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群体大鼠软骨肉瘤软骨细胞中透明质酸合成酶快速代谢更新的证据。

Evidence for rapid metabolic turnover of hyaluronate synthetase in Swarm rat chondrosarcoma chondrocytes.

作者信息

Bansal M K, Mason R M

出版信息

Biochem J. 1986 Jun 1;236(2):515-9. doi: 10.1042/bj2360515.

Abstract

Synthesis of [3H]hyaluronate from [6-3H]glucosamine was investigated in cultures of Swarm rat chondrosarcoma chondrocytes treated with various concentrations (0.1 microM-0.1 mM) of cycloheximide for various times. Concentrations greater than 1 microM inhibited protein synthesis by greater than 90%. Hyaluronate synthesis was decreased, with a t1/2 for 50% inhibition of 80-120 min, depending on the concentration of cycloheximide present. Similar experiments using [1-3H]glucose as a precursor label gave similar results. Experiments using [6-3H]glucosamine as a precursor label and 0.18 mM-puromycin to inhibit protein synthesis inhibited hyaluronate synthesis (t1/2 = 82 min) with similar kinetics to cycloheximide-induced inhibition. Cultures incubated with 3.6 microM-cycloheximide for up to 9 h and supplemented with p-nitrophenyl beta-D-xyloside during the last 75 min of treatment showed increased synthesis of [3H,35S]chondroitin sulphate, demonstrating that UDP-hexose precursors for glycosaminoglycan synthesis are not rapidly depleted on blockage of protein synthesis. Rapid metabolic turnover of hyaluronate synthetase is the most likely cause for decreased hyaluronate synthesis in chondrocytes in which protein synthesis is inhibited.

摘要

在经不同浓度(0.1微摩尔/升 - 0.1毫摩尔/升)放线菌酮处理不同时间的群大鼠软骨肉瘤软骨细胞培养物中,研究了从[6 - ³H]葡萄糖胺合成[³H]透明质酸的情况。浓度大于1微摩尔/升时,蛋白质合成受到大于90%的抑制。透明质酸合成减少,50%抑制的半衰期为80 - 120分钟,这取决于放线菌酮的浓度。使用[1 - ³H]葡萄糖作为前体标记进行的类似实验得到了相似的结果。使用[6 - ³H]葡萄糖胺作为前体标记并用0.18毫摩尔/升嘌呤霉素抑制蛋白质合成的实验,抑制了透明质酸合成(半衰期 = 82分钟),其动力学与放线菌酮诱导的抑制相似。用3.6微摩尔/升放线菌酮孵育培养物长达9小时,并在处理的最后75分钟补充对硝基苯基β - D - 木糖苷,结果显示[³H,³⁵S]硫酸软骨素的合成增加,这表明在蛋白质合成受阻时,糖胺聚糖合成的UDP - 己糖前体不会迅速耗尽。透明质酸合成酶的快速代谢周转最有可能是蛋白质合成受抑制的软骨细胞中透明质酸合成减少的原因。

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Inhibition of hyaluronate synthesis.透明质酸合成的抑制
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The effect of puromycin on rabbit reticulocyte ribosomes.嘌呤霉素对兔网织红细胞核糖体的作用。
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