Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “ACIDOSIS”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 1,765 records · Page 98Linked to original sources

Regulation of vascular endothelial growth factor expression by acidosis in human cancer cells.

The influence of acidosis on the expression of the vascular endothelial growth factor (VEGF) gene was determined. FG human pancreatic adenocarcinoma cells were incubated for various time periods in media at a physiologically relevant pH level (6.7-7.4). The expression of VEGF mRNA and protein secretion was inversely correlated with pH in a pH- and time-dependent manner. Transient acidosis also activated the VEGF promoter/enhancer luciferase reporter, which was consistent with an increased VEGF gene transcription rate and VEGF mRNA half-life. These data indicated that acidosis transcriptionally and posttranscriptionally regulates VEGF expression, suggesting that an acidic tumor microenvironment contributes to tumor angiogenesis and progression.

3' Untranslated Regions↗

The mechanism of inhibition by acidosis of gluconeogenesis from lactate in rat liver.

1. Gluconeogenesis from lactate or pyruvate was studied in perfused livers from starved rats at perfusate pH7.4 or under conditions simulating uncompensated metabolic acidosis (perfusate pH6.7-6.8). 2. In 'acidotic' perfusions gluconeogenesis and uptake of lactate or pyruvate were decreased. 3. Measurement of hepatic intermediate metabolites suggested that the effect of acidosis was exerted at a stage preceding phosphoenolpyruvate. 4. Total intracellular oxaloacetate concentration was significantly decreased in the acidotic livers perfused with lactate. 5. It is suggested that decreased gluconeogenesis in acidosis is due to substrate limitation of phosphoenolypyruvate carboxykinase. 6. The possible reasons for the fall in oxaloacetate concentration in acidotic livers are discussed; two of the more likely mechanisms are inhibition of the pyruvate carboxylase system and a change in the [malate]/[oxaloacetate] ratio due to the fall in intracellular pH.

Animals↗

[Lactic acidosis in diabetics on biguanides (author's transl)].

A systematic search for cases of lactic acidosis among diabetics on biguanides revealed ten during an eight-month period, while in the preceding ten years not a single case had been definitely diagnosed. This represents a prevelance of 1 in 2000 patients admitted to hospital. All ten were over 60 years old and had previously been treated for heart failure. Most of them had suffered from renal insufficiency for some time. There was no case of biguanide overdosage. Criteria for the diagnosis of lactic acidosis are lactic concentration in blood averaging 18.4 mmol/l and a low pH, averaging 6.9. Serum-biguanide concentration (measured by radioimmuno-assay) was markedly increased. Most of the patients were in circulatory shock on admission or soon after and all of them had a history of gastro-intestinal complaints. Despite intensive treatment with insulin and glucose and careful correction of the acidosis with bicarbonate four of the ten patients died.

Biguanides↗

Attenuation of myocardial acidosis by propranolol during ischaemic arrest and reperfusion: evidence with 31P nuclear magnetic resonance.

31P nuclear magnetic resonance (NMR) spectroscopy was used to ascertain whether propranolol could reduce the development of myocardial acidosis during periods of ischaemic arrest and were studied. Cardiac pH progressively declined during ischaemia from a normal 6.97 +/- 0.02 (n = 23) to 6.09 +/- 0.04 or 5.96 +/- 0.04, respectively. Normalisation of pH following reperfusion occurred only in the 35 min ischaemic hearts. Propranolol (1 mg. litre-1) given prior to arrest significantly reduced the magnitude of developing acidosis regardless of the length of ischaemia. Furthermore, it aided in the normalisation of intramyocardial pH upon reperfusion in both groups. Propranolol significantly reduced the magnitude of phosphocreatine (PCr loss normally seen during ischaemic arrest alone, but it did not protect against depletion of ATP. Restoration of PCr reperfusion was virtually complete in all cases, while transient increases in ATP were seen only in those hearts protected by propranolol. In summary, this NMR study demonstrated the first direct evidence that a significant component of the myocardial acidosis caused by global ischaemia and arrest can be blocked by propranolol.

