XPR1: a regulator of cellular phosphate homeostasis rather than a Pi exporter

David Burns, Rolando Berlinguer-Palmini, Andreas Werner
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Abstract

Phosphate (Pi) is an essential nutrient, and its plasma levels are under tight hormonal control. Uphill transport of Pi into cells is mediated by the two Na-dependent Pi transporter families SLC34 and SLC20. The molecular identity of a potential Pi export pathway is controversial, though XPR1 has recently been suggested by Giovannini and coworkers to mediate Pi export. We expressed XPR1 in Xenopus oocytes to determine its functional characteristics. Xenopus isoforms of proteins were used to avoid species incompatibility. Protein tagging confirmed the localization of XPR1 at the plasma membrane. Efflux experiments, however, failed to detect translocation of Pi attributable to XPR1. We tested various counter ions and export medium compositions (pH, plasma) as well as potential protein co-factors that could stimulate the activity of XPR1, though without success. Expression of truncated XPR1 constructs and individual domains of XPR1 (SPX, transmembrane core, C-terminus) demonstrated downregulation of the uptake of Pi mediated by the C-terminal domain of XPR1. Tethering the C-terminus to the transmembrane core changed the kinetics of the inhibition and the presence of the SPX domain blunted the inhibitory effect. Our observations suggest a regulatory role of XPR1 in cellular Pi handling rather than a function as Pi exporter. Accordingly, XPR1 senses intracellular Pi levels via its SPX domain and downregulates cellular Pi uptake via the C-terminal domain. The molecular identity of a potential Pi export protein remains therefore elusive.

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XPR1:细胞磷酸盐平衡的调节器而非 Pi 输出器
磷酸盐(Pi)是人体必需的营养物质,其血浆水平受到激素的严格控制。Pi 向细胞的上行转运是由两个 Na 依赖性 Pi 转运体家族 SLC34 和 SLC20 介导的。虽然 Giovannini 和同事最近认为 XPR1 介导了π的输出,但潜在的π输出途径的分子特征仍存在争议。我们在爪蟾卵母细胞中表达了 XPR1,以确定其功能特征。为了避免物种不相容,我们使用了爪蟾异构体蛋白。蛋白质标记证实了 XPR1 在质膜上的定位。然而,外流实验未能检测到 XPR1 导致的 Pi 转位。我们测试了各种反离子和输出介质成分(pH 值、等离子),以及可能刺激 XPR1 活性的潜在蛋白质辅助因子,但都没有成功。表达截短的 XPR1 构建体和 XPR1 的单个结构域(SPX、跨膜核心、C-端)表明,XPR1 的 C-端结构域介导的 Pi 吸收下调。将 C 端与跨膜核心连接改变了抑制作用的动力学,而 SPX 结构域的存在则削弱了抑制作用。我们的观察结果表明,XPR1 在细胞π处理中起调控作用,而不是作为π输出体。因此,XPR1 通过其 SPX 结构域感知细胞内的 Pi 水平,并通过 C 端结构域下调细胞对 Pi 的吸收。因此,潜在π输出蛋白的分子特征仍然难以确定。
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