Linask K K, Han M D, Artman M, Ludwig C A
Department of Cell Biology, University of Medicine and Dentistry of New Jersey (UMDNJ), School of Osteopathic Medicine, Stratford, New Jersey 08084, USA.
Dev Dyn. 2001 Jul;221(3):249-64. doi: 10.1002/dvdy.1131.
Ouabain-induced inhibition of early heart development indicated that Na/K-ATPase plays an important role in maintaining normal ionic balances during differentiation of cardiomyocytes (Linask and Gui [1995] Dev Dyn 203:93-105). Inhibition of the sodium pump is generally accepted to affect the activity of the Na(+)-Ca(++) exchanger (NCX) to increase intracellular [Ca(++)]. These previous findings suggested that Ca(++) signaling may be an important modulator during differentiation of cardiomyocytes. In order to identify a connection between heart development and NCX-mediated Ca(++) regulation, we determined the embryonic spatiotemporal protein expression pattern of NCX-1 during early developmental stages. In both chick and mouse embryos, NCX-1 (the cardiac NCX isoform) is asymmetrically expressed during gastrulation; in the right side of the Hensen's node in the chick, in the right lateral mesoderm in the mouse. At slightly later stages, NCX-1 is expressed in the heart fields at comparable stages of heart development, in the chick at stage 7 and in the mouse at embryonic day (ED) 7.5. By ED 8 in the mouse, the exchanger protein displays a rostrocaudal difference in cardiac expression and an outer curvature-inner curvature ventricular difference. By ED 9.5, cardiac expression has increased from that seen at ED8 and NCX-1 is distributed throughout the myocardium consistent with the possibility that it is important in regulating initial cardiac contractile function. Only a low level of expression is detected in inflow and outflow regions. To substantiate a role for the involvement of calcium-mediated signaling, using pharmacologic approaches, ionomycin (a Ca(++) ionophore) was shown to perturb cardiac cell differentiation in a manner similar to ouabain as assayed by cNkx2.5 and sarcomeric myosin heavy chain expression. In addition, we show that an inhibitor of NCX, KB-R7943, can similarly and adversely affect early cardiac development at stage 4/5 and arrests cardiac cell contractility in 12-somite embryos. Thus, based upon NCX-1 protein expression patterns in the embryo, experimental Ca(++) modulation, and inhibition of NCX activity by KB-R7943, these results suggest an early and central role for calcium-mediated signaling in cardiac cell differentiation and NCX's regulation of the initial heartbeats in the embryo.
哇巴因诱导的早期心脏发育抑制表明,钠钾ATP酶在心肌细胞分化过程中维持正常离子平衡方面发挥着重要作用(Linask和Gui [1995]《发育动力学》203:93 - 105)。一般认为,抑制钠泵会影响钠钙交换体(NCX)的活性,从而增加细胞内钙离子浓度。这些先前的发现表明,钙离子信号传导可能是心肌细胞分化过程中的重要调节因子。为了确定心脏发育与NCX介导的钙离子调节之间的联系,我们测定了早期发育阶段NCX - 1的胚胎时空蛋白表达模式。在鸡和小鼠胚胎中,NCX - 1(心脏NCX亚型)在原肠胚形成期间不对称表达;在鸡胚中,在亨氏结右侧;在小鼠中,在右侧中胚层。稍晚些阶段,NCX - 1在心脏发育相当阶段的心脏区域表达,在鸡胚中为第7阶段,在小鼠中为胚胎第(ED)7.5天。在小鼠胚胎第8天,该交换蛋白在心脏中的表达呈现头尾差异以及心室的外曲 - 内曲差异。到胚胎第9.5天,心脏中的表达比胚胎第8天有所增加,并且NCX - 1分布于整个心肌,这表明它在调节初始心脏收缩功能方面可能很重要。仅在流入和流出区域检测到低水平表达。为了证实钙离子介导的信号传导参与其中的作用,采用药理学方法,离子霉素(一种钙离子载体)被证明会以类似于哇巴因的方式干扰心肌细胞分化,这通过cNkx2.5和肌节肌球蛋白重链表达来检测。此外,我们表明,NCX抑制剂KB - R7943在第4/5阶段同样会对早期心脏发育产生不利影响,并使12体节胚胎中的心肌细胞收缩性停滞。因此,基于胚胎中NCX - 1蛋白表达模式、实验性钙离子调节以及KB - R7943对NCX活性的抑制,这些结果表明钙离子介导的信号传导在心肌细胞分化以及NCX对胚胎初始心跳的调节中起着早期且核心的作用。