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F Di Lisa

Publications and source records attributed to F Di Lisa.

61 records · Page 4Linked to original sources

[Effect and action mechanism of hypothermia to preserve the ischaemic myocardium (author's transl)].

The ability of hypothermia (34 degrees, 28 degrees) to preserve cardiac metabolism and performance during ischemia, was evaluated in the isolated Langendorff perfused rabbit heart. The hearts, isolated and perfused aerobically for 20', were made ischemic for 90' and their wall temperature maintained either at 37 degrees, 34 degrees and 28 degrees. The hearts were consequently reperfused at 37 degrees for 30'. Some of the hearts were frozen and assayed for ATP and CP. Others were homogenized and their mitochondria harvest, using either an EDTA free or an EDTA-containing extraction medium. The oxidative phosphorylating and ATP generating capacity of these mitochondria were established and their Ca++ content determined. The mechanical performance of the hearts, which were paced, was monitored by means of an intra-ventricular balloon filled with water and connected with a pressure transducer. The hearts that were made ischemic and maintained at 37 degrees were severely depleted in ATP and CP content, their mitochondria accumulated Ca++ and their oxidative phosphorylating activity was impaired. During reperfusion mitochondrial Ca++ was substantially increased, the capacity of the mitochondria to use O2 for state III respiration was further impaired and their ATP generating capacity reduced. Diastolic pressure increased and there was no recovery of the ability of the hearts to develop sistolic pressure. The hearts made ischemic and maintained at 28 degrees were protected. There was a less marked rise in mitochondrial Ca++ concentration after ischemia and during reperfusion; the mitochondria recovered the capacity of utilizing O2 and of generating ATP. That was coincident with and almost complete recovery of mechanical performance. Hypothermia at 34 degrees during ischemia provoked only a partial protection. These results are discussed in accordance with the hypothesis that hypothermia protects heart muscle against the deleterious effects of ischemia not only by reducing the metabolic requirement but also by maintaining intracellular homeostasis with respect to Ca++.

Adenosine Triphosphate↗

L-propionyl-carnitine protection of mitochondria in ischemic rat hearts.

The energy-linked processes (transmembrane potential and oxidative phosphorylation) resulted in impaired mitochondria isolated from ischemic perfused rat hearts. Addition of 1.5 mM L-propionyl-carnitine to the perfusate significantly reduced the ischemic damage and ameliorated mitochondrial Ca2+ homeostasis. In both normoxic and ischemic hearts perfused with L-propionyl-carnitine a consistent amount of propionyl-CoA-otherwise undetectable-was produced. L-propionyl-carnitine treatment also prevented the decrease of succinyl-CoA associated with the ischemic condition. These results and the decrease of myocardial acetyl-CoA induced by exogenous L-propionyl-carnitine points to the anaplerotic effect of this ester. The consequently improved flux in the tricarboxylic-acid cycle may account for the observed protection of mitochondrial functions afforded by L-propionyl-carnitine in the ischemic perfused hearts.

Acyl Coenzyme A↗

Mitochondrial energy production and cation control in myocardial ischaemia and reperfusion.

In the heart mitochondria exert two roles essential for cell survival: ATP synthesis and maintainance of Ca2+ homeostasis. These two processes are driven by the same energy source: the H+ electrochemical gradient (delta microH) which is generated by electron transport along the inner mitochondrial membrane. Under aerobic physiological condition mitochondria do not contribute to the beat to beat regulation of cytosolic Ca2+, although Ca2+ transient in mitochondrial matrix has been described. Increases in mitochondrial Ca2+ of mumolars concentration stimulate the Krebs cycle and NADH redox potential and, therefore, ATP synthesis. Under pathological conditions, however, mitochondrial Ca2+ transport and overload might cause a series of vicious cycles leading to irreversible cell damage. Mitochondrial Ca2+ accumulation causes profound alterations in permeability of the inner membrane to solutes, leading to severe mitochondrial swelling. In addition Ca2+ transport takes precedence over ATP synthesis and inhibits utilization of delta microH for energy production. These processes are important to understand the sequence of the molecular events occurring during myocardial reperfusion after prolonged ischaemia which lead to irreversible cell damage. During ischaemia an alteration of intracellular Ca2+ homeostasis occurs and mitochondria are able to buffer cytosolic Ca2+, suggesting that they retain the Ca2+ transporting capacity. Accordingly, once isolated, even after prolonged ischaemia, the majority of the mitochondria is able to use oxygen for ATP phosphorylation. When isolated after reperfusion, mitochondria are structurally altered, contain large quantities of Ca2+, produce excess of oxygen free radicals, their membrane pores are stimulated and the oxidative phosphorylation capacity is irreversibly disrupted. Most likely, reperfusion provides oxygen to reactivate mitochondrial respiration but also causes large influx of Ca2+ in the cytosol as result of sarcolemmal damage. Mitochondrial Ca2+ transport is therefore stimulated at maximal rates and, as consequence, the equilibrium between ATP synthesis and Ca2+ influx is shifted towards Ca2+ influx with loss of the ability of ATP synthesis.

Adenosine Triphosphate↗

Mitochondrial contribution in the progression of cardiac ischemic injury.

The multifaceted relationship between mitochondria and the rest of the cell is reviewed in the context of myocardial ischemia. Paradoxically, mitochondria can exacerbate the ischemic damage, especially at the onset of reperfusion. Indeed, the recovery of oxidative phosphorylation in the presence of an excessive energy demand is likely to represent a crucial factor in the ensuing irreversible damage of cardiomyocytes. A major role in the progression towards cell death might be attributed to the opening of the permeability transition pore, which besides abolishing mitochondrial ATP production might amplify the damage by causing NAD+ release. This damaging role is balanced by the contribution of mitochondria in self-defense mechanisms operating in the ischemic cardiomyocytes. The mitochondrial ATP-sensitive K+ channel and a slight increase in the production of reactive oxygen species appear to mediate the attempt of the heart to maintain its viability under conditions of acute and chronic ischemia. The significance of the various processes is discussed along with the critical evaluation of both the difficulties in studying mitochondria in situ and the possible sources of errors or misinterpretations.

Animals↗