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D Grimaud

Publications and source records attributed to D Grimaud.

At least 19 recordsLinked to original sources

An evaluation of the brachial plexus block at the humeral canal using a neurostimulator (1417 patients): the efficacy, safety, and predictive criteria of failure.

UNLABELLED: To evaluate the efficacy and safety of the multiple peripheral nerve block technique at the humeral canal (humeral block) with the use of a neurostimulator, we prospectively studied 1417 patients undergoing upper limb surgery with a brachial plexus block at the humeral canal (1468 blocks). The success rate (defined as sensory block [in all nerve distributions] and/or the absence of another anesthetic technique required to allow surgery) was 95%. The threshold of minimal stimulation used to locate each nerve before injecting the anesthetic solution was the unique predictive factor for identified failure. For the median nerve, the threshold was 0.8 mA with a relative risk of failure (RRf: relative risk evaluated by series of Taylor with a 95% confidence interval) = 1.49 (P = 0.04), for the radial nerve the threshold was 0.6 mA (RRf 1.3, P = 0.02), and 0.7 mA for the ulnar nerve (RRf 1.36, P = 0.04). For any equal or higher stimulation level, the risk of failure of the humeral block increased. For the musculocutaneous nerve, we did not observe a significant stimulation threshold for the risk of failure; although beyond 0.7 mA, the RRf was always more than 1.3. Adverse events occurred in 7% of all cases and were usually minor (nausea/vomiting, anxiety, local pain). Our study provides supplementary information on the efficacy and safety of this technique. Stimulation thresholds are clinically identified for the first time as the main factor linked to the failure of a technique using a neurostimulator. We conclude that the humeral block is a reliable peripheral block allowing good success rates results with minor complications, which can be used as an alternative to the axillary block. IMPLICATIONS: We prospectively evaluated the feasibility and the factors causing failure of a peripheral nerve block technique (humeral block) using neurostimulation in a large number of patients. The importance of the level of stimulation for the success of the block was evaluated for the first time.

Adolescent↗

The increase in CO2 production induced by NaHCO3 depends on blood albumin and hemoglobin concentrations.

OBJECTIVE: To evaluate the origin of H+ ions participating in the generation of CO2 coming from sodium bicarbonate infusion during metabolic acidosis. We hypothesized that these H+ ions come from a back-titration of the main non-bicarbonate buffers present in the blood, i. e. the hemoglobin and the albumin, and thus postulated that the rate of CO2 release from a bicarbonate load is dependent on the concentration of these buffers. DESIGN: Prospective clinical and experimental study. SETTING: Surgical intensive care unit of a university hospital. PATIENTS AND MATERIAL: (1) Sixteen stable sedated and artificially ventilated critically ill patients with a mild base deficit. (2) Acidotic human blood (bicarbonate 5 mM, pH 7.0) of hematocrit 5, 10, 20 and 40% regenerated from a mixture of frozen fresh plasma and packed red blood cells. INTERVENTIONS PATIENTS: infusion of 1.5 mmol/kg sodium bicarbonate over 5 min. Regenerated blood: 25 mM sodium bicarbonate load. MEASUREMENTS AND RESULTS PATIENTS: continuous measurement of CO2 production (VCO2) on the expired gas using a metabolic monitor and arterial blood gas analysis before (T0), at the end (T5) and at 10, 30 and 60 min after the beginning of the bicarbonate infusion. The increase in VCO2 was 18 +/- 7% leading to a rise in PaCO2 from 39.6 +/- 2.3 at T0 to 46.2 +/- 2.7 mmHg at T5. The increases in VCO2 and in PaCO2 were significantly correlated to the albumin (r = 0.73, p < 0.005 and r = 0.70, p < 0.005, respectively) and to the hemoglobin (r = 0.51, p < 0.05 and r = 0.65, p < 0.01, respectively) concentrations. Regenerated blood: gas analysis 1 min after the bicarbonate load. The increase in PCO2 was closely related to the hematocrit (Ht) of the blood as it was 15.9 +/- 7.5 mmHg for Ht 5%, 29.0 +/- 9.6 for Ht 10%, 44.2 +/- 5.9 for Ht 20% and 71.0 +/- 3.5 for Ht 40% (n = 5 for each, p < 0.001). CONCLUSIONS: The importance of the release of CO2 from a bicarbonate load is dependent on the concentration of the blood non-bicarbonate buffers. It is therefore likely that the adverse effects of bicarbonate therapy linked to the CO2 generation are more important in patients with high blood albumin and hemoglobin concentrations.

