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PMID: 6707203 Published · ppublish English Journal Article Research Support, U.S. Gov't, P.H.S.

Albumin absorption and catabolism by isolated perfused proximal convoluted tubules of the rabbit.

The Journal of clinical investigation ·Vol. 73 ·No. 3 ·1984-03-00 ·Pages 767-77

Park CH, Maack T

Abstract

Overall characteristics and kinetics of tubular absorption of albumin (Alb) were studied in isolated perfused proximal convoluted tubules of the rabbit. The fate of absorbed Alb was determined in tubules perfused with low [Alb]. Alb was labeled with tritium by reductive methylation ( [3H3C]Alb). At [Alb] = 0.03 mg/ml, approximately 80% of the absorbed [3H3C]Alb was released to the peritubular bathing solution as catabolic products. Transcellular transport of intact [3H3C]Alb was negligible. Iodoacetate (IAA, 4 mM) inhibited albumin absorption (JAlb) by greater than 95% and fluid reabsorption (JV) by 55%. At [Alb] = 0.1 mg/ml the absorption rate of a derivatized cationic Alb (pI = 8.4) was fivefold greater (P less than 0.01) than that of anionic Alb. Higher cationic [Alb] had deleterious effects on tubular functions. Overall Alb absorption was of high capacity and low affinity (JmaxAlb = 3.7 ng/min per mm tubule length, apparent Michaelis constant (Km) = 1.2 mg/ml). A low capacity system that saturates at near physiological loads was also detected (JmaxAlb = 0.064 ng/min per mm, apparent Km = 0.031 mg/ml). High [Alb] did not alter the rate of endocytic vesicle formation as determined by the tubular uptake of [14C]inulin. Results show that Alb absorption is a saturable process that is inhibited by high IAA concentrations and is affected by the charge of the protein. Absorbed Alb is hydrolyzed by tubular cells and catabolic products are readily released to the peritubular side. The dual kinetics of Alb absorption may be due to a combination of adsorptive endocytosis (low capacity system) and fluid endocytosis of albumin aggregates (high capacity system). Results indicate that albuminuria occurs much before albumin absorption is saturated. The kinetic characteristics of the process of tubular absorption of albumin helps to explain the concomitance of albuminuria, increased renal catabolic rates of albumin, and renal cell deposition of protein absorption droplets in severe glomerular proteinurias.

