 216–222. 10.1038/clpt.1980.153 CASPubMedWeb of Science®Google Scholar MILLER, J.H., McDONALD, R.K. & SHOCK, N.W. (1950). The effect of bacitracin on renal function. J. clin. Invest., 29, 389–395. 10.1172/JCI102270 CASPubMedWeb of Science®Google Scholar MITCHELL, J.R., McMURTRY, R.J., STATHAM, C.N. & NELSON, S.D. (1977). Molecular basis for several druginduced nephropathies. Am. J. Med., 62, 518–526. 10.1016/0002-9343(77)90407-7 CASPubMedWeb of Science®Google Scholar MONDORF, A.W., BREIER, J., HENDUS, J., SCHERBERICH, J.E., MACKENRODT, G., SHAH, P.M., STILLE, W. & SCHOEPPE, W. (1978). Effect of aminoglycosides on proximal tubular membranes of the human kidney. Eur. J. clin. Pharmac. 13, 133–142. 10.1007/BF00609758 CASPubMedWeb of Science®Google Scholar MONSON, J.P. & RICHARDS, P. (1978). Desmopressin urine concentration test. Br. med. J., 1, 24. 10.1136/bmj.1.6104.24 CASPubMedWeb of Science®Google Scholar NANRA, R.S. & KINCAIDSMITH, P. (1972). Chronic effects of analgesics on the kidney. Progr. Biochem. Pharmac., 7, 285–323. CASPubMedGoogle Scholar OLIVERO, J.J., LOZANO-MENDEZ, J., GHAFARY, E.M., EKNOYAN, G. & SUKI, W.N. (1975). Mitigation of amphotericin B nephrotoxicity by mannitol. Br. med. J., 1, 550–551. 10.1136/bmj.1.5957.550 CASPubMedWeb of Science®Google Scholar ONO, T., ETO, K. & ARAKAWA, K. (1968). Origin of urinary enzymes hydrolysing β-naphthylamides of L-leucine and L-glutamic acid. Clin. Chim. Acta, 19, 257–265. 10.1016/0009-8981(68)90334-3 CASPubMedWeb of Science®Google Scholar PESCE, A.T., HANENSON, I. & SETHI, K. (1977). β2-Microglobinuria in patients with nephrotoxicity secondary to mercuric chloride ingestion. Clin. Toxicol., 11, 309–315. 10.3109/15563657708989845 CASPubMedWeb of Science®Google Scholar PETERSON, P.A., EVRIN, P. E. & BERGGÄRD, I. (1969). Differentiation of glomerular, tubular and normal proteinuria: determinations of urinary excretion of β-microglobulin, albumin, and total protein. J. clin. Invest., 48, 1189–1198. 10.1172/JCI106083 CASPubMedWeb of Science®Google Scholar PRESCON, L.F. (1965). Effects of acetylsalicylic acid, phenacetin, paracetamol and caffeine on renal tubular epithelium. Lancet, ii, 91–96. 10.1016/S0140-6736(65)92216-6 Google Scholar PRESCO, I.T. L.F. (1966). The normal urinary excretion rates of renal tubular cells, leucocytes and red blood cells. Clin. Sci., 31. 425–435. PubMedGoogle Scholar PRESCOTF, L.F. (1979). Drug-induced renal disease—a clinical pharmacologist's view. Eur. J. Rheumatol. Inflamm., 5. 136–140. Google Scholar PRESCOTT, L.F. & ANSARI, S. (1969). The effects of repeated administration of mercuric chloride on exfoliation of renal tubular cells and urinary glutamic-oxaloacetic transaminase activity in the rat. Tox. appl. Pharmac., 14. 97–107. 10.1016/0041-008X(69)90169-0 CASPubMedWeb of Science®Google Scholar PRESCOTr, L.F. & BRODIE, D.E. (1964). A simple differential stain for urinary sediment. Lancet, ii, 940. 10.1016/S0140-6736(64)90867-0 Google Scholar PRICE, R.G., DANCE, N., RICHARDS, R. & CATTELL, W.R. (1970). The excretion of N-acetyl-β-glucosaminidase and β-galactosidase following surgery to the kidney. Clin. Chim. Acta, 27, 65–72. 10.1016/0009-8981(70)90375-X CASPubMedWeb of Science®Google Scholar PROCTER, R.A. & KUNIN, C.M. (1978). Salicylate-induced enzvmuria. Comparison with other anti-inflammatory agents. Am. J. Med., 65, 987–993. 10.1016/0002-9343(78)90751-9 PubMedWeb of Science®Google Scholar RAAB, W. (1969). Acetylsalicylic acid and the kidney. Helv. Med. Acta, 34, 498–502. CASPubMedWeb of Science®Google Scholar RAAB, W.P. (1972). Diagnostic value of urinary enzyme determinations. Clin. Chem., 18, 5–25. CASPubMedWeb of Science®Google Scholar RAAB, W. & HOHENEGGER, M. (1968). Renale Enzymasscheidung bei Ratten nach hohen Dosen von Penicillin, Kanamycin und Sulfonamiden. Clin. Chim. Acta, 20, 95–103. 