Abstract
In this study we use the multiple indicator dilution technique to outline the kinetic mechanisms underlying the uptake of rubidium, a cation which, in the steady state, is concentrated by hepatic parenchymal cells. We inject a mixture of (51)Cr-labeled red blood cells (a vascular reference substance), (22)Na (which is confined to the extracellular space, the expected extravascular distribution space for rubidium, in the absence of cellular uptake), and (86)Rb into the portal vein and obtain normalized outflow patterns, expressed as outflowing fractions of each injected mass per milliliter vs. time. The labeled red cell curve rises to the highest and earliest peak and decays rapidly. That for labeled sodium rises to a later and lower peak, and decays less rapidly. Its extrapolated recovery is equal to that for the red cells. The observed (86)Rb curve consists of two parts: an early clearly defined peak of reduced area, related to the (22)Na peak in timing; and a later tailing, obscured by recirculation, so that total outflow recovery cannot be defined (even though it would be expected to be the same). We model the concentrative uptake of (86)Rb and find two corresponding outflow fractions: throughput material, which sweeps past the cell surface as a wave delayed with respect to the vascular reference (tracer which has not entered cells); and exchanging material (tracer which has entered cells and later returns to the circulation). We find that the outflow form of the rubidium curve, the presence of both a relatively clearly defined throughput component and a relatively prolonged low-in-magnitude tailing, is consequent to the concentrative character of the transport mechanism, to the presence of an influx rate constant many times the efflux rate constant. The modeling which we develop is general, and has potential application in situations where transport is nonconcentrative.
MeSH Terms
Animals
Biological Transport, Active
Cell Membrane Permeability
Chromium Isotopes
Dogs
Erythrocytes/metabolism
Extracellular Space
Liver/blood supply,metabolism
Liver Circulation
Microcirculation
Models, Biological
Portal Vein
Radioisotope Dilution Technique
Rubidium/metabolism
Sodium Isotopes/metabolism
Time Factors
Chemicals
Chromium Isotopes
Sodium Isotopes
Rubidium
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Goresky C A
Bach G C
Nadeau B E
References (25)
25 references, click to expand
-
Capillary exchange modeling. Barrier-limited and flow-limited distribution.
Circ Res. 1970 Nov;27(5):739-64
PMID: 4922275
-
Liver circulation and function.
Physiol Rev. 1963 Jan;43:115-213
PMID: 14015033
-
INITIAL DISTRIBUTION AND RATE OF UPTAKE OF SULFOBROMOPHTHALEIN IN THE LIVER.
Am J Physiol. 1964 Jul;207:13-26
PMID: 14193577
-
Two hepatic cytoplasmic protein fractions, Y and Z, and their possible role in the hepatic uptake of bilirubin, sulfobromophthalein, and other anions.
J Clin Invest. 1969 Nov;48(11):2156-67
PMID: 4980931
-
A comparison of the distribution of potassium and exchangeable rubidium in the organs of the dog, using rubidium.
Circ Res. 1954 Mar;2(2):112-22
PMID: 13141374
-
Cation accumulation by muscle tissue: the displacement of potassium by rubidium and cesium in the living animal.
J Clin Invest. 1957 Aug;36(8):1249-56
PMID: 13463088
-
Muscle blood flow and 86Rb extraction: 86Rb as a capillary flow indicator.
Am J Physiol. 1968 Mar;214(3):488-93
PMID: 5638980
-
Transport of potassium-42 from blood to tissue in isolated mammalian skeletal muscles.
Am J Physiol. 1959 Dec;197:1205-10
PMID: 14437359
-
Mathematical considerations of indicator dilution techniques.
Minn Med. 1954 Feb;37(2):93-104
PMID: 13132705
-
The physics of blood flow in capillaries. I. The nature of the motion.
Biophys J. 1961 Sep;1:565-79
PMID: 14488985
-
A method for simultaneous catheterization of major hepatic vessels in a chronic canine preparation.
Am J Physiol. 1959 Feb;196(2):311-4
PMID: 13627169
-
INDICATOR TRANSIT TIME CONSIDERED AS A GAMMA VARIATE.
Circ Res. 1964 Jun;14:502-15
PMID: 14169969
-
Transcapillary exchange of water and of other substances in certain organs of the dog.
Am J Physiol. 1955 Nov;183(2):221-34
PMID: 13268666
-
Intrahepatic distribution of hepatic blood flow: single-input studies.
Am J Physiol. 1970 May;218(5):1474-9
PMID: 5438276
-
A comparison of the metabolism of rubidium 86 and potassium 42 following simultaneous injection into man.
Am J Med Sci. 1956 Aug;232(2):186-93
PMID: 13339792
-
A linear method for determining liver sinusoidal and extravascular volumes.
Am J Physiol. 1963 Apr;204:626-40
PMID: 13949263
-
A convection-diffusion model of indicator transport through an organ.
Circ Res. 1968 Feb;22(2):273-98
PMID: 4867209
-
Theoretical model of capillary exchange incorporating interactions between capillaries.
Am J Physiol. 1971 Jan;220(1):250-5
PMID: 5538659
-
The rate of disappearance of Rb86 from the plasma, the biologic decay rates of Rb86, and the applicability of Rb86 as a tracer of potassium in man with and without chronic congestive heart failure.
J Lab Clin Med. 1955 Mar;45(3):371-94
PMID: 14354325
-
THE PERMEABILITY OF CAPILLARIES IN VARIOUS ORGANS AS DETERMINED BY USE OF THE 'INDICATOR DIFFUSION' METHOD.
Acta Physiol Scand. 1963 Aug;58:292-305
PMID: 14078649
-
EFFECT OF CORRECTION OF CATHETER DISTORTION ON CALCULATED LIVER SINUSOIDAL VOLUMES.
Am J Physiol. 1964 Oct;207:883-92
PMID: 14220080
-
Capillary, interstitial, and cell membrane barriers to blood-tissue transport of potassium and rubidium in mammalian skeletal muscle.
Circ Res. 1972 May;30(5):588-607
PMID: 5026760
-
Indicator dilution measurements of extravascular water in the lungs.
J Clin Invest. 1969 Mar;48(3):487-501
PMID: 4886314
-
Applications of the lagged normal density curve as a model for arterial dilution curves.
Circ Res. 1966 Apr;18(4):398-415
PMID: 4952948
-
Intrahepatic distribution of hepatic blood flow: double-input studies.
Am J Physiol. 1970 May;218(5):1480-8
PMID: 5438277