Membrane transport activity and ultradian ion flux oscillations associated with cell cycle of Thraustochytrium sp

L. Shabala, S. Shabala, T. Ross, T. McMeekin
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引用次数: 20

Abstract

Membrane transport activity associated with growth and nutritional status of a marine microheterotroph Thraustochytrium sp. was studied using non-invasive ion-selective slowly vibrating microelectrodes (the MIFE technique). Net fluxes of H + , Ca 2+ and Na + underwent regular changes as the cell progressed from the zoospore to sporangium stages of development. The most pronounced change was a decrease in the net H + influx, which we suggest could be associated with the changes in cytoskeletal organization required for cell cleavage and zoospore release. As cell development progressed from the zoospore stage towards maturity, non-damping endogenous ultradian oscillations (period range of several minutes) became evident. At the sporangium stage, as many as 85% of cells possessed oscillatory membrane transport activity. It is suggested that ultradian ion flux oscillations in Thraustochytrium sp. may be causally linked with cell developmental processes. Discrete Fourier transform and cross-correlation analysis revealed a close association between oscillatory patterns of H + and Na + fluxes. The possibility that these oscillations result from the rhythmical activity of a Na + /H + co-transporter located at the plasma membrane of Thraustochytrium sp. is considered. Oscillations in net Ca 2+ flux were apparently not linked to those in H+ and Na + , and are believed to be due to some other physiological processes. Periods of net H + and Na + flux oscillations were strongly dependent on the external Na + concentrations in the bathing medium. As sodium is considered to be an essential element in Thraustochytrium sp., it is suggested that the functional role of such ultradian oscillations may be their involvement in the frequency-encoding mechanism that provides developing cells with information about environment, and nutritional status in particular.
Thraustochytrium sp .细胞膜转运活性和超离子流振荡与细胞周期的关系
利用非侵入性离子选择慢振动微电极(MIFE技术)研究了海洋微异养动物Thraustochytrium sp.的生长和营养状况与膜转运活性的关系。H +、ca2 +和Na +的净通量随着细胞从游动孢子发育到孢子囊发育阶段的变化而有规律地变化。最明显的变化是净H +内流的减少,我们认为这可能与细胞分裂和游动孢子释放所需的细胞骨架组织的变化有关。随着细胞从游动孢子阶段向成熟阶段发展,非阻尼内源性超频振荡(周期范围为几分钟)变得明显。在孢子囊期,多达85%的细胞具有振荡膜运输活性。提示Thraustochytrium sp.体内的超离子流振荡可能与细胞发育过程有因果关系。离散傅里叶变换和互相关分析表明,H +和Na +通量的振荡模式密切相关。这些振荡可能是由位于Thraustochytrium sp.质膜上的Na + /H +共转运体的节律性活动引起的。ca2 +净通量的振荡显然与H+和Na +的振荡无关,而被认为是由于一些其他的生理过程。净H +和Na +通量振荡周期强烈依赖于沐浴介质中外部Na +浓度。由于钠被认为是Thraustochytrium sp.的必需元素,这表明这种超频振荡的功能作用可能是它们参与频率编码机制,为发育中的细胞提供有关环境,特别是营养状况的信息。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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