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Transport of Tetraethylammonium in Renal Cortical Endosomes of Cadmium-Intoxicated Rats  

Park, Hee-Seok (Department of Physiology, Kosin University College of Medicine)
Kim, Kyoung-Ryong (Department of Physiology, Kosin University College of Medicine)
Park, Yang-Saeng (Department of Physiology, Kosin University College of Medicine)
Publication Information
The Korean Journal of Physiology and Pharmacology / v.6, no.1, 2002 , pp. 21-26 More about this Journal
Abstract
Effects of cadmium (Cd) intoxication on renal endosomal accumulation of organic cations $(OC^+)$ were studied in rats using $^{14}C-tetraethylammnium$ (TEA) as a substrate. Cd intoxication was induced by s.c. injections of 2 mg Cd/kg/day for $2{\sim}3$ weeks. Renal cortical endosomes were isolated and the endosomal acidification (acridine orange fluorescence change) and TEA uptake (Millipore filtration technique) were assessed. The TEA uptake was an uphill transport mediated by $H^+/OC^+$ antiporter driven by the pH gradient established by $H^+-ATPase.$ In endosomes of Cd-intoxicated rats, the ATP-dependent TEA uptake was markedly attenuated due to inhibition of endosomal acidification as well as $H^+/TEA$ antiport. In kinetic analysis of $H^+/TEA$ antiport, Vmax was reduced and Km was increased in the Cd group. Inhibition of $H^+/TEA$ antiport was also observed in normal endosomes directly exposed to free Cd (but not Cd-metallothionein complex, CdMt) in vitro. These data suggest that during chronic Cd exposure, free Cd ions liberated by lysosomal degradation of CdMt in proximal tubule cells may impair the endosomal accumulation of $OC^+$ by directly inhibiting the $H^+/OC^+$ antiporter activity and indirectly by reducing the intravesicular acidification, the driving force for $H^+/OC^+$ exchange.
Keywords
Cadmium; Kidney; Endosome; Organic cation; $H^+-ATPase$; $H^+/TEA$ antiport;
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1 Ahn DW, Park YS. Transport of inorganic phosphate in renal cortical brush-border membrane vesicles of cadmium-intoxicated rats. Toxicol Appl Pharmacal 133: 239-243, 1995
2 Friberg L. Health hazards in the manufacturer of alkaline accumulators with special reference to chronic cadmium poisoning. Acta Med Scand 138: supple 240: 1-124, 1950
3 Herak-Kramberger CM, Spindler B, Biber J, Murer H, Sabolic I. Renal type II Na/Pi-cotransporter is strongly impaired whereas the Na/sulphate-cotransporter and aquaporin 1 are unchanged in cadmium-treeated rats. Pflugers Arch Eur J Physiol 432: 336-344, 1996
4 Kim KR, Kim GC, Choi JS, Ahn DW, Park YS. Renal transport systems for organic anions and cations in cadmium-exposed rats. Toxicol Appl Pharmacol 149: 144-149, 1998
5 Kinsella JL, Holohan PD, Pessah NI, Ross CR. Transport of organic ions in renal cortical luminal and antiluminal membranes. J Phanncol Exp Ther 209: 443-459, 1979
6 Min KS, Kobayashi K, Onosaka S, Ohta N, Okada Y, Tanaka K. Tissue distribution of cadmium and nephropathy after administration of cadmium in several forms. Toxicol Appl Pharmacal 86: 262-270, 1986
7 Schroeder HA. Cadmium as a factor in hypertension. J Chronic Dis 18: 647-656, 1965
