Suppr超能文献

多能干细胞聚集体来源的细胞外基质支架的交联调节神经分化。

Crosslinking of extracellular matrix scaffolds derived from pluripotent stem cell aggregates modulates neural differentiation.

机构信息

Department of Chemical and Biomedical Engineering, FAMU-FSU College of Engineering, Florida State University, Tallahassee, FL, USA.

Department of Industrial and Manufacturing Engineering, FAMU-FSU College of Engineering, Florida State University, Tallahassee, FL, USA; High-Performance Materials Institute, Florida State University, Tallahassee, FL, USA.

出版信息

Acta Biomater. 2016 Jan;30:222-232. doi: 10.1016/j.actbio.2015.11.016. Epub 2015 Nov 11.

Abstract

UNLABELLED

At various developmental stages, pluripotent stem cells (PSCs) and their progeny secrete a large amount of extracellular matrices (ECMs) which could interact with regulatory growth factors to modulate stem cell lineage commitment. ECMs derived from PSC can be used as unique scaffolds that provide broad signaling capacities to mediate cellular differentiation. However, the rapid degradation of ECMs can impact their applications as the scaffolds for in vitro cell expansion and in vivo transplantation. To address this issue, this study investigated the effects of crosslinking on the ECMs derived from embryonic stem cells (ESCs) and the regulatory capacity of the crosslinked ECMs on the proliferation and differentiation of reseeded ESC-derived neural progenitor cells (NPCs). To create different biological cues, undifferentiated aggregates, spontaneous embryoid bodies, and ESC-derived NPC aggregates were decellularized. The derived ECMs were crosslinked using genipin or glutaraldehyde to enhance the scaffold stability. ESC-derived NPC aggregates were reseeded on different ECM scaffolds and differential cellular compositions of neural progenitors, neurons, and glial cells were observed. The results indicate that ESC-derived ECM scaffolds affect neural differentiation through intrinsic biological cues and biophysical properties. These scaffolds have potential for in vitro cell culture and in vivo tissue regeneration study.

STATEMENT OF SIGNIFICANCE

Dynamic interactions of acellular extracellular matrices and stem cells are critical for lineage-specific commitment and tissue regeneration. Understanding the synergistic effects of biochemical, biological, and biophysical properties of acellular matrices would facilitate scaffold design and the functional regulation of stem cells. The present study assessed the influence of crosslinked embryonic stem cell-derived extracellular matrix on neural differentiation and revealed the synergistic interactions of various matrix properties. While embryonic stem cell-derived matrices have been assessed as tissue engineering scaffolds, the impact of crosslinking on the embryonic stem cell-derived matrices to modulate neural differentiation has not been studied. The results from this study provide novel knowledge on the interface of embryonic stem cell-derived extracellular matrix and neural aggregates. The findings reported in this manuscript are significant for stem cell differentiation toward the applications in stem cell-based drug screening, disease modeling, and cell therapies.

摘要

未加标签

在不同的发育阶段,多能干细胞(PSCs)及其后代分泌大量细胞外基质(ECMs),这些基质可以与调节生长因子相互作用,调节干细胞谱系的定向。PSC 衍生的细胞外基质可用作独特的支架,为细胞分化提供广泛的信号能力。然而,细胞外基质的快速降解会影响其作为体外细胞扩增和体内移植支架的应用。为了解决这个问题,本研究探讨了交联对胚胎干细胞(ESCs)衍生细胞外基质的影响,以及交联细胞外基质对再接种 ESC 衍生神经祖细胞(NPC)增殖和分化的调节能力。为了产生不同的生物学线索,未分化的聚集体、自发胚状体和 ESC 衍生 NPC 聚集体被脱细胞化。用京尼平或戊二醛交联衍生的细胞外基质,以增强支架稳定性。将 ESC 衍生 NPC 聚集体接种到不同的细胞外基质支架上,观察神经祖细胞、神经元和神经胶质细胞的不同细胞组成。结果表明,ESC 衍生的细胞外基质支架通过内在的生物学线索和生物物理特性影响神经分化。这些支架具有用于体外细胞培养和体内组织再生研究的潜力。

意义声明

无细胞细胞外基质和干细胞的动态相互作用对于谱系特异性定向和组织再生至关重要。了解无细胞基质的生化、生物学和生物物理特性的协同作用将有助于支架设计和干细胞的功能调节。本研究评估了交联的胚胎干细胞衍生细胞外基质对神经分化的影响,并揭示了各种基质特性的协同相互作用。虽然胚胎干细胞衍生的基质已被评估为组织工程支架,但交联对胚胎干细胞衍生基质调节神经分化的影响尚未研究。本研究的结果提供了胚胎干细胞衍生细胞外基质与神经聚集体界面的新知识。本研究报告的结果对于将胚胎干细胞衍生的细胞外基质应用于基于干细胞的药物筛选、疾病建模和细胞治疗中的干细胞分化具有重要意义。

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验