胎盘细胞对高 D-葡萄糖的不同反应及其通过小 GTPase Ras 相关蛋白 RAB-7A 对细胞外囊泡生物生成和贩运的影响

Carlos Palma, Andrew Lai, Katherin Scholz-Romero, Haarika Chittoory, Benjamin Van Haeringen, Flavio Carrion, Aase Handberg, Martha Lappas, Sunil R Lakhani, Amy E McCart Reed,  McIntyre, Soumyalekshmi Nair, Carlos Salomon
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引用次数: 0

摘要

胎盘细胞外囊泡(EVs)存在于整个妊娠期的母体循环中,其浓度、含量和生物活性与妊娠结局有关,包括妊娠糖尿病(GDM)。然而,母体微环境的变化对胎盘细胞分泌 EVs 的相关机制的影响仍有待充分确定。在这里,我们评估了高血糖对与胎盘细胞中不同EVs群的贩运和释放相关的蛋白质的影响。我们使用 BeWo 和 HTR8/SVneo 细胞作为胎盘模型,在 5-mM D-葡萄糖(即对照组)或 25-mM D-葡萄糖(高葡萄糖)条件下进行培养。超速离心法从细胞条件培养基(CCM)中分离出不同群体的EVs(即2K-g沉淀、10K-g沉淀和100K-g沉淀),并用纳米颗粒追踪分析法对其进行表征。开发了定量蛋白质组分析(IDA/SWATH)和高分辨率多反应监测协议(MRMHR),以定量分析与EVs的生物生成、贩运/释放和识别/摄取有关的37种蛋白质。高糖增加了BeWo细胞颗粒中总EVs的分泌,这种效应主要是由CCM中小EVs浓度的变化驱动的。有趣的是,高糖对 HTR8/SVneo 细胞的 EVs 分泌没有影响。高糖诱导 BeWo 细胞中与囊泡贩运相关的蛋白质发生变化,包括热休克蛋白家族 A(Hsp70)成员 9(HSPA9)和成员 8(HSPA8)。对于 HTR8/SVneo,改变的蛋白质包括前列腺素 F2α 受体调节蛋白(FPRP)、RAB5A、RAB35、RAB5B 和 RB11B、STAM1 和 TSG101。这些蛋白与 EVs 的分泌和贩运有关,这可以部分解释糖尿病妊娠中循环 EVs 水平的变化。此外,我们还发现,当 RAB11B、PDCD6IP、STAM、HSPA9、HSPA8、SDCBP、RAB5B、RAB5A、RAB7A 和 ERAP1 蛋白在细胞中过表达时,它们会调控 EV 在高糖和低糖条件下的释放。有趣的是,RAB7A 的免疫组化分析显示,正常糖耐量妇女(NGT,n = 6)和 GDM 妇女(n = 6)的胎盘组织在饮食或胰岛素治疗的影响下发生了不同的变化。高糖对胎盘细胞中参与细胞间动力学和多泡体向质膜贩运的蛋白质的调节与 GDM 妊娠有关。
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Differential response of placental cells to high D-glucose and its impact on extracellular vesicle biogenesis and trafficking via small GTPase Ras-related protein RAB-7A

Placental extracellular vesicles (EVs) can be found in the maternal circulation throughout gestation, and their concentration, content and bioactivity are associated with pregnancy outcomes, including gestational diabetes mellitus (GDM). However, the effect of changes in the maternal microenvironment on the mechanisms associated with the secretion of EVs from placental cells remains to be fully established. Here, we evaluated the effect of high glucose on proteins associated with the trafficking and release of different populations of EVs from placental cells. BeWo and HTR8/SVneo cells were used as placental models and cultured under 5-mM D-glucose (i.e. control) or 25-mM D-glucose (high glucose). Cell-conditioned media (CCM) and cell lysate were collected after 48 h. Different populations of EVs were isolated from CCM by ultracentrifugation (i.e. pellet 2K-g, pellet 10K-g, and pellet 100K-g) and characterised by Nanoparticle Tracking Analysis. Quantitative proteomic analysis (IDA/SWATH) and multiple reaction monitoring protocols at high resolution (MRMHR) were developed to quantify 37 proteins related to biogenesis, trafficking/release and recognition/uptake of EVs. High glucose increased the secretion of total EVs across the pellets from BeWo cells, an effect driven mainly by changes in the small EVs concentration in the CCM. Interestingly, no effect of high glucose on HTR8/SVneo cells EVs secretion was observed. High glucose induces changes in proteins associated with vesicle trafficking in BeWo cells, including Heat Shock Protein Family A (Hsp70) Member 9 (HSPA9) and Member 8 (HSPA8). For HTR8/SVneo, altered proteins including prostaglandin F2α receptor regulatory protein (FPRP), RAB5A, RAB35, RAB5B, and RB11B, STAM1 and TSG101. These proteins are associated with the secretion and trafficking of EVs, which could explain in part, changes in the levels of circulating EVs in diabetic pregnancies. Further, we identified that proteins RAB11B, PDCD6IP, STAM, HSPA9, HSPA8, SDCBP, RAB5B, RAB5A, RAB7A and ERAP1 regulate EV release in response to high and low glucose when overexpressed in cells. Interestingly, immunohistochemistry analysis of RAB7A revealed distinct changes in placental tissues obtained from women with normal glucose tolerance (NGT, n = 6) and those with GDM (n = 6), influenced by diet or insulin treatment. High glucose regulation of proteins involved in intercellular dynamics and the trafficking of multivesicular bodies to the plasma membrane in placental cells is relevant in the context of GDM pregnancies.

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