Sussman Caroline R, Zhao Jinhua, Plata Consuelo, Lu Jing, Daly Christopher, Angle Nathan, DiPiero Jennifer, Drummond Iain A, Liang Jennifer O, Boron Walter F, Romero Michael F, Chang Min-Hwang
Physiology and Biomedical Engineering, Mayo Clinic College of Medicine, Rochester, MN 55905, USA.
Am J Physiol Cell Physiol. 2009 Oct;297(4):C865-75. doi: 10.1152/ajpcell.00679.2008. Epub 2009 Jul 22.
Mutations in the electrogenic Na+/nHCO3- cotransporter (NBCe1, SLC4A4) cause severe proximal renal tubular acidosis, glaucoma, and cataracts in humans, indicating NBCe1 has a critical role in acid-base homeostasis and ocular fluid transport. To better understand the homeostatic roles and protein ontogeny of NBCe1, we have cloned, localized, and downregulated NBCe1 expression in zebrafish, and examined its transport characteristics when expressed in Xenopus oocytes. Zebrafish NBCe1 (zNBCe1) is 80% identical to published mammalian NBCe1 cDNAs. Like other fish NBCe1 clones, zebrafish NBCe1 is most similar to the pancreatic form of mammalian NBC (Slc4a4-B) but appears to be the dominant isoform found in zebrafish. In situ hybridization of embryos demonstrated mRNA expression in kidney pronephros and eye by 24 h postfertilization (hpf) and gill and brain by 120 hpf. Immunohistochemical labeling demonstrated expression in adult zebrafish eye and gill. Morpholino knockdown studies demonstrated roles in eye and brain development and caused edema, indicating altered fluid and electrolyte balance. With the use of microelectrodes to measure membrane potential (Vm), voltage clamp (VC), intracellular pH (pH(i)), or intracellular Na+ activity (aNa(i)), we examined the function of zNBCe1 expressed in Xenopus oocytes. Zebrafish NBCe1 shared transport properties with mammalian NBCe1s, demonstrating electrogenic Na+ and HCO3- transport as well as similar drug sensitivity, including inhibition by 4,4'-diiso-thiocyano-2,2'-disulfonic acid stilbene and tenidap. These data indicate that NBCe1 in zebrafish shares many characteristics with mammalian NBCe1, including tissue distribution, importance in systemic water and electrolyte balance, and electrogenic transport of Na+ and HCO3-. Thus zebrafish promise to be useful model system for studies of NBCe1 physiology.
电生性钠/碳酸氢根共转运体(NBCe1,SLC4A4)的突变会导致人类严重的近端肾小管酸中毒、青光眼和白内障,这表明NBCe1在酸碱平衡和眼内液运输中起关键作用。为了更好地理解NBCe1的稳态作用和蛋白质个体发生,我们在斑马鱼中克隆、定位并下调了NBCe1的表达,并在非洲爪蟾卵母细胞中表达时检测了其转运特性。斑马鱼NBCe1(zNBCe1)与已发表的哺乳动物NBCe1 cDNA有80%的同一性。与其他鱼类NBCe1克隆一样,斑马鱼NBCe1与哺乳动物NBC的胰腺形式(Slc4a4-B)最为相似,但似乎是斑马鱼中发现的主要异构体。胚胎原位杂交显示,受精后24小时(hpf)时,肾前肾和眼中有mRNA表达,120 hpf时鳃和脑中也有表达。免疫组织化学标记显示在成年斑马鱼的眼和鳃中有表达。吗啉代敲低研究表明其在眼和脑发育中起作用,并导致水肿,表明液体和电解质平衡发生改变。我们使用微电极测量膜电位(Vm)、电压钳(VC)、细胞内pH(pH(i))或细胞内钠活性(aNa(i)),检测了在非洲爪蟾卵母细胞中表达的zNBCe1的功能。斑马鱼NBCe1与哺乳动物NBCe1具有共同的转运特性,表现出电生性钠和碳酸氢根转运以及相似的药物敏感性,包括被4,4'-二异硫氰酸-2,2'-二磺酸芪和替硝唑抑制。这些数据表明,斑马鱼中的NBCe1与哺乳动物NBCe1具有许多共同特征,包括组织分布、在全身水和电解质平衡中的重要性以及钠和碳酸氢根的电生性转运。因此,斑马鱼有望成为研究NBCe1生理学的有用模型系统。