Microfluidic-templating alginate microgels crosslinked by different metal ions as engineered microenvironment to regulate stem cell behavior for osteogenesis

IF 8.1 1区 工程技术 Q1 MATERIALS SCIENCE, BIOMATERIALS Materials science & engineering. C, Materials for biological applications Pub Date : 2021-12-01 DOI:10.1016/j.msec.2021.112497
Yujie Zhang , Chuanfeng An , Yang Zhang , Haoyue Zhang , Abdullah Faqeer Mohammad , Qiao Li , Weijian Liu , Fei Shao , Jiayi Sui , Changle Ren , Kai Sun , Fang Cheng , Jia Liu , Huanan Wang
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引用次数: 13

Abstract

Cell microenvironment is a collection of dynamic biochemical and biophysical cues which functions as the key factor in determining cell behavior. Encapsulating single cell into micrometer-scale hydrogels which mimics the cell microenvironment can be used for single cell analysis, cell therapies, and tissue engineering. Here, we developed a microfluidics-based platform to engineer the niche environment at single cell level using alginate microgels crosslinked by different metal ions to regulate stem cell behavior for bone regeneration. Specifically, we revealed that Ca2+ in the engineered microenvironment promoted osteogenic differentiation of encapsulated stem cells and substantially accelerated the matrix mineralization compared to Sr2+ in vitro. However, the superior osteoinductive capacity of Ca2+ compared with Sr2+ led to comparable bone healing in a rat bone defect model. This attributed to Sr2+ in microgels to inhibit the osteoclast activity and bone resorption after implantation. In summary, the present study demonstrates metal ions as a critical factor in the environmental cues to affect cell behavior and influence the efficacy of stem cell-based therapy in tissue regeneration, and provides new insights to engineer an expecting microenvironment for regenerative medicine.

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由不同金属离子交联的微流体模板藻酸盐微凝胶作为工程微环境调节干细胞成骨行为
细胞微环境是动态生化和生物物理信号的集合,是决定细胞行为的关键因素。将单个细胞封装成微米级水凝胶,模拟细胞微环境,可用于单细胞分析,细胞治疗和组织工程。在这里,我们开发了一个基于微流体的平台,利用不同金属离子交联的海藻酸盐微凝胶在单细胞水平上设计生态位环境,以调节干细胞的骨再生行为。具体来说,我们发现工程微环境中的Ca2+促进了囊化干细胞的成骨分化,并且与体外的Sr2+相比,显著加速了基质矿化。然而,与Sr2+相比,Ca2+优越的骨诱导能力导致大鼠骨缺损模型中类似的骨愈合。这归因于植入后微凝胶中的Sr2+抑制破骨细胞活性和骨吸收。综上所述,本研究表明金属离子是影响细胞行为和影响干细胞治疗在组织再生中的效果的环境线索的关键因素,并为设计再生医学的预期微环境提供了新的见解。
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来源期刊
CiteScore
12.60
自引率
0.00%
发文量
28
审稿时长
3.3 months
期刊介绍: Materials Today is a community committed to fostering the creation and sharing of knowledge and experience in materials science. With the support of Elsevier, this community publishes high-impact peer-reviewed journals, organizes academic conferences, and conducts educational webinars, among other initiatives. It serves as a hub for advancing materials science and facilitating collaboration within the scientific community.
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