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rubidium/hypoxia

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7 結果

[Hypoxia and the diffusion of rubidium 86 in the brain of the rat].

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Inhibition of Na-K-ATPase activity after prolonged hypoxia in an alveolar epithelial cell line.

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Exposure to alveolar hypoxia may induce acute pulmonary edema. Because the vectorial sodium transport by alveolar epithelium represents an important mechanism for alveolar edema clearance, we examined whether hypoxia affects Na-K-ATPase activity in cultured SV40-transformed rat alveolar type II

Myocardial uptake of thallium and rubidium during alterations in perfusion and oxygenation in isolated rabbit hearts.

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The comparative effects of altered cellular function and coronary perfusion on myocardial 201Tl and 83Rb uptake were evaluated in three groups of isolated rabbit hearts having isovolumic contractions. Paired-indication dilution experiments were performed with 201Tl, 83Rb, and 111In-labeled albumin

ATP-dependent calcium transport in isolated membrane vesicles from Azotobacter vinelandii.

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Membrane vesicles from Azotobacter vinelandii O prepared by osmotic lysis of spheroplasts in tris (hydroxymethyl) aminomethane/acetate buffer (pH 7.8) contain a latent adenosine triphosphatase (ATPase). The ATPase can be activated when the vesicles are incubated in the presence of an electron donor
OBJECTIVE The aim of the study is to identify specific protein kinase C (PKC) isoforms involvement in K(+) transport mediated at altered blood-brain barrier (BBB) response to stroke conditions with prior nicotine exposure, which provides ways to intervene pharmacologically in PKC-mediated molecular

Enhancement of the antitumor effect of flavone acetic acid by the bioreductive cytotoxic drug SR 4233 in a murine carcinoma.

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Flavone acetic acid (FAA, NSC 347512) is a new anticancer drug currently undergoing clinical investigation. Although the precise mechanism for its broad spectrum of activity against transplanted murine solid tumors is unknown, it has been reported that FAA reduces tumor blood flow and produces

Future direction of renal positron emission tomography.

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Positron emission tomography (PET) is perfectly suited for quantitative imaging of the kidneys, and the recent improvements in detector technology, computer hardware, and image processing software add to its appeal. Multiple positron emitting radioisotopes can be used for renal imaging. Some,
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