Adenosine Triphosphate↗

Glucose-insulin treatment of lactic acidosis in phenformin-treated diabetics.

Four cases of lactic acidosis in phenformintreated diabetics are presented. Blood lactate before treatment was 5.7, 9.4, 10.7 and 17.8 mM/1, respectively. Treatment with glucose, insulin and bicarbonate resulted in correction of acidosis and hyperlactataemia. This therapy is recommended in phenformin-induced lactic acidosis.

Aged↗

The contribution of intracellular acidosis to the decline of developed pressure in ferret hearts exposed to cyanide.

1. The concentrations of phosphorus-containing metabolites were measured using 31P nuclear magnetic resonance (n.m.r.) in Langendorff-perfused ferret hearts. The hearts were stimulated at a constant rate and developed pressure was measured. 2. The inhibition of oxidative phosphorylation with cyanide (2 mM) decreased developed pressure. This was accompanied by an intracellular acidosis, a fall in the concentration of phosphocreatine ([PCr]) and a rise in that of inorganic phosphate ([Pi]). 3. The effects of cyanide on developed pressure were compared with those of simply decreasing the intracellular pH (pHi) (by elevating CO2) to match the change produced by cyanide. The change of pHi alone resulted in about 33% of the decrease of force produced by cyanide. 4. The relationship between developed pressure and pHi was investigated by altering CO2. It could be described by an equation of the form:log developed pressure = a + b pHi where a and b were independent of pHi. The addition of cyanide decreased a but had no significant effect on b. In other words a given change of pHi had the same fractional effect on pressure in the absence as in the presence of cyanide. 5. In another series of experiments, after cyanide had been added, pHi was returned to control levels by decreasing CO2. This increased developed pressure. Nevertheless the pressure was still considerably less than in control. Furthermore, if the acidosis was abolished by decreasing CO2 at the same time as cyanide was added developed pressure still decreased. 6. We conclude that most of the decrease of developed pressure produced by cyanide is not produced by intracellular acidosis and may result from increased [Pi].

Animals↗

Inhibition of Ca(2+)-activated K+ currents by intracellular acidosis in isolated type I cells of the neonatal rat carotid body.

1. K+ and Ca2+ currents were recorded from enzymatically isolated type I cells of the neonatal rat carotid body, using the whole-cell configuration of the patch-clamp technique. The effects of intracellular acidosis, caused by bath application of anions of weak acids (propionate and acetate), were tested on these currents. 2. Bath application of propionate or acetate (10 or 20 mM) caused reversible reductions in K+ current amplitudes. These effects were maximal at low, positive test potentials where a shoulder in the current-voltage relationship occurs due to the activation of Ca(2+)-activated K+ currents. 3. Time-course studies showed propionate to cause a rapid initial reduction of K+ currents which recovered partially during its continued application. Removal of propionate produced small, transient overshoots of K+ current amplitudes. In the absence of propionate or acetate, bath application of the Na(+)-H+ exchange inhibitor amiloride caused slowly developing inhibition of K+ current amplitudes. 4. Changing extracellular pH from 7.4 to 8.0 increased K+ current amplitudes, but at this pHo propionate caused smaller reductions in K+ currents than at a pHo of 7.4. 5. In the presence of 0.1 mM-Cd2+, or in high-Mg2+ (6 mM), low-Ca2+ (0.1 mM) solutions, the residual, Ca(2+)-independent K+ currents were unaffected by 20 mM-propionate or acetate. 6. Ca2+ channel currents were also recorded, using 10 mM-Ba2+ as the charge carrier. These sustained currents were completely abolished by 0.1 mM-Cd2+ and were enlarged in the presence of 5 microM-Bay K 8644, suggesting that the currents passed through L-type Ca2+ channels. 7. Ca2+ channel currents were not significantly affected by intracellular acidosis caused by bath application of 10 mM-propionate or acetate. They were also unaffected by a reduction of the extracellular pH from 7.4 to 7.0. 8. It is concluded that intracellular acidosis selectively inhibits Ca(2+)-activated K+ currents in type I carotid body cells. The possible significance of this effect on chemotransduction in the intact carotid body is discussed.