8 Squibb KS, Fowler BA. Intracellular metabolism and effects of circulating cadmium-metallothionein in the kidney. Environ Health Perspect 54: 31-35, 1984
9 Kazantzis G, Flynn FV, Spowage JS, Trott DG. Renal tubular malfunction and pulmonary emphysema in cadmium pigment workers. Quart J Med 32: 165-192, 1963
10 Kim KR, Lee HY, Kim CK, Park YS. Alteration of renal amino acid transport system in cadmium-intoxicated rats. Toxicol Appl Pharmacol 106: 102-111, 1990
11 Piscator M. Proteinuria in chronic cadmium poisoning. III. Electrophoretic and immunoelectorphoretic studies on urinary proteins from cadmium workers, with special reference to the excretion of low molecular weight proteins. Arch Environ Health 12: 335-344, 1966
12 Axelsson B, Piscator M. Renal damage after prolonged exposure to cadmium. An experimental study. Arch Environ Health 12:360-373, 1966
13 Fowler BA, Nordberg GF. The renal toxicity of cadmium metallothionein: Morphometric and X-ray microanalytical studies. Toxicol Appl Pharmacal 46: 609-623, 1978
14 Goyer RA, Tsuchiya K, Leonard DL, Kahyo H. Aminoaciduria in Japanese workers in the lead and cadmium industries. Am J Clin Pathol 57: 635-642, 1972
15 Takano I, Inui KI, Okano T, Saito H, Hori R. Carrier-mediated transport systems of tetraethylammonium in rat renal brushborder and basolateral membrane vesicles. Biochim Biophys Acta 773: 113-124, 1984
16 Nomiyama K, Nomiyama H, Yotoriyama M, Matsui K. Sodium dodecyl sulfate acrylamide gel electrophoretic studies of lowmolecular-weight proteinuria, an early sign of cadmium health effects in rabbits. Ind Health 20: 11-18, 1982
17 Foulkes EC. Role of metallothionein in transport of heavy metals. In: Foukes EC ed, Biological Roles of Metallothionein. Elsvier INorth Holland, New York, p 131-140, 1982
18 Kim MS, Kim KR, Ahn DW, Park YS. Cadmium inhibition of renal endosomal acidification. Kor J Physiol Pharmacal 4: 63-72, 2000
19 Nomiyama K, Nomiyama H. Critical concentration of 'unbound' cadmium in the rabbit renal cortex. Experientia 42: 149, 1986
20 Iwao S, Tsuchiya K, Sakurai H. Serum and urinary beta-2-microglobulin among cadmium-exposed workers. J Occup Med 22: 399-402, 1980
21 Pritchard J, Sykes DB, Walden R, Miller DS. ATP-dependent transport of tetraethylammonium by endosomes isolated from rat renal cortex. Am J Physiol 266: F966-F976, 1994
22 Bernard A, Buchet H, Roels H, Masson P, Lauwerys R. Renal excretion of proteins and enzymes in workers exposed to cadmium. Eur J Clin Invest 9: 11-12, 1979
23 Ott RJ, Hui AC, Yuan G, Giacomini KM. Organic cation transport in human renal brush-border membrane vesicles. Am J Physiol 261: F443-F451, 1991
24 Sabolic I, Burkhardt G. Characteristics of the proton pump in rat renal cortical endocytotic vesicles. Am J Physiol 250: F817-F826, 1986
25 Choi JS, Kim KR, Ahn DW, Park YS. Cadmium inhibits albumin endocytosis in OK renal epithelial cells. Toxicol Appl Pharmacal 161: 146-152, 1999
26 Dantzler WH, Brokl OH, Wright SH. Brush-border TEA transport in intact proximal tubules and isolated membrane vesicles. Am J Physiol 256: F 290-F297, 1989
27 Lee HY, Kim KR, Woo JS, Kim YK, Park YS. Transport of organic compounds in renal plasma membrane vesicles of cadmium intoxicated rats. Kidney Int 37: 727-735, 1990
28 Herak-Kramberger CM, Brown D, Sabolic I. Cadmium inhibits vacuolar H+-ATPase and endocytosis in rat kidney cortex. Kidney Int 53: 1713-1726, 1998
