Cala P M, Maldonado H, Anderson S E
Department of Human Physiology, University of California, Davis.
Comp Biochem Physiol Comp Physiol. 1992 Aug;102(4):603-8. doi: 10.1016/0300-9629(92)90711-x.
The Amphiuma red blood cell is one of the model systems employed early in the study of vertebrate cell volume regulation. Following both cell swelling and shrinkage the Amphiuma red blood cell demonstrates volume regulation to virtual completion in 90-120 min. When swollen the Amphiuma red blood cell loses K, Cl and osmotically obliged water, while following shrinkage volume regulation is the result of Na, Cl and therefore water uptake. The main contribution of the Amphiuma red cell as a model is that it was the first cell in which volume regulation was demonstrated to be electroneutral and more specifically that K/H and Na/H exchangers were responsible for regulation following cell swelling and shrinkage, respectively. Additionally, the Amphiuma red blood cell K/H and Na/H exchangers have been demonstrated to function in a pH regulatory capacity. The latter observation in turn led to the demonstration of the mutually exclusive and contradictory nature of volume and pH regulation predicted upon Na/H exchanger activity. These observations prompted our recent investigations of the Na/H exchanger as a contributor to hypoxia-induced cell damage, using the rabbit heart as a model. These studies illustrated that Na, and Ca imbalances characteristic of hypoxia-induced cell damage are ultimately referable to the Na/H exchanger's function in a pH regulatory capacity, which contributes fundamentally to cell volume and Ca derangement and ultimately cell injury.
蚓螈红细胞是脊椎动物细胞体积调节研究早期所采用的模型系统之一。在细胞肿胀和收缩后,蚓螈红细胞在90 - 120分钟内显示出几乎完全的体积调节。肿胀时,蚓螈红细胞会丢失钾、氯和渗透必需的水,而收缩后体积调节是钠、氯以及因此水摄取的结果。蚓螈红细胞作为模型的主要贡献在于,它是第一个被证明体积调节是电中性的细胞,更具体地说,钾/氢和钠/氢交换体分别负责细胞肿胀和收缩后的调节。此外,蚓螈红细胞的钾/氢和钠/氢交换体已被证明具有调节pH值的功能。后一观察结果进而导致了基于钠/氢交换体活性预测的体积和pH调节相互排斥和矛盾性质的证明。这些观察结果促使我们最近以兔心脏为模型,研究钠/氢交换体在缺氧诱导的细胞损伤中的作用。这些研究表明,缺氧诱导的细胞损伤所特有的钠和钙失衡最终可归因于钠/氢交换体在调节pH值方面的功能,这从根本上导致了细胞体积和钙紊乱,最终导致细胞损伤。