Animals↗

Role of bicarbonate in pH recovery from intracellular acidosis in the guinea-pig ventricular myocyte.

1. Intracellular pH (pHi) was recorded ratiometrically in isolated guinea-pig ventricular myocytes using the pH-sensitive fluoroprobe, carboxy-SNARF-1 (carboxy-seminaphthorhodafluor). 2. Following an intracellular acid load (10 mM NH4 Cl removal), pHi recovery in HEPES-buffered Tyrode solution was inhibited by 1.5 mM amiloride (Na(+)-H+ antiport blocker). In the presence of amiloride, switching from HEPES buffer to HCO3-/CO2 (pHo of both solutions = 7.4) stimulated a pHi recovery towards more alkaline levels. 3. Amiloride-resistant, HCO(3-)-dependent pHi recovery was inhibited by removal of external Na+ (replaced by N-methyl-D-glucamine), whereas removal of external Cl- (replaced by glucuronate, leading to depletion of internal Cl-), removal of external K+, or decreasing external Ca2+ by approximately tenfold had no inhibitory effect. These results suggest that the amiloride-resistant recovery is due to a Na(+)-HCO3- cotransport into the cell. 4. The stilbene derivative DIDS (4,4'-diisothiocyanatostilbene-2,2'-disulphonic acid, 500 microM) slowed Na(+)-HCO(3-)-dependent pHi recovery. 5. Intracellular pH increased in Cl(-)-free solution and this increase still occurred in Na(+)-free solution indicating that it is not caused via Na(+)-HCO3- symport and is more likely to be due to Cl- efflux in exchange for HCO3- influx on a sarcolemmal Cl(-)-HCO3- exchanger. The lack of any significant pHi recovery from intracellular acidosis in Na(+)-free solution suggests that this exchanger does not contribute to acid-equivalent extrusion. 6. Possible voltage sensitivity and electrogenicity of the co-transport were examined by using the whole-cell patch clamp technique in combination with SNARF-1 recordings of pHi. Stepping the holding potential from -110 to -40 mV did not affect amiloride-resistant pHi recovery from acidosis. Moreover, following an intracellular acid load, the activation of Na(+)-HCO3- co-influx (by switching from HEPES to HCO3-/CO2 buffer) produced no detectable outward current (outward current would be expected if the coupling of HCO3- with Na+ were > 1.0). 7. Intracellular intrinsic buffering power (beta i) was assessed as a function of pHi (beta i computed from the decrease of pHi following reduction of extracellular NH4 Cl in amiloride-containing solution). beta i in the ventricular myocyte increases roughly linearly with a decrease in pHi according the following equation: beta i = -28(pHi) +222.6. 8. Comparison of acid-equivalent efflux via Na(+)-HCO3- symport and Na(+)-H+ antiport showed that, following an intracellular acidosis, the symport accounts for about 40% of total acid efflux, the other 60% being carried by the antiport.(ABSTRACT TRUNCATED AT 400 WORDS)

Amiloride↗

Acid production in diabetic acidosis; a more rational approach to alkali replacement.

The production of organic acids in severe diabetic acidosis was studied to determine the contribution of various acids and to reassess alkali requirements. In 11 patients the mean total concentration of determined organic acids was 16 mEq/l., while the mean estimated base deficit was 24 mEq/l. Acetoacetic and beta-hydroxybutyric acids accounted for 75% of measured organic acid. In 10 patients the mean amount of sodium bicarbonate administered for correction of the acidosis was 185 mEq, while the mean requirement was 394 mEq.These findings imply that the methods commonly used to determine the base deficit and the alkali requirements in patients with diabetic acidosis may be invalid. The prompt administration of alkali should be limited, and we suggest that the blood pH should be restored only to 7.25.