29 Sokol PP, Holohan PD, Ross CR. Electroneutral transport of organic cations in canine renal brush border membrane vesicles (BBMV). J Pharmacal Exper Ther 233: 694-699, 1985
30 Bernard A, Lauwerys R, Gengoux P. Characterization of the proteinuria induced by prolonged oral administration of cadmium in female rats. Toxicology 20: 345-347, 1981
31 Nomiyama K, Sugata Y, Yamamoto A, Nomiyama H. Effects of dietary cadmium on rabbits. I. Early signs of cadmium intoxication. Toxicol Appl Pharmacal 31: 4-12, 1975
32 Kim KR, Park YS. Phlorizin binding to renal outer cortical brushborder membranes of cadmium-injected rabbits. Toxicol Appl Pharmacol 133: 244-248, 1995
33 Dorian C, Gattone VH II, Klaasen CD. Accumulation and degradation of the protein moiety of cadmium-metallothionein (CdMT) in mouse kidney. Toxicol Appl Pharmacol 117: 242-248, 1992
34 Flick DF, Krayabill HF, Dimitroff JM. Toxic effect of cadmium. A review. Environ Res 4: 71-85, 1971
35 Gieske TH, Foulkes EC. Acute effects of cadmium on proximal tubular function in rabbits. Toxicol Appl Pharmacal 27: 292-299, 1974
36 Tsuchiya K. Production and use of cadmium in Japan. In: Tsuchiya K ed, Cadmium Studies in Japan: A Review. Kodensa, Tokyo and Elsveier/North Holland, Amsterdam, New York, Oxford, p 7-9, 1978
37 Sabolic I, Burkhardt G. ATP-driven proton transport in vesicles from the kidney cortex. Methods in Enzymol191: 505-520, 1990
38 Sabolic I, Haase W, Burkhardt G. ATP-dependent H+ pump in membrane vesicles from rat kidney cortex. Am J Physiol 248: F835-F844, 1985
39 Elinder CG, Nordberg M. Metallothionein. In: Friberg L, Elinder CG, Kjellstrom T, Nordberg GF ed, Cadmium and Health: A Toxicological and Epidemiological Appraisal. Vol 1. CRC Press, Boca Raton, FL, p 65-79, 1986
40 Nomiyama K, Sato C, Yamamoto A. Early signs of cadmium intoxication in rabbits. Toxicol Appl Pharmacal 24: 625-635, 1973
41 Smith PM, Pritchard JB, Miller DS. Membrane potential drives organic cation transport into teleost renal proximal tubules. Am J Physiol 255: R492-R499, 1988
42 Kim YK, Choi JK, Kim JS, Park YS. Changes in renal function in cadmium-intoxicated rats. Pharmacal & Toxicol 63: 342-350, 1988
43 Lee HY, Kim KR, Park YS. Transport kinetics of glucose and alanine in renal brush-border membrane vesicles of cadmiumintoxicated rabbits. Pharmacal & Toxicol 69: 390-395, 1991
44 Nordberg GF, Piscator M. Influence oflong-term cadmium exposure of urinary excretion of protein and cadmium in mice. Environ Physiol Biochem 2: 37-49, 1972
45 Squibb KS, Ridlington JW, Carmichael NG, Fowler BA. Early cellular effect of circulating cadmium-thionein in kidney proximal tubules. Environment Health Perspect 28: 287-296, 1979
46 Adams RG, Harrison JF, Scott P. The development of cadmiuminduced proteinuria, impaired renal function, and osteomalacia in alkaline battery workers. Quart J Med 38: 425-443, 1969
47 Bluementhal SS, Ren L, Lewanad DL, Kreizoski SK, Petering DH. Cadmium decreases SGLTI messenger RNA in mouse kidney cells. Toxicol Appl Phannacol 149: 49-54, 1998
48 Hopfer D, Nelson K, Perrotto I, Iseelbacher KJ. Glucose transport in isolated brush border membranes from rat small intestine. J Bioi Chern 248: 25-32, 1973