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肾髓质对渗透压应激的细胞反应。

Cellular response to osmotic stress in the renal medulla.

作者信息

Beck F X, Burger-Kentischer A, Müller E

机构信息

Physiologisches Institut der Universität, Pettenkoferstrasse 12, D-80336 Munich, Germany.

出版信息

Pflugers Arch. 1998 Nov;436(6):814-27. doi: 10.1007/s004240050710.

Abstract

Cells of the renal medulla, which are exposed under normal physiological conditions to widely fluctuating extracellular solute concentrations, respond to hypertonic stress by accumulating the organic osmolytes glycerophosphorylcholine (GPC), betaine, myo-inositol, sorbitol and free amino acids. Increased intracellular contents of these osmolytes are achieved by a combination of increased uptake (myo-inositol and betaine) and synthesis (sorbitol, possibly GPC), decreased degradation (GPC) and reduced osmolyte release. In the medulla of the concentrating kidney, accumulation of organic osmolytes, which do not perturb cell function even at high concentrations, allows the maintenance of "normal" intracellular concentrations of inorganic electrolytes. Adaptation to decreasing extracellular solute concentrations, e.g. diuresis, is achieved primarily by activation of pathways allowing the efflux of organic osmolytes, and secondarily by inactivation of production (sorbitol) and uptake (betaine, myo-inositol) and stimulation of degradation (GPC). Apart from modulation of the osmolyte content, osmolality-dependent reorganization of the cytoskeleton and expression of specific stress proteins (heat shock proteins) may be further, as yet poorly characterized, components of the regulatory systems involved in the adaptation of medullary cells to osmotic stress.

摘要

在正常生理条件下,肾髓质细胞暴露于广泛波动的细胞外溶质浓度中,通过积累有机渗透剂甘油磷酰胆碱(GPC)、甜菜碱、肌醇、山梨醇和游离氨基酸来应对高渗应激。这些渗透剂细胞内含量的增加是通过增加摄取(肌醇和甜菜碱)和合成(山梨醇,可能还有GPC)、减少降解(GPC)以及减少渗透剂释放的组合来实现的。在浓缩尿液的肾脏髓质中,即使在高浓度下也不会干扰细胞功能的有机渗透剂的积累,使得无机电解质能够维持“正常”的细胞内浓度。适应细胞外溶质浓度降低,例如利尿,主要是通过激活允许有机渗透剂流出的途径来实现的,其次是通过抑制生产(山梨醇)和摄取(甜菜碱、肌醇)以及刺激降解(GPC)来实现的。除了调节渗透剂含量外,渗透压依赖性的细胞骨架重组和特定应激蛋白(热休克蛋白)的表达可能是参与髓质细胞适应渗透应激的调节系统的进一步组成部分,目前对其了解还很少。

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