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Daniel Doberer

Publications and source records attributed to Daniel Doberer.

6 recordsLinked to original sources

Vasoactive intestinal peptide gene alterations in patients with idiopathic pulmonary arterial hypertension.

Pulmonary arterial hypertension is a progressive disease, characterised by increased proliferation of pulmonary artery smooth muscle cells, vasoconstriction and remodelling of the vascular wall leading to right heart failure and death. The idiopathic form is rare (idiopathic arterial primary hypertension (IPAH); formerly PPH, MIM# 178600). Our group correlated a deficiency in vasoactive intestinal peptide (VIP; MIM# 192320) levels in serum and lung tissue with the pathogenesis of IPAH. The aim of this study was to investigate the relevance of genetic alterations in VIP to the development of IPAH. We screened 10 patients (age 4-66 years) for alterations in the coding, the noncoding regions and the enhancer region of the VIP gene by direct sequencing. In eight of 10 patients, we found alterations compared to the wild-type sequence. We detected nine alterations. In the noncoding regions, eight alterations were in the introns 1, 2, 3 and 4 (g.448G>A g.501C>T g.764T>C g.2267A>T g.2390C>T g.3144T>C g.3912A>G g.4857A>G). In the coding regions, a single alteration in the 3' untranslated region in exon 7 (g.8129T>C) was observed in five patients. It appeared in 46% of the control group. The frequency of this alteration in the coding region of the VIP gene could therefore not be correlated with the appearance of IPAH. Apart from the importance of VIP signalling, genetic and/or environmental modifiers might therefore contribute to the development and perpetuation of the disease.

3' Untranslated Regions↗

The acidifying effect of lactate is neutralized by the alkalinizing effect of hypoalbuminemia in non-paracetamol-induced acute liver failure.

BACKGROUND/AIMS: Hyperlactatemia with unexplained absence of metabolic acidosis is observed in acute liver failure. In chronic liver disease offsetting metabolic acid-base disorders could be revealed by means of physical-chemical acid-base analysis. The purpose of this study was to determine whether the acidifying effect of lactate is neutralized by the alkalinizing effect of hypoalbuminemia in acute liver failure. METHODS: Serial arterial blood samples of 46 consecutive patients with non-paracetamol-induced acute liver failure were studied after admission to a medical ICU in a prospective investigation and compared to healthy controls. Acid-base state was assessed by quantitative physical-chemical analysis. RESULTS: Lactate was increased and albumin was decreased in patients with acute liver failure compared to healthy controls resulting in normal net metabolic acid-base state. The alkalinizing effect of hypoalbuminemia was neutralized by the acidifying effect of elevated lactate. This observation was confirmed in serial analysis during 5 days after admission. CONCLUSIONS: The acidifying effect of lactate is neutralized by the alkalinizing effect of hypoalbuminemia in non-paracetamol-induced acute liver failure. The absence of apparent metabolic acidosis in the presence of elevated lactate can be explained by means of the physical-chemical acid-base model.

Acetaminophen↗

Equilibrium of acidifying and alkalinizing metabolic acid-base disorders in cirrhosis.

BACKGROUND AND AIMS: Conflicting results exist with regard to metabolic acid-base status in liver cirrhosis, when the classic concept of acid-base analysis is applied. The influence of the common disturbances of water, electrolytes and albumin on acid-base status in cirrhosis has not been studied. The aim of this study was to clarify acid-base status in cirrhotic patients by analyzing all parameters with possible impact on acid-base equilibrium. PATIENTS AND METHODS: Fifty stable cirrhotic patients admitted to a university hospital. Arterial acid-base status was analyzed using the principles of physical chemistry and compared with 10 healthy controls. RESULTS: Apart from mild hypoalbuminemic alkalosis, acid-base state was normal in Child-Pugh A cirrhosis. Respiratory alkalosis was the net acid-base disorder in Child-Pugh B and C cirrhosis with a normal overall metabolic acid-base state (Base excess-1.0 (-3.6 to 1.6) vs 1.1 (-0.2 to 1.1) mmol/l, P = 0.136, compared with healthy controls, median (interquartile range)). Absence of an apparent metabolic acid-base disorder was based on an equilibrium of hypoalbuminemic alkalosis and of dilutional acidosis and hyperchloremic acidosis. CONCLUSION: A balance of offsetting acidifying and alkalinizing metabolic acid-base disorders leaves the net metabolic acid-base status unchanged in cirrhosis.

Acid-Base Imbalance↗