DiPolo R, Rojas H, Beaugé L
Centro de Biofísica y Bioquímica, IVIC, Caracas, Venezuela.
Acta Cient Venez. 1993;44(2):103-10.
The introduction of the squid giant axon preparation to studies on Ca homeostasis has proven very useful in laying the foundations in the study of Ca regulation. In particular the Na/Ca exchange mechanism has been characterized in terms of its regulatory processes using the well define technique of intracellular dialysis and membrane potential control. The Na/Ca exchange countertransport system plays a critical role in physiological processes including cardiac contractility and photoreception. It has also been implicate in the etiology of essential hypertension, cardiac arrhythmias and cell death. The ability of the Na/Ca exchanger to regulate the intracellular ionized Ca concentration ([Ca2+i]) under physiological conditions, is determined by the direction (net Ca efflux or Ca influx), and magnitude of transport. The direction of Ca transport is decided by the chemical gradient of sodium and calcium. The magnitude of the exchange is regulated by kinetic factors. This kinetic factors are critical since they decide whether the exchanger will mediate a net Ca movement under certain conditions. Recently, a large effort has been put together to characterize the secondary modulation of the Na/Ca exchanger. In particular modulation by MgATP and intracellular Ca2+. In nerve cells we have discover that MgATP regulates the exchanger through as phosphorylation-dephosphorylation processes most probably relate to the action of a kinase-phosphatase system. The other important ligand that regulates the exchange activity is the level of [Ca2+i]. We have found the presence of a regulatory site in the cytoplasmic face of the exchanger different from the transport site and probably responsible for turning the carrier "on" or "off". In this article we will depict some of the processes involved in the metabolic and ionic regulation of the Na/Ca exchanger.
将鱿鱼巨轴突标本引入钙稳态研究已被证明在奠定钙调节研究基础方面非常有用。特别是,钠/钙交换机制已通过使用细胞内透析和膜电位控制这一明确技术,在其调节过程方面得到了表征。钠/钙交换逆向转运系统在包括心脏收缩性和光感受在内的生理过程中起着关键作用。它还与原发性高血压、心律失常和细胞死亡的病因有关。钠/钙交换器在生理条件下调节细胞内游离钙浓度([Ca2 + i])的能力,取决于转运的方向(净钙外流或钙内流)和幅度。钙转运的方向由钠和钙的化学梯度决定。交换的幅度由动力学因素调节。这些动力学因素至关重要,因为它们决定了交换器在某些条件下是否会介导净钙移动。最近,人们付出了巨大努力来表征钠/钙交换器的二级调节。特别是由MgATP和细胞内Ca2 + 进行的调节。在神经细胞中,我们发现MgATP通过磷酸化 - 去磷酸化过程调节交换器,这很可能与激酶 - 磷酸酶系统的作用有关。另一个调节交换活性的重要配体是[Ca2 + i]的水平。我们发现在交换器细胞质面存在一个不同于转运位点的调节位点,可能负责开启或关闭载体。在本文中,我们将描述钠/钙交换器代谢和离子调节中涉及的一些过程。