婴儿血管瘤来源内皮细胞的三维微肿瘤形成机制探索和药物筛选。

Yanan Li, Xinglong Zhu, Meng Kong, Siyuan Chen, Ji Bao, Yi Ji
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引用次数: 4

摘要

婴儿血管瘤(IH)是婴儿最常见的血管瘤类型。IH的病理生理机制尚不清楚。二维细胞培养的组织结构和生理与体内组织结构和生理差异很大,并且在裸鼠肿瘤形成过程中经常发生自发退化,严重限制了对IH发病机制和发展的研究。通过对猪主动脉进行脱细胞处理,我们试图获得血管特异性的细胞外基质作为生物链接,通过微接触打印技术制造不同直径的微图案阵列。然后,我们构建了ih来源的CD31+血管瘤内皮细胞三维微肿瘤模型。血管特异性和去细胞化的细胞外基质适合于婴儿血管瘤源性内皮细胞的生长。根据RNA测序,KEGG信号通路分析显示,与二维细胞模型相比,KEGG主要在干细胞多能性、RAS和PI3KAkt中富集。还使用治疗IH的一线药物心得安来检验模型的适用性。我们还发现二甲双胍对这种情况有一定的影响。CD31+血管瘤内皮细胞三维微肿瘤模型是IH机制探索和药物筛选更为稳健有效的实验模型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Three-Dimensional Microtumor Formation of Infantile Hemangioma-Derived Endothelial Cells for Mechanistic Exploration and Drug Screening.

Three-Dimensional Microtumor Formation of Infantile Hemangioma-Derived Endothelial Cells for Mechanistic Exploration and Drug Screening.

Three-Dimensional Microtumor Formation of Infantile Hemangioma-Derived Endothelial Cells for Mechanistic Exploration and Drug Screening.

Three-Dimensional Microtumor Formation of Infantile Hemangioma-Derived Endothelial Cells for Mechanistic Exploration and Drug Screening.

Infantile hemangioma (IH) is the most prevalent type of vascular tumor in infants. The pathophysiology of IH is unknown. The tissue structure and physiology of two-dimensional cell cultures differ greatly from those in vivo, and spontaneous regression often occurs during tumor formation in nude mice and has severely limited research into the pathogenesis and development of IH. By decellularizing porcine aorta, we attempted to obtain vascular-specific extracellular matrix as the bioink for fabricating micropattern arrays of varying diameters via microcontact printing. We then constructed IH-derived CD31+ hemangioma endothelial cell three-dimensional microtumor models. The vascular-specific and decellularized extracellular matrix was suitable for the growth of infantile hemangioma-derived endothelial cells. The KEGG signaling pathway analysis revealed enrichment primarily in stem cell pluripotency, RAS, and PI3KAkt compared to the two-dimensional cell model according to RNA sequencing. Propranolol, the first-line medication for IH, was also used to test the model's applicability. We also found that metformin had some impact on the condition. The three-dimensional microtumor models of CD31+ hemangioma endothelial cells were more robust and efficient experimental models for IH mechanistic exploration and drug screening.

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