10.1016/0009-8981(68)90390-2 CASWeb of Science®Google Scholar ROTHSTEIN, A. & BERKE, H. (1949). Aminoaciduria in uranium poisoning. I. The use of the aminoacid nitrogen to creatinine ratio in spot samples of urine. J. Pharmac. exp. Ther., 96, 179–187. CASPubMedWeb of Science®Google Scholar ROWE, J.W., ANDRES, R., TOBIN, J.D., NORRIS, A.H. & SHOCK, N.W. (1976). The effect of age on creatinine clearance in men: a cross-sectional and longitudinal study. J. Gerontol., 31, 155–163. 10.1093/geronj/31.2.155 CASPubMedWeb of Science®Google Scholar RUSSELL, G.I., BING, R.F., WALLS, J. & PETTIGREW, N.M. (1978). Interstitial nephritis in a case of phenylbutazone hypersensitivity. Br. med. J., i, 1322. 10.1136/bmj.1.6123.1322 Google Scholar SCHARDIJN, G., VAN EPS, L.W.S., SWAAK, A.J.G., KAGER, J.C.G.M. & PERSIJN, J.P. (1979). Urinary β-microglobulin in upper and lower urinary tract infections. Lancet, i, 805–807. 10.1016/S0140-6736(79)91320-5 CASGoogle Scholar SCHENTAG, J.J., CUMBO, T.J., JUSKO, W.J. & PLAUT, M.E. (1978a). Gentamicin tissue accumulation and nephrotoxic reactions. J. Am. med. Ass., 240, 2067–2069. CASPubMedWeb of Science®Google Scholar SCHENTAG, J.J., SUTFIN, T. A., PLAUT, M.E. & JUSKO, W.J. (1978b). Early detection of aminoglycoside nephrotoxicity with urinary beta-2-microglobulin. J. Med., 9, 201–210. CASPubMedWeb of Science®Google Scholar SCOTT, J.T., DENMAN, A.M. & DORLING, J. (1963). Renal irritation caused by salicylates. Lancet, i, 344–348. 10.1016/S0140-6736(63)91379-5 CASGoogle Scholar SMITH, H.W., FINKELSTEIN, N., ALIMINOSA, L., CRAWFORD, B. & GRABER, M. (1945). The renal clearances of substituted hippuric acid derivatives and other aromatic acids in dog and man. J. clin. Invest., 24, 388–404. 10.1172/JCI101618 CASPubMedWeb of Science®Google Scholar SMITH, H.W., GOLDRING, W. & CHASIS, H. (1938). The measurement of the tubular excretory mass, effective blood flow and filtration rate in the normal human kidney. J. clin. Invest., 17, 263–278. 10.1172/JCI100950 CASPubMedWeb of Science®Google Scholar STEELE, T.W., GYORY, A.Z. & EDWARDS, K.D.G. (1969). Renal function in analgesic nephropathy. Br. med. J., 2, 213–216. 10.1136/bmj.2.5651.213 CASPubMedWeb of Science®Google Scholar STOLLER, R.G., JACOBS, S.A., DRAKE, J.C., LUTZ, R.J. & CHABNER, B.A. (1975). Pharmacokinetics of high-dose methotrexate (NSC-740). Cancer Chemotherapy Reports, 6, 19–24. Web of Science®Google Scholar STROO, W.E. & HOOK, J.B. (1977). Enzymes of renal origin in urine as indicators of nephrotoxicity. Tox. appl. Pharmac., 39, 423–434. 10.1016/0041-008X(77)90135-1 CASPubMedWeb of Science®Google Scholar WALSHE, J.J. & VENUTO, R.C. (1979). Acute oliguric renal failure induced by indomethacin: possible mechanism. Ann. intern. Med., 91, 47–49. 10.7326/0003-4819-91-1-47 CASPubMedWeb of Science®Google Scholar WELLWOOD, J.M., LOVELL, D., THOMPSON, A.E. & TIGHE, J.R. (1976). Renal damage caused by gentamicin: a study of the effects on renal morphology and urinary enzyme excretion. J. Path., 118, 171–182. 10.1002/path.1711180307 CASPubMedWeb of Science®Google Scholar WELLWOOD, J.M., SIMPSON, P.M., TIGHE, J.R. & THOMPSON, A.E. (1975). Evidence of gentamicin nephrotoxicity in patients with renal allografts. Br. med. J., 3, 278–281. 10.1136/bmj.3.5978.278 CASPubMedWeb of Science®Google Scholar WRIGHT, P.J. & PLUMMER, D.T. (1974). The use of urinary enzyme measurements to detect renal damage caused by nephrotoxic compounds. Biochem. Pharmac., 23, 65–73. 10.1016/0006-2952(74)90314-1 CASPubMedWeb of Science®Google Scholar WRONG, O. & DAVIES, H.E.F. (1959). The excretion of acid in renal disease. Quart. J. Med., 28, 259–313. CASPubMedWeb of Science®Google Scholar Citing Literature Volume13, Issue3March 1982Pages 303-311 ReferencesRelatedInformation
Referência(s)