Foxa1 disruption enhances human cell integration in human-mouse interspecies chimeras.

IF 3.2 3区 生物学 Q3 CELL BIOLOGY
Cell and Tissue Research Pub Date : 2025-02-01 Epub Date: 2024-12-21 DOI:10.1007/s00441-024-03941-3
Li-Na Wang, Jun-Shuang Jia, Xing-Long Yang, Yue-Ting Wen, Jing-Xian Liu, Deng-Ke Li, Xing-Rui Chen, Jia-Hong Wang, Ji-Ke Li, Zhong-Xi Huang, Kai-Tai Yao
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引用次数: 0

Abstract

Blastocyst complementation can potentially generate a rodent model with humanized nasopharyngeal epithelium (NE) that supports sustained Epstein-Barr virus (EBV) infection, enabling comprehensive studies of EBV biology in nasopharyngeal carcinoma. However, during this process, the specific gene knockouts required to establish a developmental niche for NE remain unclear. We performed bioinformatics analyses and generated Foxa1 mutant mice to confirm that Foxa1 disruption could potentially create a developmental niche for NE. Subsequently, MYD88-inactivated human pluripotent stem cells (hPSCs) were constructed and complemented with Foxa1-deficient mouse blastocysts, with Nosip-deficient mouse blastocysts as a control. The chimerism of human cells in mouse embryos was evaluated from E8.5 to E12.5 using genomic DNA PCR and immunohistochemistry. Our bioinformatics analysis indicated that the expression patterns of Foxa1 in E8.5 to E16.5 mouse embryos underscore its critical role in NE development. The generated mice with Foxa1 disordered region mutations displayed morphological abnormality in NE, suggesting Foxa1-knockouts could potentially establish a developmental niche for NE. In chimeric assays, human cells integrated into 80.00% of Foxa1-deficient embryos, compared with the 4.17% in controls. Immunohistochemistry results revealed robust proliferation of human cells in Foxa1-deficient mouse embryos. However, chimeras from Foxa1-deficient mouse embryos did not survive beyond E10.5, hindering the evaluation of human cell integration in mouse NE. Foxa1 disruption in mouse embryos significantly enhances the integration of human cells in human-mouse interspecies chimeras, thereby facilitating the generation of endoderm-derived organs through blastocyst complementation. Overcoming chimeras' embryonic lethality is crucial for successfully generating humanized NE in Foxa1-deficient mouse embryos.

Foxa1的破坏增强了人-小鼠种间嵌合体中人类细胞的整合。
囊胚互补可能产生具有人源化鼻咽上皮(NE)的啮齿动物模型,该模型支持eb病毒(EBV)的持续感染,从而使EBV生物学在鼻咽癌中的全面研究成为可能。然而,在这一过程中,为NE建立发育生态位所需的特定基因敲除仍不清楚。我们进行了生物信息学分析,并产生了Foxa1突变小鼠,以证实Foxa1的破坏可能会为NE创造一个潜在的发育生态位。随后,构建了myd88失活的人多能干细胞(hPSCs),并与foxa1缺陷小鼠囊胚进行了互补,nosip缺陷小鼠囊胚作为对照。采用基因组DNA PCR和免疫组织化学方法评价E8.5 ~ E12.5阶段人细胞在小鼠胚胎中的嵌合性。我们的生物信息学分析表明,Foxa1在E8.5至E16.5小鼠胚胎中的表达模式强调了它在NE发育中的关键作用。Foxa1紊乱区突变的小鼠在NE中表现出形态异常,这表明Foxa1敲除可能为NE建立了一个潜在的发育生态位。在嵌合实验中,人类细胞融入了80.00%的foxa1缺陷胚胎,而对照组的这一比例为4.17%。免疫组化结果显示,foxa1缺陷小鼠胚胎中人类细胞增殖强劲。然而,来自foxa1缺陷小鼠胚胎的嵌合体不能存活超过E10.5,这阻碍了人类细胞在小鼠NE中的整合评估。小鼠胚胎中Foxa1的破坏显著增强了人-小鼠种间嵌合体中人类细胞的整合,从而促进了囊胚互补产生内胚层来源器官。克服嵌合体的胚胎致死性是在foxa1缺陷小鼠胚胎中成功产生人源化NE的关键。
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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来源期刊
Cell and Tissue Research
Cell and Tissue Research 生物-细胞生物学
CiteScore
7.00
自引率
2.80%
发文量
142
审稿时长
1 months
期刊介绍: The journal publishes regular articles and reviews in the areas of molecular, cell, and supracellular biology. In particular, the journal intends to provide a forum for publishing data that analyze the supracellular, integrative actions of gene products and their impact on the formation of tissue structure and function. Submission of papers with an emphasis on structure-function relationships as revealed by recombinant molecular technologies is especially encouraged. Areas of research with a long-standing tradition of publishing in Cell & Tissue Research include: - neurobiology - neuroendocrinology - endocrinology - reproductive biology - skeletal and immune systems - development - stem cells - muscle biology.
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