Acetoacetates↗

Effects of insulin on ventricular function in diabetic lambs with acidosis.

Diabetes mellitus (DM) was induced in 10 lambs by giving alloxan (150 mg/kg). Two to 4 days later, mean values for glucose were 748 mg/dl, and for arterial pH 7.25 (acute group). Two additional lambs were studied after 3 mo of DM (chronic group). Data were compared with 7 controls (glucose 128 mg/dl, pH 7.36). Left ventricular (LV) performance was assessed from function curves and measurements of LV dP/dtmax. Stroke volume ejected at LV end-diastolic pressure of 5 cmH2O (SV5) was calculated from regression analysis of each curve. SV5 averaged 2.83 +/- 0.34 ml in controls and 2.90 +/- 0.23 ml in the acute diabetics (not significant). Mean values for LV dP/dtmax also did not differ. A significant correlation was found between SV5 and LV weight (P less than 0.001). SV5 was normalized as ml/100 g LV, and average values for the three groups were identical. Insulin (10 U/kg) caused a progressive fall in SV5 in diabetics with severe acidosis (pH 7.00), but not in those with less acidosis (pH 7.28). In nondiabetics given lactic acid (pH 7.01), SV5 fell to 60% of initial values 1 h after insulin. Acidemic animals not given insulin showed no reduction in LV performance in the same time interval. Adrenergic support is necessary to prevent cardiac failure associated with acidosis. The present findings are ascribed to inhibition by insulin of catecholamine inotropic action on myocardium.

Animals↗

Troglitazone induces a cellular acidosis by inhibiting acid extrusion in cultured rat mesangial cells.

We studied the effect of troglitazone on cellular acid-base balance and alanine formation in isolated rat mesangial cells. Mesangial cells were grown to confluency in RPMI 1640 media on 30-mm chambers used to monitor both cellular pH using the pH-sensitive dye 2'7'-bis(2-carboxyethyl)-5,6-carboxyfluorescein and metabolic acid production as well as glutamine metabolism. Troglitazone (10 microM) induced a spontaneous cellular acidosis (6.95 +/- 0.02 vs. 7.47 +/- 0.04, respectively; P < 0.0001) but without an increase in lactic acid production. Alanine production was reduced 64% (P < 0.01) consistent with inhibition of the glutamate transamination. These findings pointed to a decrease in acid extrusion rather than an increase in acid production as the underlying mechanism leading to the cellular acidosis. To test their acid extrusion capabilities, mesangial cells were acid loaded with NH and then allowed to recover in Krebs-Henseleit media or in Krebs-Henseleit media minus bicarbonate (HEPES substituted), and the recovery response (Delta pH(i)/min) was monitored. In the presence of 10 microM troglitazone, the recovery response to the NH acid load was virtually eliminated in the bicarbonate-buffered media (0.00 +/- 0.001 vs. 0.06 +/- 0.02 pH(i)/min, P < 0.0001 vs. control) and reduced 75% in HEPES-buffered media (0.01 +/- 0.01 vs. 0.04 +/- 0.02 pH(i)/min, P < 0.002 vs. control). These results show that troglitazone induces a spontaneous cellular acidosis resulting from a reduction in cellular acid extrusion.

Acid-Base Equilibrium↗

Hypercapnic acidosis activates KATP channels in vascular smooth muscles.

