Department of Physiology, Radboud Institute for Molecular Life Sciences, Radboud University Medical Center, Nijmegen, The Netherlands.
Department of Otorhinolaryngology, Donders Institute for Brain, Cognition and Behaviour, Radboud University Medical Center, Nijmegen, The Netherlands.
Pflugers Arch. 2019 Jun;471(6):845-860. doi: 10.1007/s00424-018-2234-9. Epub 2018 Nov 12.
Solute carrier family 41 member A1 (SLC41A1) has been suggested to mediate magnesium (Mg) transport by several in vitro studies. However, the physiological function of SLC41A1 remains to be elucidated. In this study, cellular Mg transport assays combined with zebrafish slc41a1 knockdown experiments were performed to disclose SLC41A1 function and its physiological relevance. The gene slc41a1 is ubiquitously expressed in zebrafish tissues and is regulated by water and dietary Mg availability. Knockdown of slc41a1 in zebrafish larvae grown in a Mg-free medium resulted in a unique phenotype characterized by a decrease in zebrafish Mg content. This decrease shows that SLC41A1 is required to maintain Mg balance and its dysfunction results in renal Mg wasting in zebrafish larvae. Importantly, the Mg content of the larvae is rescued when mouse SLC41A1 is expressed in slc41a1-knockdown zebrafish. Conversely, expression of mammalian SLC41A1-p.Asp262Ala, harboring a mutation in the ion-conducting SLC41A1 pore, did not reverse the renal Mg wasting. Mg transport assays in human embryonic kidney 293 (HEK293) cells overexpressing SLC41A1 demonstrated that SLC41A1 mediates cellular Mg extrusion independently of sodium (Na). In contrast, SLC41A1-p.Asp262Ala expressing HEK293 cells displayed similar Mg extrusion activities than control (mock) cells. In polarized Madin-Darby canine kidney cells, SLC41A1 localized to the basolateral cell membrane. Our results demonstrate that SLC41A1 facilitates renal Mg reabsorption in the zebrafish model. Furthermore, our data suggest that SLC41A1 mediates both Mg uptake and extrusion.
溶质载体家族 41 成员 A1(SLC41A1)已被多项体外研究表明可介导镁(Mg)转运。然而,SLC41A1 的生理功能仍有待阐明。在这项研究中,通过细胞镁转运测定结合斑马鱼 slc41a1 敲低实验来揭示 SLC41A1 的功能及其生理相关性。 slc41a1 基因在斑马鱼组织中广泛表达,并受水和饮食镁供应的调节。在镁缺乏的培养基中生长的斑马鱼幼虫中 slc41a1 的敲低导致一种独特的表型,其特征在于斑马鱼镁含量降低。这种减少表明 SLC41A1 是维持镁平衡所必需的,其功能障碍导致斑马鱼幼虫肾脏镁丢失。重要的是,当在 slc41a1 敲低的斑马鱼中表达鼠 SLC41A1 时,幼虫的镁含量得以恢复。相反,表达具有 SLC41A1 孔中离子传导突变的哺乳动物 SLC41A1-p.Asp262Ala 不能逆转肾脏镁丢失。在过表达 SLC41A1 的人胚肾 293(HEK293)细胞中的镁转运测定表明 SLC41A1 独立于钠(Na)介导细胞镁外排。相比之下,表达 SLC41A1-p.Asp262Ala 的 HEK293 细胞显示出与对照(模拟)细胞相似的镁外排活性。在极化的 Madin-Darby 犬肾细胞中,SLC41A1 定位于基底外侧细胞膜。我们的结果表明 SLC41A1 在斑马鱼模型中促进肾脏镁重吸收。此外,我们的数据表明 SLC41A1 介导镁摄取和外排。