Acidosis↗

Comparison of the renal effects of low to high doses of dopamine and dobutamine in critically ill patients: a single-blind randomized study.

OBJECTIVE: The renal effects of dopamine in critically ill patients remain controversial. Low-dose dobutamine has been reported to improve renal function. We compared the effects of various doses of dopamine and dobutamine on renal function in critically ill patients. DESIGN: Prospective, single-blind, randomized study. SETTING: University hospital, 19-bed multidisciplinary intensive care unit. PATIENTS: Twelve hemodynamically stable patients with mild nonoliguric renal impairment. INTERVENTIONS: Each patient randomly received four different doses of dopamine and dobutamine (placebo, 3, 7, and 12 microg/kg/min). Each infusion lasted for 4 hrs. Cardiac output and systemic hemodynamic variables were measured using a pulmonary arterial catheter at the beginning (HO) and the end (H4) of each infusion. The bladder was emptied at HO and H4 to determine urine volume and to collect samples. MEASUREMENTS AND MAIN RESULTS: The cardiac index increased significantly with both dopamine and dobutamine (p < .001). Mean arterial pressure (MAP) increased, with the maximum effect of 20% seen with 12-microg/kg/min dopamine infusion (p < .01). No change in MAP was seen with dobutamine. Dobutamine infusions did not change any renal variables. Conversely, all dopamine infusions significantly increased diuresis, creatinine clearance, and the fractional excretion of sodium (p < .01). Creatinine clearance increased from 61+/-16.9 (SD) mL/min to a maximum of 85.7+/-30 mL/min at the 7-microg/kg/min dose; fractional excretion of sodium increased from 0.26%+/-0.28% to a maximum of 0.62%+/-0.51% at the 12-microg/kg/min dose (p < .01). During dopamine infusions, there was a significant relationship between MAP and creatinine clearance (p = .018). CONCLUSIONS: At all doses studied, 4-hr infusions of dopamine significantly increased creatinine clearance, diuresis, and the fractional excretion of sodium in stable critically ill patients. Conversely, dobutamine did not modify these variables. Although the level of MAP might partially contribute to the improvement in renal variables, it is more likely that the activation of renal dopamine receptors played a prominent role.

Adrenergic beta-Agonists↗

Prolonged low-dose dopamine infusion induces a transient improvement in renal function in hemodynamically stable, critically ill patients: a single-blind, prospective, controlled study.

