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W Usinger

Publications and source records attributed to W Usinger.

At least 19 recordsLinked to original sources

N-terminal connective tissue growth factor is a marker of the fibrotic phenotype in scleroderma.

BACKGROUND: Over-expression of connective tissue growth factor (CTGF) is a hallmark of fibrotic disease, including scleroderma. CTGF acts with the pro-fibrotic cytokine TGFbeta to promote sustained fibrotic responses in vivo. Elevated production of CTGF might be responsible for maintenance of the fibrotic phenotype in scleroderma. Assays of CTGF or of its fragments are potential non-invasive measures of the fibrotic response in scleroderma. AIM: To determine the utility of whole, N-terminal, and C-terminal CTGF as surrogate markers for fibrosis in scleroderma. DESIGN: Cross-sectional controlled study. METHODS: Plasma was collected prospectively from 47 scleroderma patients (26 diffuse scleroderma, 21 limited scleroderma) and 18 healthy controls. At the same time, dermal interstitial fluid was derived by a suction blister technique from the lesional skin of scleroderma patients, and from the forearm skin of healthy controls. Whole, N-terminal, and C-terminal CTGF were assayed by ELISA, using monoclonal antibodies specific for N- and C-terminal epitopes. RESULTS: N-terminal cleavage products of CTGF were present at elevated levels in the plasma and dermal interstitial fluid of scleroderma patients, compared to healthy controls. N-terminal CTGF levels in plasma and dermal interstitial fluid correlated with severity of skin disease and (negatively) with disease duration. Whole and C-terminal CTGF levels were low in blister fluid and plasma levels were not elevated in disease. DISCUSSION: These results support a role for CTGF in scleroderma-associated fibrosis and the utility of N-terminal CTGF as a marker of fibrosis.

Adult↗

Mean whole body intracellular pH in unanesthetized dogs: a revised method.

An improved method of calculating the mean whole body intracellular pH (pHi) by means of DMO in unanesthetized dogs is described. The elemination of DMO from the body fluid is assumed to follow a simple exponential decay with a time constant k1. The distribution of DMO into the extracellular and intracellular water is described by an exponential function (1-exp(-k2t)). From experiments in 9 unanesthetized dogs it was found that k1 = 0.008 h-1 and k2 = 1.325 h-1. Mean pHi was 7.08 +/- 0.05 at Pa(c02) = 4.1 kPa (31 mm Hg). The average difference between arterial blood and pHi was 0.35. No statistically different pHi values were found with data from arterial or mixed venous blood. Even after 24 h the method still yields reasonable values for pHi.

Acid-Base Equilibrium↗

Determination of mean whole body intracellular pH in unanesthetized dogs.

In order to determine mean whole body pHi in unanesthetized dogs, assumptions on the urinary and intestinal excretion of DMO, the total loss of an injected single dose of [14C] DMO, and the distribution kinetics of DMO were tested experimentally. Urinary excretion of DMO was almost negligible. The best assumption on the total loss of DMO was based on the exponential decay observed over a period of 1 to 4 weeks. The biological half-life of DMO was 5 days, the time constant being --0.14 d-1. The extracellular distribution of DMO was considered to equal that of [3H] inulin. Between 1 and 7 hours after an injection of inulin in nephrectomized dogs the distribution volume increased linearly from 16% of the body weight after 2 hours to 21% after 6 hours. Based on these experimental results, pHi was determined in 16 unanesthetized dogs. 120 min after the injection of DMO pHi was 7.05 and 430 min after the injection pHi was 7.11. It is concluded that the assumption made allow the estimation of pHi in unanesthetized dogs over a period of 1 to 7 hours.

Acid-Base Equilibrium↗

Intracellular pH in unanesthetized dogs during panting.

Intracellular pH, arterial blood gases and several plasma enzymes were estimated in unanesthetized dogs during a 3-hour exposure to 30 degrees C/50% relative humidity, and 40 degrees C/50% relative humidity. No change occurred during mild heat stress, whereas during severe heat stress a profound respiratory alkalosis developed together with an increase in intracellular pH from 7.03 to 7.29. Most plasma enzymes increased by about 300% or more. In spite of extreme panting body temperature rose to 42.2 degrees C. Exposure to 40 degrees C/50% relative humidity with 4% CO2 in the climatic chamber inhibited the respiratory alkalosis and the increase of plasma enzymes. Though the panting frequency was lower the ventilatory heat dissipation was more efficient. Body temperature rose to only 39.8 degrees C. It is concluded that the intracellular buffering is not able to prevent marked changes of the intracellular pH during panting.

Acid-Base Equilibrium↗