In vivo microperfusion of the ductuli efferentes testis of the rat: flow dependence of fluid reabsorption. 1996

J Clulow, and L A Hansen, and R C Jones
Department of Biological Sciences, University of Newcastle, NSW, Australia.

Individual ducts from the initial zone of the efferent ducts of the rat were microperfused in vivo using a double cannulation procedure, which allowed the recovery of perfused fluids for analysis and determination of the rate of fluid reabsorption from the perfused duct. The ducts were perfused at rates from 0.025 to 0.4 microliters min-1 with either Krebs-Ringer bicarbonate (KRB) solution or the native rete testis fluid (nRTF) that perfuses the ducts in situ. Reabsorption of KRB solution increased linearly with a perfusion rate of between 0.025 and 0.1 microliter min-1 (from 17.4 +/- 1.5 to 34.3 +/- 3.2 nl (10 mm duct)-1 min-1), then increased no further. Reabsorption of nRTF increased linearly between 0.025 and 0.2 microliters min-1 (from 17.7 +/- 1.5 to 61.4 +/- 13.5 nl (10 mm duct)-1 min-1) and then declined. The reabsorption rate from nRTF perfusates was significantly higher than from KRB perfusates. As a proportion of the luminal perfusate, reabsorption declined from 73.0 +/- 6.0 to 7.4 +/- 3.0% (10 mm duct)-1 for KRB solution and from 73.1 +/- 6.0 to 4.1 +/- 1.3% (10 mm duct)-1 for nRTF. There was no significant change in the concentration of either Na+ or Cl- in KRB solution or nRTF during perfusion through the efferent ducts, indicating that the reabsorption of these ions was isomolar. However, the reabsorption of K+ from nRTF occurred at a greater rate than that of water, and the initial [K+] declined from 17.2 +/- 0.4 mM in nRTF perfusates to 5.7 +/- 0.5 mM in collectates (perfusion rate, 0.1 microliter min-1) to achieve equilibrium with blood plasma (4.7 +/- 0.4 mM). The osmotic pressure of both KRB and nRTF perfusates equilibrated with blood plasma, indicating a high permeability of the epithelium to water. The results of this study provide further evidence that fluid reabsorption in the efferent ducts is isosmotic, or close to isosmotic, and have shown that, as in the homologous proximal kidney tubule, reabsorption is dependent on luminal flow rate. In contrast to the proximal tubule, however, reabsorption in the efferent ducts is not maintained as a constant proportion of the perfusion load. It is concluded that microperfusion in vivo provides a useful technique for studying fluid reabsorption in the efferent ducts of the rat.

UI MeSH Term Description Entries
D007687 Kidney Tubules, Proximal The renal tubule portion that extends from the BOWMAN CAPSULE in the KIDNEY CORTEX into the KIDNEY MEDULLA. The proximal tubule consists of a convoluted proximal segment in the cortex, and a distal straight segment descending into the medulla where it forms the U-shaped LOOP OF HENLE. Proximal Kidney Tubule,Proximal Renal Tubule,Kidney Tubule, Proximal,Proximal Kidney Tubules,Proximal Renal Tubules,Renal Tubule, Proximal,Renal Tubules, Proximal,Tubule, Proximal Kidney,Tubule, Proximal Renal,Tubules, Proximal Kidney,Tubules, Proximal Renal
D008297 Male Males
D009997 Osmotic Pressure The pressure required to prevent the passage of solvent through a semipermeable membrane that separates a pure solvent from a solution of the solvent and solute or that separates different concentrations of a solution. It is proportional to the osmolality of the solution. Osmotic Shock,Hypertonic Shock,Hypertonic Stress,Hypotonic Shock,Hypotonic Stress,Osmotic Stress,Hypertonic Shocks,Hypertonic Stresses,Hypotonic Shocks,Hypotonic Stresses,Osmotic Pressures,Osmotic Shocks,Osmotic Stresses,Pressure, Osmotic,Pressures, Osmotic,Shock, Hypertonic,Shock, Hypotonic,Shock, Osmotic,Shocks, Hypertonic,Shocks, Hypotonic,Shocks, Osmotic,Stress, Hypertonic,Stress, Hypotonic,Stress, Osmotic,Stresses, Hypertonic,Stresses, Hypotonic,Stresses, Osmotic
D010477 Perfusion Treatment process involving the injection of fluid into an organ or tissue. Perfusions
D011506 Proteins Linear POLYPEPTIDES that are synthesized on RIBOSOMES and may be further modified, crosslinked, cleaved, or assembled into complex proteins with several subunits. The specific sequence of AMINO ACIDS determines the shape the polypeptide will take, during PROTEIN FOLDING, and the function of the protein. Gene Products, Protein,Gene Proteins,Protein,Protein Gene Products,Proteins, Gene
D001826 Body Fluids Liquid components of living organisms. Body Fluid,Fluid, Body,Fluids, Body
D004543 Ejaculatory Ducts Paired ducts in the human male through which semen is ejaculated into the urethra. Duct, Ejaculatory,Ducts, Ejaculatory,Ejaculatory Duct
D004573 Electrolytes Substances that dissociate into two or more ions, to some extent, in water. Solutions of electrolytes thus conduct an electric current and can be decomposed by it (ELECTROLYSIS). (Grant & Hackh's Chemical Dictionary, 5th ed) Electrolyte
D000042 Absorption The physical or physiological processes by which substances, tissue, cells, etc. take up or take in other substances or energy.
D000818 Animals Unicellular or multicellular, heterotrophic organisms, that have sensation and the power of voluntary movement. Under the older five kingdom paradigm, Animalia was one of the kingdoms. Under the modern three domain model, Animalia represents one of the many groups in the domain EUKARYOTA. Animal,Metazoa,Animalia

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