ATP-sensitive K+ channels (KATP) couple intermediary metabolism to cellular activity, and may play a role in the autoregulation of vascular tones. Such a regulation requires cellular mechanisms for sensing O2, CO2, and pH. Our recent studies have shown that the pancreatic KATP isoform (Kir6.2/SUR1) is regulated by CO2/pH. To identify the vascular KATP isoform(s) and elucidate its response to hypercapnic acidosis, we performed these studies on vascular smooth myocytes (VSMs). Whole-cell and single-channel currents were studied on VSMs acutely dissociated from mesenteric arteries and HEK293 cells expressing Kir6.1/SUR2B. Hypercapnic acidosis activated an inward rectifier current that was K+-selective and sensitive to levcromakalim and glibenclamide with unitary conductance of approximately 35pS. The maximal activation occurred at pH 6.5 to 6.8, and the current was inhibited at pH 6.2 to 5.9. The cloned Kir6.1/SUR2B channel responded to hypercapnia and intracellular acidification in an almost identical pattern to the VSM current. In situ hybridization histochemistry revealed expression of Kir6.1/SUR2B mRNAs in mesenteric arteries. Hypercapnia produced vasodilation of the isolated and perfused mesenteric arteries. Pharmacological interference of the KATP channels greatly eliminated the hypercapnic vasodilation. These results thus indicate that the Kir6.1/SUR2B channel is a critical player in the regulation of vascular tones during hypercapnic acidosis.

ATP-Binding Cassette Transporters↗

Elevation of plasma somatolactin concentrations during acidosis in rainbow trout (Oncorhynchus mykiss)

Somatolactin (SL) is a putative pituitary hormone of the growth hormone (GH)/prolactin (PRL) family in fish; its physiological function has yet to be determined. Acidosis was induced in rainbow trout (Oncorhynchus mykiss) by exposure to acidic water (pH 4.5) or by exhaustive exercise, and plasma concentrations of SL, PRL and GH as well as other plasma parameters were examined. A decrease in blood pH was observed in fish from 1 day after water acidification until the end of the experiment at day 7. Plasma SL levels in the acid-exposed fish increased, reached a peak on day 1 and then returned to the initial level by day 4. No change was seen in plasma concentrations of PRL throughout the experiment. Plasma levels of GH, in contrast, decreased in the acid-exposed fish on days 2 and 4. Plasma cortisol levels in the acid-exposed fish were higher than the control level on days 4 and 7, although plasma cortisol levels did not increase above the initial level in response to water acidification. There was no significant change in the expression of SL-, PRL- and GH-mRNA in the pituitary gland. Levels of plasma Na+ and lactate were reduced 12 h after water acidification and remained low throughout the experiment. Exhaustive exercise in shallow water at neutral pH (7.5) resulted in a transient but pronounced acidosis, associated with increases in plasma SL, cortisol, Ca2+, phosphate and lactate levels. Plasma SL levels returned to the initial level along with the recovery of blood acid-base status. In contrast, plasma cortisol levels stayed elevated even 24 h after exercise. There was no correlation between plasma PRL and GH levels and blood pH. Elevation of plasma SL levels during acidosis suggests the possible involvement of SL in acid-base regulation in rainbow trout.

Journal Article↗

Effects of ketoacidosis on rat apolipoprotein A1 gene expression: a link with acidosis but not with ketones.

To determine if ketoacidosis contributes to reduced apolipoprotein A1 (apoA1) expression in insulin-deficient diabetic rats, we examined the regulation of apoA1 gene expression in response to changes in ambient pH or ketone body concentrations. Hepatic apoAI mRNA levels were reduced 42% in diabetic rats relative to nondiabetic controls (means+/-s.d.; 321.8+/-43.7 vs 438.7+/-58.8 arbitrary units; P<0.03). Neither endogenous apoA1 mRNA nor transcriptional activity of the rat apoA1 gene promoter (from -474 to -7) were altered by sodium butyrate or isobutyramide (0.3 mM to 10 mM) in Hep G2 or Caco-2 cells. Rat hepatic and intestinal apoA1 mRNA levels, and plasma apoA1 concentration, were not altered 24 h after isobutyramide administration (500 mg/kg by gavage). When the effect of altering ambient pH within a wide range commonly encountered in vivo was studied, acidosis (pH 6.7), relative to alkalosis (pH 7.9), decreased apoAI mRNA levels relative to glyceraldehyde-3-phosphate dehydrogenase mRNA by 47% in Hep G2 cells (P<0.025) and by 24% in Caco-2 cells (P<0.017). Acidosis did not alter cytomegalo virus (CMV)-beta-galactosidase activity, or the activity of the simian virus (SV40) early-region promoter, in either cell line transfected with the respective constructs. The lowering of ambient pH was associated with a graded reduction in apoAI promoter activity. At pH 6.7, apoAI promoter activity was reduced by 75% compared with promoter activity at pH 7.9. These observations indicate that acidosis, but not ketosis, contributes to the reduction in apoA1 expression during diabetic ketoacidosis by down-regulating apoAI promoter activity.

