首页> 外文期刊>Journal of Endodontics: Official Journal of American Association of Endodontists >In Vitro Analysis of Scaffold-free Prevascularized Microtissue Spheroids Containing Human Dental Pulp Cells and Endothelial Cells
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In Vitro Analysis of Scaffold-free Prevascularized Microtissue Spheroids Containing Human Dental Pulp Cells and Endothelial Cells

机译:不含人牙髓细胞和内皮细胞的无支架前血管化微组织球的体外分析

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Introduction: Scaffolds often fail to mimic essential functions of the physiologic extracellular matrix (ECM) that regulates cell-cell communication in tissue microenvironments. The development of scaffold-free microtissues containing stem cell derived ECM may serve as a successful alternative to the use of artificial scaffolds. The current study aimed to fabricate 3-dimensional microtissue spheroids of dental pulp cells (DPCs) prevascularized by human umbilical vein endothelial cells (HUVECs) and to characterize these scaffold-free spheroids for the in vitro formation of pulplike tissue constructs. Methods: Three-dimensional microtissue spheroids of DPC alone and DPC-HUVEC co-cultures were fabricated using agarose micro-molds. Cellular organization within the spheroids and cell viability (live/dead assay) were assessed at days 1, 7, and 14. Microtissue spheroids were allowed to self-assemble into macrotissues, induced for odontogenic differentiation (21 days), and examined for expression levels of osteo/odontogenic markers: alkaline phosphatase, bone sialoprotein and RUNX2 (Real-time PCR), mineralization (von-Kossa), and prevascularisation (immunohistochemistry for CD31). Results: The DPC microtissue microenvironment supported HUVEC survival and capillary network formation in the absence of a scaffolding material and external angiogenic stimulation. Immunohistochemical staining for CD31 showed the capillary network formed by HUVECs did sustain for a prolonged period even after the microtissues transformed into a macrotissue. Induced, prevascularized macrotissues showed enhanced differentiation capacity compared with DPC alone macrotissues, as shown by higher osteo/odontogenic gene expression levels and mineralization. Conclusions: These findings provide insight into the complex intercellular cross talk occurring between DPCs and HUVECs in the context of angiogenesis and pulp regeneration and highlight the significance of developing a favorable 3-dimensional microenvironment that can, in turn, contribute toward successful pulp regeneration strategies.
机译:简介:支架通常无法模仿调节组织微环境中细胞间通讯的生理性细胞外基质(ECM)的基本功能。不含干细胞衍生的ECM的无支架微组织的发展可以作为使用人工支架的成功替代方案。当前的研究旨在制造由人脐静脉内皮细胞(HUVEC)预血管化的牙髓细胞(DPC)的3维微组织球体,并表征这些无支架球体用于体外形成牙髓样组织构造。方法:使用琼脂糖微模具制备单独的DPC和DPC-HUVEC共培养物的三维微球体。在第1、7和14天评估球体内的细胞组织和细胞活力(活/死试验)。使微组织球体自组装成大组织,诱导成牙本质分化(21天),并检查表达水平骨/牙源性标记:碱性磷酸酶,骨唾液蛋白和RUNX2(实时PCR),矿化(von-Kossa)和血管生成前(CD31的免疫组织化学)。结果:在没有支架材料和外部血管生成刺激的情况下,DPC微组织微环境支持了HUVEC生存和毛细血管网络的形成。 CD31的免疫组织化学染色显示,即使在微组织转化为大组织后,HUVEC形成的毛细血管网络也能维持较长时间。与较高的骨/牙源性基因表达水平和矿化作用相比,诱导的,血管形成前的大组织与单独的DPC相比显示出增强的分化能力。结论:这些发现提供了对在血管生成和牙髓再生的背景下DPC和HUVEC之间发生的复杂细胞间串扰的见解,并突出了开发有利的三维微环境的重要性,该环境反过来又有助于成功的牙髓再生策略。

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