OBJECTIVE: To evaluate the length of the effects of long-term (48 hrs), low-dose dopamine infusion on both renal function and systemic hemodynamic variables in stable nonoliguric critically ill patients. DESIGN: Prospective, single-blind, controlled clinical study. SETTING: University hospital, 19-bed multidisciplinary intensive care unit. PATIENTS: Eight hemodynamically stable, critically ill patients with a mild nonoliguric renal impairment (creatinine clearance between 30 and 80 mL/min). INTERVENTIONS: Each patient consecutively received 4 hrs of placebo, followed by a 3 microg/kg/min dopamine infusion during 48 hrs, then a new 4-hr placebo period. We measured cardiac output and other hemodynamic variables by using a pulmonary artery catheter. The bladder was emptied to determine urine volume and to collect urine samples. Measurements were performed at six times: after the initial control of 4 hrs of placebo (C1); after 4 hrs (H4), 8 hrs (H8), 24 hrs (H24), and 48 hrs (H48) of dopamine infusion; and after the second control of 4 hrs of placebo (C2). MEASUREMENTS AND MAIN RESULTS: We saw no significant change in systemic hemodynamic variables with dopamine at all times of infusion. Diuresis, creatinine clearance, and the fractional excretion of sodium (FENa) at C1 and C2 were not different. Urine flow, creatinine clearance, and FENa increased significantly 4 hrs after starting dopamine (for all these changes, p < .01 vs. C1 and C2). The maximum changes were obtained at H8, with an increase of 50% for diuresis, 37% for creatinine clearance, and 85% for FENa (for all these changes, p < .01 vs. C1 and C2). But these effects waned progressively from H24, and both creatinine clearance and FENa at H48 did not differ from control values. CONCLUSIONS: In stable critically ill patients, preventive low-dose dopamine increased creatinine clearance, diuresis, and the fractional excretion of sodium without concomitant hemodynamic change. These effects reached a maximum during 8 hrs of dopamine infusion. But despite a slight persistent increase in diuresis, improvement in creatinine clearance and FENa disappeared after 48 hrs. According to these data, it is likely that tolerance develops to dopamine-receptor agonists in critically ill patients at risk of developing acute renal failure.

APACHE↗

Hypocapnia does not alter hepatic blood flow or oxygen consumption in patients with head injury.

OBJECTIVE: To evaluate the effects of hypocapnia on the systemic and hepatic circulations and oxygenation values in patients with head injury. DESIGN: Open-label, prospective study. SETTING: University hospital, department of anesthesiology and intensive care unit. PATIENTS: Eleven mechanically ventilated patients with isolated head trauma and stable hemodynamic status. INTERVENTIONS: At the beginning of the study, each patient presented with normocapnic ventilation. Mechanical hyperventilation was then adjusted to obtain stable hypocapnia over an interval of 24 hrs. Cardiac output and other systemic hemodynamic parameters were measured, using a pulmonary artery catheter. Hepatic parameters were measured via a catheter inserted into the hepatic vein. Total hepatic blood flow was determined by the Fick principle using a continuous infusion of indocyanine green. Arterial and hepatic venous blood gases were sampled to determine systemic and hepatic-splanchnic oxygenation. Measurements were done at the end of the four phases: a) 30 mins of normocapnia (N); b) 30 mins of hypocapnia (H0); c) 3 hrs of hypocapnia (H3); and d) 24 hrs of hypocapnia (H24). Intracranial pressure and cerebral perfusion pressure were hourly monitored throughout the study. MEASUREMENTS AND MAIN RESULTS: There were no significant changes in systemic hemodynamic parameters. The hepatic blood flow index did not differ from normocapnia (N 1.8 +/- 0.4 L/min/m2) to hypocapnia (H0 1.6 +/- 0.3 L/min/m2; H3 1.7 +/- 0.4 L/min/m2; H24 1.7 +/- 0.4 L/min/m2). The ratio of hepatic blood flow index to cardiac index remained stable throughout the study. Hypocapnia did not affect hepatic-splanchnic oxygen delivery and consumption. CONCLUSIONS: Hypocapnic hyperventilation does not alter hepatic hemodynamic parameters in patients with head injury. This result may be related to the lack of changes in cardiac output or in the hepatic vasoreactivity. Moreover, hypocapnia does not modify hepatic-splanchnic oxygenation. Thus, in case of intracranial hypertension, hypocapnia might be used without undesirable effect on the hepatic-splanchnic perfusion.

Adult↗

Mild hyperlactatemia in stable septic patients is due to impaired lactate clearance rather than overproduction.