Amides↗

The mitochondrial myopathy encephalopathy, lactic acidosis with stroke-like episodes (MELAS) syndrome: a review of treatment options.

Mitochondrial encephalomyopathies are a multisystemic group of disorders that are characterised by a wide range of biochemical and genetic mitochondrial defects and variable modes of inheritance. Among this group of disorders, the mitochondrial myopathy, encephalopathy, lactic acidosis with stroke-like episodes (MELAS) syndrome is one of the most frequently occurring, maternally inherited mitochondrial disorders. As the name implies, stroke-like episodes are the defining feature of the MELAS syndrome, often occurring before the age of 15 years. The clinical course of this disorder is highly variable, ranging from asymptomatic, with normal early development, to progressive muscle weakness, lactic acidosis, cognitive dysfunction, seizures, stroke-like episodes, encephalopathy and premature death. This syndrome is associated with a number of point mutations in the mitochondrial DNA, with over 80% of the mutations occurring in the dihydrouridine loop of the mitochondrial transfer RNA(Leu(UUR)) [tRNA(Leu)((UUR))] gene. The pathophysiology of the disease is not completely understood; however, several different mechanisms are proposed to contribute to this disease. These include decreased aminoacylation of mitochondrial tRNA, resulting in decreased mitochondrial protein synthesis; changes in calcium homeostasis; and alterations in nitric oxide metabolism. Currently, no consensus criteria exist for treating the MELAS syndrome or mitochondrial dysfunction in other diseases. Many of the therapeutic strategies used have been adopted as the result of isolated case reports or limited clinical studies that have included a heterogeneous population of patients with the MELAS syndrome, other defects in oxidative phosphorylation or lactic acidosis due to disorders of pyruvate metabolism. Current approaches to the treatment of the MELAS syndrome are based on the use of antioxidants, respiratory chain substrates and cofactors in the form of vitamins; however, no consistent benefits have been observed with these treatments.

Humans↗

Effect of feed delivery fluctuations and feeding time on ruminal acidosis, growth performance, and feeding behavior of feedlot cattle.

