绒毛膜胎盘形态发生需要SLC20a1/PiT-1。

Vascular biology (Bristol, England) Pub Date : 2023-04-19 Print Date: 2023-04-01 DOI:10.1530/VB-22-0018
Ana Correia-Branco, Ariel Mei, Sreehari Pillai, Nirmala Jayaraman, Radhika Sharma, Alison G Paquette, Naveen K Neradugomma, Ciara Benson, Nicholas W Chavkin, Qingcheng Mao, Mary C Wallingford
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摘要

胎盘介导母体和胎儿循环系统之间的营养物质运输,如无机磷酸盐(Pi)。胎盘本身在发育过程中也需要摄取大量营养物质,为胎儿发育提供关键支持。本研究旨在利用体外和体内模型确定胎盘π转运机制。我们观察到,BeWo 细胞对 Pi(P33)的吸收是钠依赖性的,而 SLC20A1/Slc20a1 是小鼠(芯片)、人细胞系(RT-PCR)和足月胎盘(RNA-seq)中钠依赖性最高的胎盘转运体,这证明小鼠和人胎盘的正常生长和维持需要 SLC20A1/Slc20a1。通过定时杂交产生了Slc20a1野生型(Slc20a1+/+)和基因敲除型(Slc20a1-/-)小鼠,这些小鼠在E10.5时表现出卵黄囊血管生成失败。对E9.5组织进行了分析,以检验胎盘形态发生是否需要Slc20a1。在E9.5阶段,Slc20a1-/-胎盘的发育尺寸减小。在Slc20a1-/-蝶鞍中还观察到多种结构异常。我们确定发育中的 Slc20a1-/- 胎盘中单羧酸盐转运体 1 蛋白(MCT1+)细胞减少,证实 Slc20a1 缺失减少了滋养细胞合胞滋养细胞 1(SynT-I)的覆盖率。接下来,我们对细胞类型特异性 Slc20a1 表达和 SynT 分子通路进行了硅学研究,发现 Notch/Wnt 是调控滋养层分化的相关通路。我们进一步观察到,特定滋养层细胞系表达的 Notch/Wnt 基因与内皮细胞尖端和茎细胞标记相关。总之,我们的研究结果支持 Slc20a1 介导 Pi 进入 SynT 细胞,为它们在发育中的母胎界面上的分化和血管生成模拟功能提供关键支持。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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SLC20a1/PiT-1 is required for chorioallantoic placental morphogenesis.

The placenta mediates the transport of nutrients, such as inorganic phosphate (Pi), between the maternal and fetal circulatory systems. The placenta itself also requires high levels of nutrient uptake as it develops to provide critical support for fetal development. This study aimed to determine placental Pi transport mechanisms using in vitro and in vivo models. We observed that Pi (P33) uptake in BeWo cells is sodium dependent and that SLC20A1/Slc20a1 is the most highly expressed placental sodium-dependent transporter in mouse (microarray), human cell line (RT-PCR) and term placenta (RNA-seq), supporting that normal growth and maintenance of the mouse and human placenta requires SLC20A1/Slc20a1. Slc20a1 wild-type (Slc20a1+/+) and knockout (Slc20a1-/-) mice were produced through timed intercrosses and displayed yolk sac angiogenesis failure as expected at E10.5. E9.5 tissues were analyzed to test whether placental morphogenesis requires Slc20a1. At E9.5, the developing placenta was reduced in size in Slc20a1-/-. Multiple structural abnormalities were also observed in the Slc20a1-/-chorioallantois. We determined that monocarboxylate transporter 1 protein (MCT1+) cells were reduced in developing Slc20a1-/-placenta, confirming that Slc20a1 loss reduced trophoblast syncytiotrophoblast 1 (SynT-I) coverage. Next, we examined the cell type-specific Slc20a1 expression and SynT molecular pathways in silico and identified Notch/Wnt as a pathway of interest that regulates trophoblast differentiation. We further observed that specific trophoblast lineages express Notch/Wnt genes that associate with endothelial cell tip-and-stalk cell markers. In conclusion, our findings support that Slc20a1 mediates the symport of Pi into SynT cells, providing critical support for their differentiation and angiogenic mimicry function at the developing maternal-fetal interface.

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