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从 Sparus aurata 分离的肝细胞在低渗冲击后的细胞体积调节。

Cell volume regulation following hypotonic shock in hepatocytes isolated from Sparus aurata.

机构信息

Dipartimento di Scienze della Vita "M. Malpighi", Università di Messina, Viale Ferdinando Stagno d'Alcontres 31, 98166 Messina, Italy.

出版信息

Comp Biochem Physiol A Mol Integr Physiol. 2011 Jan;158(1):143-9. doi: 10.1016/j.cbpa.2010.10.002. Epub 2010 Oct 16.

Abstract

The response of isolated hepatocytes of Sparus aurata to hypotonic shock was studied by the aid of videometric and light scattering methods. The isolated cells exposed to a rapid change (from 370 to 260 mOsm/kg) of the osmolarity of the bathing solution swelled but thereafter underwent a decrease of cell volume tending to recovery the original size. This homeostatic response RVD (regulatory volume decrease) was inhibited in the absence of extracellular Ca²+ and in the presence of TMB8, an inhibitor of Ca²+ release from intracellular stores. It is likely that Ca²+ entry through verapamil sensitive Ca²+-channels, probably leading to a release of Ca²+ from intracellular stores, is responsible for RVD since the blocker impaired the ability of the cell to recover its volume after the hypotonic shock. RVD tests performed in the presence of various inhibitors of different transport mechanisms, such as BaCl₂, quinine, glybenclamide and bumetanide as well as in the presence of a KCl activator, NEM, led us to suggest that the recovery of cell volume in hypotonic solution is accomplished by an efflux of K+ and Cl⁻ through conductive pathways paralleled by the operation of the KCl cotransport, followed by an obliged water efflux from the cells.

摘要

采用视频测量和光散射方法研究了 Sparus aurata 分离肝细胞对低渗冲击的反应。暴露于渗透压快速变化(从 370 毫渗摩尔/千克到 260 毫渗摩尔/千克)的分离细胞会膨胀,但随后会经历细胞体积减少,趋向于恢复原始大小。这种内稳态反应 RVD(调节性体积减少)在缺乏细胞外 Ca²⁺和存在 TMB8(一种抑制细胞内储存 Ca²⁺释放的抑制剂)的情况下受到抑制。Ca²⁺通过维拉帕米敏感的 Ca²⁺通道进入可能导致细胞内储存的 Ca²⁺释放,这可能是 RVD 的原因,因为阻断剂损害了细胞在低渗冲击后恢复其体积的能力。在存在各种不同转运机制抑制剂(如 BaCl₂、奎宁、格列本脲和布美他尼)以及存在 KCl 激活剂 NEM 的情况下进行的 RVD 测试,使我们提出假说,即在低渗溶液中细胞体积的恢复是通过通过导电途径的 K⁺和 Cl⁻外流来完成的,同时伴随着 KCl 协同转运的运作,随后细胞被迫排出水分。

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