Research was conducted to determine whether fluctuations in the amount of feed delivered and timing of feeding affect ruminal pH and growth of feedlot cattle. In Exp. 1, the effects of constant (C) vs. fluctuating (F) daily feed delivery on ruminal pH were assessed in a crossover experiment (two 28-d periods) involving six mature, ruminally cannulated steers. The diet consisted of 86.8% barley grain, 4.9% supplement, and 8.3% barley silage (DM basis) and was offered ad libitum for 2 wk to estimate DMI by individual steers. Steers in group C were offered a constant amount of feed daily equal to their predetermined DMI, whereas steers in group F were offered 10% more or less than their predetermined DMI on a rotating 3-d schedule. Ruminal pH of each steer was measured continuously via an indwelling electrode placed in the rumen during the last 6 d of each period. Mean pH tended to be lower (0.10 units) for F than C (5.63 vs. 5.73; P = 0.15), and ruminal pH of steers in group F tended to remain below 5.8 (P = 0.03) or 5.5 (P = 0.14) for greater proportions of the day than steers in group C. Inconsistent delivery of feed lowered ruminal pH, suggesting increased risk of subclinical acidosis. In Exp. 2, a 2 x 2 factorial was used to study the effects of pattern (C vs. F) and feeding time (morning [0900] vs. evening [2100]) on the feeding behavior and performance of 234 (310 +/- 23 kg) Charolais x Hereford beef steers during backgrounding and finishing phases over 209 d. One pen per treatment was equipped with a radio frequency identification (GrowSafe Systems Ltd., Airdrie, Canada) system that monitored bunk attendance by each steer throughout the trial. Pattern of feed delivery did not affect (P = 0.16) DMI (7.36 kg/d), ADG (1.23 kg/d), G:F (0.17), or time spent at the bunk (141 min/d), nor were pattern of feed delivery x time of feeding interactions observed (P = 0.18). Late feeding increased (P < 0.05) daily DMI (7.48 vs. 7.26 kg), ADG (1.28 vs. 1.00 kg/d), and G:F (0.21 vs. 0.15). These studies indicate that the risk of subclinical acidosis was increased with fluctuating delivery of feed, but the greater risk of acidosis did not impair growth performance by feedlot cattle. Consequently, daily intake fluctuations of 10% DMI or less that do not alter overall intake by feedlot cattle are unlikely to have any negative consequences on growth performance.

Animal Feed↗

[Characteristics of the dosage of sodium hydrocarbonate for correction of metabolic acidosis in surgical patients].

It has been established that in conditions of intraoperative blood and plasma loss base deficiency is determined not only by hypocarbonatemia, but also by hypoproteinemia, hypophosphatemia and HCO3 metabolism disturbances caused by anemia. Correction of metabolic acidosis in such patients should include infusions of NaHCO3, protein preparations, blood, phosphates. Mellemgaard and Astrup's technique presupposes correction of the deficiency of all buffer bases only with NaHCO3, which dramatically increases its dosage. Thus, it is evident that the technique should be revised. The comparison of the results of metabolic acidosis correction using a conventional and adapted techniques (hydrocarbonate dose in mmol or ml of a 8.4% solution is 24-SB.body weight.0.2%) in statistically homogeneous groups has shown that differentiated "polybuffer" correction of metabolic acidosis with adapted NaHCO3 dose 1.7 times more frequently normalized acid-base balance parameters, reducing the risk of the onset of post-correction metabolic alkalosis to minimum.

Acid-Base Imbalance↗

Potentiation of the depressant effects of lysophosphatidylcholine on contractile properties of cultured cardiac myocytes by acidosis and superoxide radical.

Lysophosphatidylcholine (LPC) accumulates in the heart during myocardial ischemia. This amphiphile accelerates Ca++ flux in cardiac myocytes and may mediate ischemic cell injury. In the present study, we evaluated the effects of LPC on the contractility of cultured neonatal rat heart cells. We also investigated the interactions between LPC and other prominent features of the ischemic milieu, acidosis, and superoxide radical. A photo-optical technique was used to measure the maximum velocities of shortening and relaxation (dS/dt and dR/dt) of cultured cells superfused with 0.1 to 100 mumol/L LPC. LPC, at all concentrations, initially increased dS/dt. After 1 minute, however, dS/dt decreased in a concentration-dependent manner in cells superfused with greater than 20 mumol/L LPC. The effect of LPC on relaxation was also dependent on LPC concentration. dR/dt increased at less than 40 mumol/L LPC but decreased at greater than or equal to 60 mumol/L LPC. Acidosis markedly potentiated LPC-mediated depression in dS/dt and dR/dt. In contrast, superoxide dismutase entirely prevented LPC-mediated depression of contractility. We conclude that whereas brief exposure to LPC stimulates contractility, prolonged exposure to greater than 40 mumol/L LPC depresses dS/dt and dR/dt in cultured myocytes. The depressant effects of LPC on contractility are potentiated by acidosis and superoxide radical. We postulate that LPC accumulation in the myocardium contributes to ischemia-mediated contractile dysfunction.

Animals↗