人类蜕膜空间转录组学鉴定复发性妊娠丢失的分子特征。

IF 7.9
Qing Sha, Qiaoni Yu, Kaixing Chen, Junyu Wang, Feiyang Wang, Chen Jiang, Yuanzhe Li, Meifang Tang, Yanbing Hou, Ke Liu, Kun Chen, Zongcheng Yang, Shouzhen Li, Jingwen Fang, Sihui Luo, Xueying Zheng, Jianping Weng, Kun Qu, Chuang Guo
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引用次数: 0

摘要

人蜕膜在母胎界面建立免疫耐受,对胚胎成功着床和发育至关重要。在这里,我们对健康供体和复发性妊娠丢失(RPL)患者的早孕蜕膜进行了空间转录组学分析。我们的分析揭示了两个不同的空间区域,分别对应于致密蜕膜层和海绵层,称为着床区(IZ)和腺体分泌区(GZ)。与促进生长和免疫调节相关的蜕膜自然杀伤细胞亚群(dNK1)和巨噬细胞亚群(dM2)主要局限于健康的IZ,但在RPL患者中显著减少。相比之下,细胞毒性CD8+ T细胞,稀疏分布在健康的蜕膜区,在RPL条件下在两个区都升高。空间细胞-细胞相互作用分析表明,在RPL患者的IZ中,免疫调节相互作用广泛存在,但明显下调。通过综合单细胞染色质可及性和转录因子占用分析,我们确定FOSL2是协调dNK1细胞空间转化的关键调节因子。FOSL2表达降低与il -15诱导的dNK1细胞转化受损和免疫调节能力下降相关。我们的研究结果描绘了人类蜕膜中免疫耐受的复杂空间和调控结构,为RPL中免疫耐受失调提供了新的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Spatial Transcriptomics of Human Decidua Identifies Molecular Signatures in Recurrent Pregnancy Loss.

The human decidua establishes immune tolerance at the maternal-fetal interface and is essential for successful embryo implantation and development. Here, we conducted a spatial transcriptomic analysis of human decidua from early pregnancies in both healthy donors and patients with recurrent pregnancy loss (RPL). Our analysis revealed two distinct spatial domains, named implantation zone (IZ) and glandular-secretory zone (GZ), corresponding to the layers of decidua compacta and spongiosa, respectively. The decidual natural killer cell subset (dNK1) and the macrophage subset (dM2), both associated with growth promotion and immune regulation, were predominantly localized in the healthy IZ but were significantly reduced in RPL patients. In contrast, cytotoxic CD8+ T cells, sparsely distributed in the healthy decidual domains, were elevated in both domains under RPL conditions. Spatial cell-cell interaction analysis indicated a broad exhibition but a marked downregulation of immunoregulatory interactions in the IZ of RPL patients. Through integrated single-cell chromatin accessibility and transcription factor occupancy analyses, we identified FOSL2 as a pivotal regulator orchestrating the spatial transformation of dNK1 cells. Decreased FOSL2 expression correlated with compromised IL-15-induced dNK1 cell transformation and diminished immunoregulatory capabilities. Our findings delineate the intricate spatial and regulatory architecture of immune tolerance within the human decidua, providing new insights into immune tolerance dysregulation in RPL.

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