MeSH Terms
Absorption Animals Cations Endocytosis Inulin/metabolism Kidney Tubules, Proximal/metabolism Kinetics Rabbits Serum Albumin, Bovine/metabolism Tritium
Chemicals
Cations Tritium Serum Albumin, Bovine Inulin
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Park C H
Maack T
References (30)
30 references, click to expand
  1. Absorption of I-125-labeled homologous albumin by rat kidney proximal tubule cells. A study of microperfused single proximal tubules by electron microscopic autoradiography and histochemistry.
    J Ultrastruct Res. 1966 Jun;15(3):197-241 PMID: 5940574
  2. A method for the quantitative modification and estimation of carboxylic acid groups in proteins.
    J Biol Chem. 1967 May 25;242(10):2447-53 PMID: 6026234
  3. Control of fluid absorption in the renal proximal tubule.
    J Clin Invest. 1968 Sep;47(9):2016-24 PMID: 4300070
  4. Micropuncture study of concentration and fate of albumin in rat nephron.
    Am J Physiol. 1970 Aug;219(2):358-63 PMID: 5448064
  5. Micropuncture studies of proximal tubule albumin concentrations in normal and nephrotic rats.
    J Clin Invest. 1971 Jul;50(7):1498-505 PMID: 5090064
  6. Serum albumin uptake in isolated perfused renal tubules. Quantitative and electron microscope radioautographic studies in three anatomical segments of the rabbit nephron.
    J Cell Biol. 1972 Aug;54(2):382-98 PMID: 4339280
  7. Micropuncture study of tubular transport of albumin in rats with aminonucleoside nephrosis.
    Kidney Int. 1972;1(1):3-11 PMID: 5075945
  8. A role for anionic sites in epithelial architecture. Effects of cationic polymers on cell membrane structure.
    J Cell Biol. 1973 Mar;56(3):787-96 PMID: 4687916
  9. Micropuncture study of albumin transfer in aminonucleoside nephrosis in the rat.
    Pediatr Res. 1973 Jun;7(6):553-9 PMID: 4708973
  10. Proteinuria.
    Am J Med. 1974 Jan;56(1):71-82 PMID: 4588641
  11. Renal handling of low molecular weight proteins.
    Am J Med. 1975 Jan;58(1):57-64 PMID: 1090151
  12. Effect of angiotensin on the filtration of protein in the rat kidney: a micropuncture study.
    Kidney Int. 1975 Aug;8(2):80-7 PMID: 1160230
  13. Subunit structure and isozymic forms of gamma-glutamyl transpeptidase.
    Proc Natl Acad Sci U S A. 1976 Aug;73(8):2599-603 PMID: 8776
  14. Filtration of protein in the anti-glomerular basement membrane nephritic rat: a micropuncture study.
    Kidney Int. 1976 Dec;10(6):425-37 PMID: 1011537
  15. Micropuncture studies of the filtration and absorption of albumin by nephrotic rats.
    Kidney Int. 1977 Jan;11(1):9-17 PMID: 839656
  16. Reabsorption of filtered cadmium-metallothionein in the rabbit kidney (39883).
    Proc Soc Exp Biol Med. 1977 Oct;156(1):97-9 PMID: 909899
  17. Renal extraction, filtration, absorption, and catabolism of growth hormone.
    Am J Physiol. 1977 Sep;233(3):F185-96 PMID: 910912
  18. Transport and catabolism of parathyroid hormone in isolated rat kidney.
    Am J Physiol. 1977 Nov;233(5):F445-54 PMID: 920813
  19. Plasma protein handling in the rat kidney: micropuncture experiments in the acute heterologous phase of anti-GBM-nephritis.
    Pflugers Arch. 1978 Aug;375(3):269-77 PMID: 567796
  20. Renal filtration, transport, and metabolism of low-molecular-weight proteins: a review.
    Kidney Int. 1979 Sep;16(3):251-70 PMID: 393891
  21. Isoelectric point of albumin: effect on renal handling of albumin.
    Kidney Int. 1979 Sep;16(3):366-76 PMID: 529683
  22. Tritium labeling of proteins to high specific radioactivity by reduction methylation.
    J Biol Chem. 1980 Sep 25;255(18):8842-7 PMID: 6773951
  23. Effect of molecular charge on endocytic uptake of ferritin in renal proximal tubule cells.
    Lab Invest. 1981 Apr;44(4):351-8 PMID: 7206630
  24. Acute renal failure induced by diethylaminoethyl dextran: importance of cationic charge.
    Kidney Int. 1981 Mar;19(3):424-30 PMID: 6165855
  25. Sodium-calcium interactions in the renal proximal convoluted tubule of the rabbit.
    Am J Physiol. 1981 Jun;240(6):F558-68 PMID: 6787932
  26. Inhibition of renal accumulation of lysozyme (basic low molecular weight protein) by basic proteins and other basic substances.
    Pflugers Arch. 1981 Jun;390(3):211-5 PMID: 7196018
  27. Kinetics, competition, and selectivity of tubular absorption of proteins.
    Am J Physiol. 1982 Oct;243(4):F379-92 PMID: 7124951
  28. Cellular mechanisms of protein metabolism in the nephron. I. The structural aspects of proteinuria; tubular absorption, droplet formation, and the disposal of proteins.
    J Exp Med. 1954 Jun 1;99(6):589-604 PMID: 13163329
  29. ALBUMIN METABOLISM IN AMINONUCLEOSIDE NEPHROTIC RATS.
    J Lab Clin Med. 1963 Dec;62:910-34 PMID: 14082047
  30. THE PROTEIN CONCENTRATION IN THE PROXIMAL TUBULE OF THE DOG.
    J Clin Invest. 1964 May;43:916-21 PMID: 14169520
Article Info
Journal
The Journal of clinical investigation
Abbr.
J Clin Invest
ISSN
0021-9738
Published
1984-03-00
Pages
767-77
Language
English
Region
United States
NLM ID
7802877
PMCID
PMC425079
Subset
IM
Grants
NIADDK NIH HHS · 5T32 AM-07152 · United States
NIADDK NIH HHS · AM-14241 · United States
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