Post-Graduation Program in Dentistry, School of Dentistry, Ibirapuera University, São Paulo, Brazil.
Department of Restorative Dentistry, School of Dentistry, University of São Paulo, São Paulo, Brazil.
J Tissue Eng Regen Med. 2022 May;16(5):472-483. doi: 10.1002/term.3294. Epub 2022 Mar 4.
Angiogenesis is a key process that provides a suitable environment for successful tissue engineering and is even more crucial in regenerative endodontic procedures, since the root canal anatomy limits the development of a vascular network supply. Thus, sustainable and accelerated vascularization of tissue-engineered dental pulp constructs remains a major challenge in cell homing approaches. This study aimed to functionalize a chitosan hydrogel scaffold (CS) as a platform loaded with secretomes of stem cells from human exfoliated deciduous teeth (SHEDs) and evaluate its bioactive function and pro-angiogenic properties. Initially, the CS was loaded with SHED secretomes (CS-S), and the release kinetics of several trophic factors were assessed. Proliferation and chemotaxis assays were performed to analyze the effect of functionalized scaffold on stem cells from apical papilla (SCAPs) and the angiogenic potential was analyzed through the Matrigel tube formation assay with co-cultured of human umbilical vein endothelial cells and SCAPs. SHEDs and SCAPs expressed typical levels of mesenchymal stem cell surface markers. CS-S was able to release the trophic factors in a sustained manner, but each factor has its own release kinetics. The CS-S group showed a significantly higher proliferation rate, accelerated the chemotaxis, and higher capacity to form vascular-like structures. CS-S provided a sustained and controlled release of trophic factors, which, in turn, improved proliferation, chemotaxis and all angiogenesis parameters in the co-culture. Thus, the functionalization of chitosan scaffolds loaded with secretomes is a promising platform for cell homing-based tissue engineering.
血管生成是为组织工程成功提供合适环境的关键过程,在再生性牙髓治疗程序中更为重要,因为根管解剖结构限制了血管网络供应的发展。因此,组织工程牙髓构建体的可持续和加速血管化仍然是细胞归巢方法中的主要挑战。本研究旨在将壳聚糖水凝胶支架(CS)功能化为一个平台,该平台负载来自人脱落乳牙(SHED)的干细胞分泌组,并评估其生物活性功能和促血管生成特性。首先,将 CS 负载 SHED 分泌组(CS-S),并评估几种营养因子的释放动力学。进行增殖和趋化性测定,以分析功能化支架对根尖乳头干细胞(SCAP)的影响,并且通过共培养人脐静脉内皮细胞和 SCAP 的 Matrigel 管形成测定分析其血管生成潜力。SHED 和 SCAP 表达典型的间充质干细胞表面标志物。CS-S 能够以持续的方式释放营养因子,但每种因子都有其自己的释放动力学。CS-S 组显示出明显更高的增殖率,加速趋化性,并具有更高形成血管样结构的能力。CS-S 提供了营养因子的持续和控制释放,这反过来又改善了共培养物中的增殖、趋化性和所有血管生成参数。因此,负载分泌组的壳聚糖支架的功能化是基于细胞归巢的组织工程的有前途的平台。