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J Encke

Publications and source records attributed to J Encke.

25 records · Page 2Linked to original sources

Is a clinical application of hybrid liver support systems limited by an initial disorder in cellular amino acid and alpha-keto acid metabolism, rather than by later gradual loss of primary hepatocyte function?

The in-vitro amino acid (AA) and alpha-keto acid (KA) metabolism of bioreactors initially seeded with 2.5 x 10(9) pig hepatocytes was investigated with a perfusion technique. Considerable changes in the culture medium concentrations of AA and KA were measured during the first days in culture. This is indicative of dynamic cellular metabolism in the initial phase. While the concentration of pyruvate decreased starting on the first day, alpha-ketoglutarate, alpha-ketoisocaproate, alpha-ketoisovalerate, and alpha-keto-beta-methyl-n-valerate were synthesized. The long term use of hepatocyte cultures in bioreactors and thus a desirable clinical hybrid liver support therapy appears to be possible since the hepatocytes switched, after 15 days in culture, to steady-state conditions with a stable amino acid turnover featuring general AA uptake accompanied by KA release. The release of branched chain KA, in particular that of alpha-ketoisocaproate, reflects an effective transamination activity in the bioreactor system. Primary pig hepatocytes cultivated in hybrid liver support systems for therapy of acute liver failure or as devices for bridging to liver transplantation can sustain amino acid metabolism for at least 30 days in vitro. However, an initial disorder following the cell isolation that is demonstrated may limit immediate utilization of the systems prior to the reorganisation of the cells to tissue-like structures in bioreactors.

Amino Acids↗

Improved hepatocyte in vitro maintenance in a culture model with woven multicompartment capillary systems: electron microscopy studies.

Primary pig hepatocytes form a tissuelike structure in an in vitro culture model that has provision for three-dimensional cell orientation, cell aggregation, decentralized cell perfusion with low metabolite gradients, integral oxygenation, and nonparenchymal cell coculture. Scanning electron microscopy (SEM) has shown that hepatocytes spontaneously form aggregates in a three-dimensional structure between and on the surface of artificial capillaries. Transmission electron microscopy (TEM) has shown that after 7 weeks of in vitro perfusion, the cell ultrastructure remains similar to that of the parenchyma in vivo. Golgi complexes, active membrane processes, reorganization of cell junctions, and bile canaliculi-like intercellular spaces were demonstrated.

Animals↗

Bioreactor for a larger scale hepatocyte in vitro perfusion.

A bioreactor construction for hepatocytes and liver sinusoidal endothelial cells is described. The reactor is based on capillaries for hepatocyte immobilization. Four discrete capillary membrane systems, each serving different purposes, are woven to create a three-dimensional framework for decentralized cell perfusion with low metabolite gradients and decentralized oxygenation and CO2 removal. The biochemical performance of reactors initially seeded with 2.5 x 10(9) hepatocytes were evaluated over 3 weeks. On day 21, pig albumin synthesis was 4.7 mg/day, lidocaine metabolism was 813.7 +/- 23 micrograms/hr, galactose elimination was 210.1 +/- 3 mg/hr, and midazolam metabolism was 37.1 +/- 2 micrograms/hr. The specific construction of the reactor enables scale-up to hybrid liver support systems as extracorporeal bridging devices for liver transplantation.

Animals↗

Amino acid metabolism by hepatocytes in a hybrid liver support bioreactor.

The amino acid patterns of medium perfusate in a liver cell bioreactor developed for a hybrid liver support system have been measured. There were considerable changes in the concentrations of glutamic acid, glutamine, alanine, arginine, ornithine and branched chain amino acids during the first 10 days which is indicative of dynamic cellular metabolism. From day 15, steady state conditions of nitrogen metabolism are reflected by stable amino acid turnover. Monitoring of urea, K+, and P-450 activity suggests that hepatocytes have switched to a stable protein synthesis with a general amino acid uptake and keto acid release following cell volume increase.

Amino Acids↗

Alpha-keto acid metabolism by hepatocytes cultured in a hybrid liver support bioreactor.

Isolated pig liver cells cultured using a perfusion technique were analyzed over 39 days to test their ability to change the perfusate alpha-keto acid profile. While the pyruvate concentration in the culture medium decreased as of the first day, the alpha-ketoglutarate (KG), alpha-ketoisocaproate (KIC), alpha-ketoisovalerate (KIV) and alpha-keto-beta-methyl-n-valerate (KMV) were synthesized immediately and released by the liver cells. The metabolic capacity of the cell culture system increased up to day 10, decreased during the following 5 days and reached a steady state beyond day 15, which was maintained for at least 30 days. The branched chain alpha-keto acid release, in particular alpha-ketoisocaproate, reflects an effective transamination capacity of the newly developed culture system and shows an intact protein biosynthesis for at least 30 days in vitro.

Animals↗

[Cell culture model for hepatocyte culture in bioreactors for metabolic utilization in hybrid liver support system].

Hybrid systems with hepatocyte cultures in bioreactors are in development for therapeutical liver assistance. Here, a culture model with a special bioreactor construction was developed: Capillary membrane systems create a three dimensional artificial framework for hepatocyte adhesion, aggregation and reorganization of tissue structures. Many of small parallel capillary membrane units perfuse a few hepatocytes. Different capillary materials enable different functions. Cell perfusion between independent plasma inflow and outflow capillaries, independent oxygen supply and carbon dioxide removal as well as a co- culture with sinusoidal endothelial cells are possible. An in vitro study with bioreactors (n = 9), containing 2.5 x 10(9) pig hepatocytes was performed, measuring external metabolism of the cells: cytochrome P450-activity (midazolam metabolism, lidocaine/MEGX-test), synthesis (albumin), liver function test (galactose elimination) and cell alteration (LDH, GOT, GLDH, GPT, gamma GT) were investigated. The results demonstrate that external function of primary hepatocytes can be maintained over a period of at least three weeks.

Animals↗