A prospective study was conducted on 34 stable septic patients to determine whether mild hyperlactatemia is a marker of lactate overproduction or an indicator of lactate underutilization during sepsis. Plasma lactate clearance and lactate production were evaluated by modeling the lactate kinetic induced by an infusion of 1 mmol/kg L-lactate over 15 min. The patients were divided in two groups depending on their blood lactate: < or = 1.5 mmol/L (n = 20, lactate = 1.2+/-0.2 mmol/L) or > or = 2 mmol/L (n = 10, lactate = 2.6+/-0.6 mmol/L). The hyperlactatemic patients had a lower lactate clearance (473+/-102 ml/kg/h) than those with normal blood lactate (1,002+/-284 ml/kg/h, p < 0.001), whereas lactate production in the two groups was similar (1,194+/-230 and 1,181+/-325 micromol/kg/h, p = 0.90). A second analysis including all the patients confirmed that the blood lactate concentration was closely linked to the reciprocal of lactate clearance (r2 = 0.73, p < 0.001) but not to lactate production (r2 = 0.03, p = 0.29). We conclude that a mild hyperlactatemia occurring in a stable septic patient is mainly due to a defect in lactate utilization.

Adult↗

Reliability of anion gap as an indicator of blood lactate in critically ill patients.

OBJECTIVE: To evaluate the sensitivity, specificity, and predictive values of an elevated anion gap as an indicator of hyperlactatemia and to assess the contribution of blood lactate to the serum anion gap in critically ill patients. DESIGN: Prospective study. SETTING: General intensive care unit of a university hospital. PATIENTS: 498 patients, none with ketonuria, severe renal failure or aspirin, glycol, or methanol intoxication. MEASUREMENTS AND RESULTS: The anion gap was calculated as [Na+]-[Cl-]-[TCO2]. Hyperlactatemia was defined as a blood lactate concentration above 2.5 mmol/l. The mean blood lactate concentration was 3.7 +/- 3.2 mmol/l and the mean serum anion gap was 14.3 +/- 4.2 mEq/l. The sensitivity of an elevated anion gap to reveal hyperlactatemia was only 44% [95% confidence interval (CI) 38 to 50], whereas specificity was 91% (CI 87 to 94 and the positive predictive value was 86% (CI 79 to 90). As expected, the poor sensitivity of the anion gap increased with the lactate threshold value, whereas the specificity decreased [for a blood lactate cut-off of 5 mmol/l: sensitivity = 67% (CI 58 to 75) and specificity = 83% (CI 79 to 87)]. The correlation between the serum anion gap and blood lactate was broad (r2 = 0.41, p < 0.001) and the slope of this relationship (0.48 +/- 0.026) was less than 1 (p < 0.001). The serum chloride concentration in patients with a normal anion gap (99.1 +/- 6.9 mmol/l) was comparable to that in patients with an elevated anion gap (98.8 +/- 7.1 mmol/l). CONCLUSIONS: An elevated anion gap is not a sensitive indicator of moderate hyperlactatemia, but it is quite specific, provided the other main causes of the elevated anion gap have been eliminated. Changes in blood lactate only account for about half of the changes in anion gap, and serum chloride does not seem to be an important factor in the determination of the serum anion gap.

Acid-Base Equilibrium↗

[The internal environment and intracranial hypertension].

