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用碳-13核磁共振研究盐冲击诱导的海洋蓝细菌四倍体聚球藻中的碳水化合物周转。

Carbon-13 NMR studies of salt shock-induced carbohydrate turnover in the marine cyanobacterium Agmenellum quadruplicatum.

作者信息

Tel-Or E, Spath S, Packer L, Mehlhorn R J

机构信息

Lawrence Berkeley Laboratory, University of California, Berkeley 94720, USA.

出版信息

Plant Physiol. 1986;82(3):646-52. doi: 10.1104/pp.82.3.646.

Abstract

Carbon turnover in response to abrupt changes in salinity, including the mobilization of glycogen for use in osmoregulation was studied with pulse-chase strategies utilizing nuclear magnetic resonance (NMR)-silent and NMR-detectable 12C and 13C isotopes, respectively. Growth of Agmenellum quadruplicatum in 30%-enriched 13C bicarbonate provided sufficient NMR-detectability of intracellular organic osmoregulants for these studies. A comparison of NMR spectra of intact cells and their ethanol extracts showed that the intact cell data were suitable for quantitative work, and, when combined with ESR measurements of cell volumes, yielded intracellular glucosylglycerol concentrations without disrupting the cells. NMR pulse-chase experiments were used to show that 13C-enriched glycogen, which had previously been accumulated by the cells under nitrogen-limited growth at low salinities, could be utilized for the synthesis of glucosylglycerol when the cells were abruptly transferred to hypersaline media, but only in the light. It was also shown that the accumulation of glucosylglycerol in the light occurred on a time scale similar to that of cell doubling. Depletion of glucosylglycerol when cells abruptly transferred to lower salinities appeared to be rapid--the intracellular pool of this osmoregulant was decreased 2-fold within 2 hours of hypotonic shock.

摘要

利用脉冲追踪策略,分别使用核磁共振(NMR)不可检测和可检测的12C和13C同位素,研究了盐度突然变化时的碳周转情况,包括糖原的动员用于渗透调节。在富含30% 13C碳酸氢盐的条件下培养四倍体聚球藻,为这些研究提供了足够的细胞内有机渗透调节物质的NMR可检测性。完整细胞及其乙醇提取物的NMR光谱比较表明,完整细胞数据适用于定量工作,并且与细胞体积的ESR测量相结合时,无需破坏细胞即可得出细胞内葡萄糖基甘油的浓度。NMR脉冲追踪实验表明,细胞在低盐度下氮限制生长时先前积累的富含13C的糖原,在细胞突然转移至高盐培养基时可用于合成葡萄糖基甘油,但仅在光照条件下。还表明,光照下葡萄糖基甘油的积累时间尺度与细胞加倍的时间尺度相似。当细胞突然转移到低盐度时,葡萄糖基甘油的消耗似乎很快——在低渗休克后2小时内,这种渗透调节物质的细胞内池减少了2倍。

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