建立基于明确细胞外基质和小分子的单层培养体系以扩增鼠和人肠道干细胞。

Towards a defined ECM and small molecule based monolayer culture system for the expansion of mouse and human intestinal stem cells.

机构信息

Division of BioEngineering in Medicine, Department of Medicine, Center for Regenerative Therapeutics, Brigham and Women's Hospital, United States; Harvard Medical School, United States; Harvard Stem Cell Institute, United States; Harvard - Massachusetts Institute of Technology (MIT) Division of Health Sciences and Technology, United States.

Division of BioEngineering in Medicine, Department of Medicine, Center for Regenerative Therapeutics, Brigham and Women's Hospital, United States; Harvard Medical School, United States; Harvard Stem Cell Institute, United States; Harvard - Massachusetts Institute of Technology (MIT) Division of Health Sciences and Technology, United States; David H. Koch Institute for Integrative Cancer Research at MIT, United States.

出版信息

Biomaterials. 2018 Feb;154:60-73. doi: 10.1016/j.biomaterials.2017.10.038. Epub 2017 Oct 26.

Abstract

Current ISC culture systems face significant challenges such as animal-derived or undefined matrix compositions, batch-to-batch variability (e.g. Matrigel-based organoid culture), and complexity of assaying cell aggregates such as organoids which renders the research and clinical translation of ISCs challenging. Here, through screening for suitable ECM components, we report a defined, collagen based monolayer culture system that supports the growth of mouse and human intestinal epithelial cells (IECs) enriched for an Lgr5 population comparable or higher to the levels found in a standard Matrigel-based organoid culture. The system, referred to as the Bolstering Lgr5 Transformational (BLT) Sandwich culture, comprises a collagen IV-coated porous substrate and a collagen I gel overlay which sandwich an IEC monolayer in between. The distinct collagen cues synergistically regulate IEC attachment, proliferation, and Lgr5 expression through maximizing the engagement of distinct cell surface adhesion receptors (i.e. integrin α2β1, integrin β4) and cell polarity. Further, we apply our BLT Sandwich system to identify that the addition of a bone morphogenetic protein (BMP) receptor inhibitor (LDN-193189) improves the expansion of Lgr5-GFP cells from mouse small intestinal crypts by nearly 2.5-fold. Notably, the BLT Sandwich culture is capable of expanding human-derived IECs with higher LGR5 mRNA levels than conventional Matrigel culture, providing superior expansion of human LGR5 ISCs. Considering the key roles Lgr5 ISCs play in intestinal epithelial homeostasis and regeneration, we envision that our BLT Sandwich culture system holds great potential for understanding and manipulating ISC biology in vitro (e.g. for modeling ISC-mediated gut diseases) or for expanding a large number of ISCs for clinical utility (e.g. for stem cell therapy).

摘要

目前的 ISC 培养体系面临着重大挑战,例如动物源性或未定义的基质组成、批次间变异性(例如基于 Matrigel 的类器官培养),以及类器官等细胞聚集体的检测复杂性,这使得 ISC 的研究和临床转化具有挑战性。在这里,通过筛选合适的细胞外基质(ECM)成分,我们报告了一种定义明确的基于胶原的单层培养系统,该系统支持富含 Lgr5 群体的小鼠和人肠道上皮细胞(IEC)的生长,其水平与标准的基于 Matrigel 的类器官培养相当或更高。该系统称为 Bolstering Lgr5 Transformational(BLT)三明治培养,由胶原 IV 涂层多孔基质和胶原 I 凝胶覆盖层组成,将 IEC 单层夹在中间。独特的胶原线索通过最大限度地利用不同细胞表面粘附受体(即整合素 α2β1、整合素β4)和细胞极性协同调节 IEC 附着、增殖和 Lgr5 表达。此外,我们应用我们的 BLT 三明治系统来确定添加骨形态发生蛋白(BMP)受体抑制剂(LDN-193189)可将从小鼠小肠隐窝中扩增的 Lgr5-GFP 细胞数量增加近 2.5 倍。值得注意的是,BLT 三明治培养能够以比传统 Matrigel 培养更高的 LGR5 mRNA 水平扩增人源性 IEC,从而更好地扩增人 LGR5 ISC。考虑到 Lgr5 ISC 在肠道上皮细胞稳态和再生中发挥的关键作用,我们设想我们的 BLT 三明治培养系统具有很大的潜力,可用于在体外理解和操纵 ISC 生物学(例如,用于模拟 ISC 介导的肠道疾病)或用于大量扩增 ISC 以用于临床应用(例如,用于干细胞治疗)。

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