Intracranial pressure depends on cerebral tissue volume, cerebrospinal fluid volume (CSFV) and cerebral blood volume (CBV). Physiologically, their sum is constant (Monro-Kelly equation) and ICP remains stable. When the blood brain barrier (BBB) is intact, the volume of cerebral tissue depends on the osmotic pressure gradient. When it is injured, water movements across the BBB depend on the hydrostatic pressure gradient. CBV depends essentially on cerebral blood flow (CBF), which is strongly regulated by cerebral vascular resistances. In experimental studies, a decrease in oncotic pressure does not increase cerebral oedema and intracranial hypertension (ICHT). On the other hand, plasma hypoosmolarity increases cerebral water content and therefore ICP, if the BBB is intact. If it is injured, neither hypoosmolarity nor hypooncotic pressure modify cerebral oedema. Therefore, all hypotonic solutes may aggravate cerebral oedema and are contra-indicated in case of ICHT. On the other hand, hypooncotic solutes do not modify ICP. The osmotic therapy is one of the most important therapeutic tools for acute ICHT. Mannitol remains the treatment of choice. It acts very quickly. An i.v. perfusion of 0.25 g.kg-1 is administered over 20 minutes when ICP increases. Hypertonic saline solutes act in the same way, however they are not more efficient than mannitol. CO2 is the strongest modulating factor of CBF. Hypocapnia, by inducing cerebral vasoconstriction, decreases CBF and CBV. Hyperventilation is an efficient and rapid means for decreasing ICP. However, it cannot be used systematically without an adapted monitoring, as hypocapnia may aggravate cerebral ischaemia. Hyperthermia is an aggravating factor for ICHT, whereas moderate hypothermia seems to be beneficial both for ICP and cerebral metabolism. Hyperglycaemia has no direct effect on cerebral volume, but it may aggravate ICHT by inducing cerebral lactic acidosis and cytotoxic oedemia. Therefore, infusion of glucose solutes is contra-indicated in the first 24 hours following head trauma and blood glucose concentration must be closely monitored and controlled during ICHT episodes.

Acidosis, Lactic↗

[Fatal acute liver failure: a rare complication of exertion-induced heat stroke].

Liver injury is a well-known complication of exertional heat stroke. However severe acute irreversible liver dysfunction is rarely associated. Persistent centrolobular hepatocellular necrosis without any regeneration remains very uncommon. We report a case of fatal acute liver failure occurring after exertional heat stroke. Despite the conventional symptomatic treatment, especially active cooling, the patient experienced multiple organ failure with brain death 6 days after his admission. In this case, a chronic treatment with neuroleptic and anticholinergic agents may be considered as a predisposing factor.

Adult↗

Hepatic disposition of alfentanil and sufentanil in patients undergoing orthotopic liver transplantation.

Alfentanil and sufentanil are used in the anesthetic management of patients undergoing orthotopic liver transplantation (OLT) and are extensively metabolized by the liver. We examined the influence of OLT on the removal of these opioids. 14 patients undergoing OLT were given either alfentanil (40 micrograms/kg intravenous [IV] bolus) or sufentanil (5 micrograms/kg IV bolus) during the induction of anesthesia, followed by infusion during surgery (1 microgram.kg-1.min-1 alfentanil or 0.01 microgram.kg-1.min-1 sufentanil) and the postoperative period (0.5 microgram.kg-1.min-1 or 0.005 microgram.kg-1.min-1). A catheter was inserted into the hepatic vein to determine the drugs' hepatic extraction coefficient and hepatic clearance. The hepatic extraction coefficient was 0.14 for alfentanil and 0.35 for sufentanil. The total and hepatic clearance of alfentanil were similar, while the hepatic clearance of sufentanil was 50% of the total clearance (P < 0.05). The total clearance of alfentanil was significantly linked to its hepatic clearance (r2 = 0.81, P < 0.001). We conclude that the total clearance of sufentanil is greater than its hepatic clearance. This difference suggests that there is extrahepatic metabolism of sufentanil in patients undergoing OLT.

Adult↗

Effect of continuous venovenous hemofiltration with dialysis on lactate clearance in critically ill patients.

OBJECTIVE: To evaluate the effect of continuous venovenous hemofiltration with dialysis on lactate elimination by critically ill patients. DESIGN: Prospective, clinical study. SETTING: Surgical intensive care unit of a university hospital. PATIENTS: Ten critically ill patients with acute renal failure and stable blood lactate concentrations. INTERVENTIONS: Two-stage investigation: a) measurement of lactate concentrations in samples of serum and ultradiafiltrate from patients receiving continuous venovenous hemofiltration with dialysis to calculate lactate clearance by the hemofilter; b) evaluation of total plasma lactate clearance by infusing sodium L-lactate (1 mmol/kg of body weight) over 15 mins. MEASUREMENTS AND MAIN RESULTS: Arterial lactate concentration was determined before, during, and after the infusion. Lactate elimination variables were calculated from the plasma curve using model-independent and model-dependent estimates (by software). At the end of the infusion, median blood lactate concentration increased from 1.4 mmol/L (range 0.8 to 2.6) to 4.8 mmol/L (range 2.4 to 5.7) and returned to 1.6 mmol/L (range 0.9 to 3.4) 60 mins later. The median total plasma lactate clearance was 1379 mL/min (range 753.7 to 1880.7) and the median filter lactate clearance was 24.2 mL/min (range 7.1 to 35.6). Thus, filter lactate clearance accounted for < 3% of total lactate clearance. CONCLUSIONS: Continuous venovenous hemofiltration with dialysis cannot mask lactate overproduction, and its blood concentration remains a reliable marker of tissue oxygenation in patients receiving this renal replacement technique.

