Mitochondrial dysfunction and cytoskeletal disruption during chemical hypoxia to cultured rat hepatic sinusoidal endothelial cells: The pH paradox and cytoprotection by glucose, acidotic pH, and glycine
Open Access
- 1 April 1998
- journal article
- research article
- Published by Wolters Kluwer Health in Hepatology
- Vol. 27 (4) , 1039-1049
- https://doi.org/10.1002/hep.510270420
Abstract
We investigated mechanisms underlying death of cultured rat liver sinusoidal endothelial cells exposed to chemical hypoxia with KCN (2.5 mmol/L) to simulate the adenosine triphosphate (ATP) depletion and reductive stress of anoxia. During chemical hypoxia, acidotic pH prevented cell death. Glucose (0.3-10 mmol/L) also prevented cell killing. Cytoprotection by glucose but not acidosis was associated with prevention of ATP depletion. After 4 hours of chemical hypoxia at pH 6.2 (simulated ischemia), rapid cell death occurred when pH was restored to pH 7.4 with or without washout of KCN (simulated reperfusion). This pH-dependent reperfusion injury (pH paradox) was prevented after KCN washout at pH 6.2. Glycine (0.3-3 mmol/L) also prevented the pH paradox, but glucose did not. The initial protection by acidotic pH and glycine during simulated reperfusion was lost when pH was later restored to 7.4 or glycine was subsequently removed. Mitochondria depolarized during chemical hypoxia. After washout of cyanide, mitochondrial membrane potential (△Ψ) did not recover in cells that subsequently lost viability. Conversely, those cells that repolarized after cyanide washout did not subsequently lose viability. The actin cytoskeleton and focal adhesions became severely disrupted during chemical hypoxia at both pH 6.2 and 7.4 and did not recover after cyanide washout under any condition. Glucose during chemical hypoxia prevented cytoskeletal disruption. In conclusion, endothelial cell damage during simulated ischemia/reperfusion involves mitochondrial dysfunction, ATP depletion, and ATP-dependent cytoskeletal disruption. Glycine and acidotic pH prevented cell killing after reperfusion but did not reverse mitochondrial injury or the profound disruption to the cytoskeleton.Keywords
This publication has 47 references indexed in Scilit:
- Cytoprotection of kidney epithelial cells by compounds that target amino acid gated chloride channelsKidney International, 1996
- Strychnine and Glycine Protect Renal Proximal Tubules from Various Nephrotoxicants and Act in the Late Phase of Necrotic Cell InjuryToxicology and Applied Pharmacology, 1994
- Injury to cultured liver endothelial cells during cold preservation: energy-dependent versus energy-deficiency injuryTransplant International, 1993
- Ischemic Injury in Liver Transplantation: Difference in Injury Sites Between Warm and Cold Ischemia in RatsHepatology, 1992
- The mitochondrial megachannel is the permeability transition poreJournal of Bioenergetics and Biomembranes, 1992
- Protection by acidotic pH against anoxia/reoxygenation injury to rat neonatal cardiac myocytesBiochemical and Biophysical Research Communications, 1991
- CAROLINA RINSE SOLUTION—A NEW STRATEGY TO INCREASE SURVIVAL TIME AFTER ORTHOTOPIC LIVER TRANSPLANTATION IN THE RATTransplantation, 1991
- A pH-dependent phospholipase A2 contributes to loss of plasma membrane integrity during chemical hypoxia in rat hepatocytesBiochemical and Biophysical Research Communications, 1991
- Protection by acidotic pH and fructose against lethal injury to rat hepatocytes from mitochondrial inhibitors, ionophores and oxidant chemicalsBiochemical and Biophysical Research Communications, 1990
- Preparation of isolated liver endothelial cells and Kupffer cells in high yield by means of an enterotoxinExperimental Cell Research, 1984