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G Panol

Publications and source records attributed to G Panol.

9 recordsLinked to original sources

31P-NMR study of normoxic and anoxic perfused turtle heart during graded CO2 and lactic acidosis.

We studied the effects of graded acidosis (both CO2 and lactic acid) and anoxia on intracellular pH (pHi) regulation, high-energy phosphates, and mechanical function of isolated perfused hearts of the turtle (Chrysemys picta bellii) at 20 degrees C using 31P-nuclear magnetic resonance (NMR) spectroscopy. During CO2 acidosis, anoxia had no effect on apparent nonbicarbonate buffer value (d[HCO3-]/dpHi = 71 and 89 mM/pH in normoxia and anoxia, respectively) or on pHi regulation (dpHi/dpHe = 0.52 and 0.43 in normoxia and anoxia, respectively, where pHe is extracellular pH). During normoxic lactic acidosis, dpHi/dpHe was similar to the values observed in CO2 acidosis and averaged 0.55 overall. During anoxic lactic acidosis, however, similar regulation occurred over only a narrow range of pHe, and then dpHi/dpHe increased to greater than 1.0 at pHe less than 7.1. Creatine phosphate (CP), calculated as the area of the NMR peak, fell more in response to normoxic CO2 acidosis than to normoxic lactic acidosis; in anoxia, the fall in CP was further increased but to similar extreme levels (10-20% of control) in both acid perfusions. Cardiac output and maximum rate of pressure development each fell during acidosis in similar fashion in all protocols, and the responses were similar in normoxic and anoxic hearts. Heart rate, in contrast, decreased during acidosis, but this effect was more pronounced when hearts were anoxic. We conclude that the effect of acidosis on cardiac function can depend on the type of acidosis imposed. Based on the heart's insensitivity to anoxia alone, we suggest that anoxia may normally depress function indirectly via its effect on intracellular acid-base state.

Acidosis, Lactic

Artificial pancreas using living beta cells:. effects on glucose homeostasis in diabetic rats.

An artificial pancreas consisting of beta cells cultured on synthetic semipermeable hollow fibers was tested in rats with alloxan-induced diabetes. When implanted ex vivo as arteriovenous shunts in the circulatory system these devices lowered concentrations of plasma glucose from 533 to between 110 and 130 milligrams per 100 milliliters, increased concentrations of plasma insulin, and restored intravenous glucose tolerance tests essentially to normal.

Animals

Control of water flux in a bioartificial kidney.

UC-PK1 cells were grown to confluence on microporous microcellulose membranes in order to test the feasibility of using transmembrane pressure (TMP) for controlling connective water transport in a bioartificial kidney. TMP was applied on either the apical or basal aspect of the polarized cell layer, while the fluid compartments on both sides of the membrane were perfused with tissue culture medium in a miniature flow chamber. The cell monolayer did not allow filtration in the apical to basal direction when positive TMP up to 30 mmHg was applied on the apical side. Application of positive TMP on the basal side led to measurable ultrafiltration. The hydraulic permeability, L(p), of the cell-seeded membranes was found to be increasing with time, reaching a steady state value after 60 min. There was a strong positive correlation between L(p) and applied TMP. For a constant TMP, L(p) was found to be independent of the shear rate between 2.6 and 10.5 sec-1. When positive pressure was changed abruptly back from the basal to apical site, the ultrafiltration rate decreased to zero within seconds. Morphologic studies suggest that the tight junctions between cells were broken by TMP applied on the basolateral aspect of the cell monolayer. It is concluded that, basolateral TMP may be used to control water flux in a bioartificial kidney.

Animals

The bioartificial kidney: progress towards an ultrafiltration device with renal epithelial cells processing.

The combination of an ultrafiltration device with an exchanger whose semipermeable hollow fibres are covered with renal epithelial cells is proposed as a design for a bioartificial kidney. We first demonstrated that continuous ultrafiltration can be maintained for relatively long periods in the absence of anticoagulation. As a second step, we report here the feasibility of attaching and growing two lines of kidney epithelial cells (MDCK and LLC-PK1) on two different semipermeable materials, an acrylic copolymer and a polysulphone. Cells seeded on acrylic copolymer hollow fibres reach confluence within three weeks. Depending on the chemical and/or physical properties of the polymer, the cells show distinct differentiated morphology, which may influence their ability to perform specialized tasks.

Bioprosthesis