Acidosis, Lactic↗

Effects of two volatile anesthetics (sevoflurane and halothane) on the hypothalamic noradrenaline release in rat brain.

There are marked increases in noradrenaline (NA) release during emergence from general anesthesia induced with volatile anesthestics. These changes in NA in the posterior hypothalamus of the rat were assessed by intracranial microdialysis. Sevoflurane and halothane in equipotent concentrations were used to obtain the same depth of anesthesia. NA release increased similarly with the two agents during recovery. However, NA release remained elevated longer with halothane, from which recovery was also slower.

Analysis of Variance↗

Intravenous nicardipine does not alter hepatic blood flow after orthotopic liver transplant.

OBJECTIVE: To evaluate the effects of nicardipine on hepatic blood flow in patients with recent liver transplants. Secondly, to evaluate the liver extraction of nicardipine in order to determine the influence of liver transplantation on its disposition. DESIGN: Prospective self-controlled clinical study. SETTING: University hospital intensive care unit. PATIENTS: Eight patients in the early postoperative period of orthotopic liver transplantation. MEASUREMENTS AND RESULTS: Patients were given 5 mg of i.v. nicardipine. Systemic and splanchnic haemodynamic and metabolic parameters were measured before nicardipine administration (T0) and at 5 min (T1), 30 min (T2), and 120 min (T3) after administration. A catheter was inserted into a hepatic vein to determine the total hepatic blood flow (HBF) and the hepatic extraction coefficient of nicardipine. Nicardipine caused no significant changes in HBF, oxygen delivery, oxygen uptake, hepatic venous oxygen saturation, or the hepatic venous partial pressure of oxygen. Likewise, neither blood lactate concentrations nor arterial and hepatic venous lactate-pyruvate ratios were modified by nicardipine. The hepatic extraction coefficient of nicardipine was approximately 0.70 in the first 3 min after complete infusion, then decreased and remained stable at approximately 0.50, showing a non-linear first-pass metabolism pattern. CONCLUSIONS: Nicardipine administration after liver transplantation appears to have no deleterious effects on HBF. Nicardipine can be classified as a drug of intermediate hepatic extraction coefficient, whose elimination partly depends on hepatic enzyme activity.

Adult↗

[Transvascular fluid exchange disturbed by capillary injuries].

Fluid exchange disorders due to capillary lesions are numerous and their extent depends on the underlying disease as well as the capillary structure of the affected organ. The inflammatory cascade, triggered by sepsis or reperfusion injury, is mediated by several humoral mediators and activated blood cells. These include pro-inflammatory cytokines, arachidonic acid, proteases, oxygen free radicals, polymorphonuclears, procoagulant, complement and fibrinolytic system. The interaction between these mediators leads to a loss of endothelial integrity, a loss of basment membrane and a disruption of the interstitial matrix, with wasting of the endothelial cytoskeleton. The alteration in permeability induces transcapillary exudation of water and protein in the interstitial space, leading to organ dysfunction, mainly the lungs and splanchnic organs. Nitric oxyde, by modulating the response of the endothelium to the cellular interaction may protect against capillary injury. Capillary "stress lesions" following microvascular hypertension are the physiological basis of neurogenic or high altitude pulmonary oedema, and overinflation injury from mechanical ventilation. The anatomic specific features of the cerebral capillaries resulted in the well known concept of blood brain barrier with it's changeing morphology. Under the effect of humoral mediators and cellular interactions, the endothelial cells are able, via a calcium-mediated mechanism, to contract and to modify capillary permeability, leading to vasogenic oedema.

Body Fluid Compartments↗

[Transfusion of erythrocyte concentrates. An evaluation in anesthesia and intensive care].

OBJECTIVE: To assess the relevance of perioperative packed red blood cell (PRBC) transfusion practice at the University Hospital of Nice, compared with information from the consensus conference on red blood cell transfusion, held by the French Society of Anaesthesia and Intensive Care (SFAR) and the National Agency for the Development of Medical Evaluation (ANDEM) in December 1993. STUDY DESIGN: Retrospective case series analysis. PATIENTS: The study included 240 medical files of surgical patients, transfused in 1994 with PRBC, obtained by drawing of lots following a methodology recommended by ANDEM. METHOD: A reference list according to the statement of the consensus conference was designed for the various surgical specialities and the ICU in which PRBC had been transfused. It included the clinical and laboratory criteria which justified the transfusion, as well as the various categories of PRBC (phenotyped, cytomegalovirus negative, leukocyte-depleted, etc). Autotransfused PRBC were also considered. The data collected from the medical files of the 240 patients were compared with the reference list. RESULTS: In 84.6% of patients (203/240), the PRBC transfusion had been decided with reference either only to a haematocrit level below 0.27 or a level between 0.27 and 0.30 associated with clinical evidence of bad tolerance of blood loss, according to the reference list. A lack of compliance with the reference list occurred in 15.4% of patients (37/240), who had been transfused without any reference to a biological criterion. Another non compliance existed in 50% of patients (12/24) transfused with phenotyped PRBC and in 35.3% (6/17) of those transfused with leucocyte-depleted PRBC. An autotransfusion with PRBC had been carried out in 30.4% of patients (75/240). DISCUSSION: These deviations of transfusion practice from the consensus conference statement, which were more pronounced with phenotyped and leucocyte-depleted PRCB than conventional PRBC, resulted in the edition of a report, with an analysis of the causes of deviations and recommendations for all doctors of our institution prescribing blood transfusions. Another evaluation, extended also to the medical specialities of our hospital and including all blood derivates is planned for 1996.

Anesthesia↗

Effect of sodium bicarbonate on intracellular pH under different buffering conditions.

Previous in vitro studies have reported a paradoxical exacerbation of intracellular acidosis following bicarbonate therapy due to the generated CO2 entering the cytoplasm. However, these studies were conducted in nonphysiological Hepes-buffered media. We compared the effect of a sodium bicarbonate load on the intracellular pH (pHi) of hepatocytes placed in nonbicarbonate (NBBS) or bicarbonate (BBS) buffering systems. The pHi of isolated rat hepatocytes was measured using the fluorescent pH sensitive dye BCECF and a single-cell imaging technique. Cells were placed in medium buffered with HCO3-/CO2 or Hepes. All media were adjusted to pH 7 with L-lactic acid or HCl. An acute 45 mM sodium bicarbonate load was added to each medium and the changes in pHi were measured every three seconds for 90 seconds. The sodium bicarbonate load caused rapid cytoplasmic acidification of cells in NBBS (N = 50, P < 0.001). In contrast, hepatocytes in BBS underwent a marked increase in pHi (N = 50, P < 0.001) without any initial decrease in pHi. These differences were highly significant for the buffer (P < 0.01), but not for the acid used. We conclude that sodium bicarbonate exacerbates intracellular acidosis only in a NBBS. Hence, in vitro studies reporting a paradoxical intracellular acidosis following bicarbonate therapy cannot be extrapolated to the in vivo buffering conditions, and should not be used to argue against bicarbonate therapy.

Acidosis↗