Compositional editing of extracellular matrices by CRISPR/Cas9 engineering of human mesenchymal stem cell lines

间充质干细胞 清脆的 干细胞 再生医学 组织工程 基因组编辑 细胞生物学 生物 软骨内骨化 软骨 计算生物学 遗传学 解剖 基因
作者
Sujeethkumar Prithiviraj,Alejandro García,Karin Linderfalk,Bai Yiguang,Sonia Ferveur,Ludvig Nilsén Falck,Agatheeswaran Subramaniam,Sofie Mohlin,David Hidalgo,Steven J. Dupard,Dimitra Zacharaki,Deepak Raina,Paul Bourgine
标识
DOI:10.1101/2023.07.28.550935
摘要

Abstract Tissue engineering strategies predominantly rely on the production of living substitutes, whereby implanted cells actively participate in the regenerative process. Beyond cost and delayed graft availability, the patient-specific performance of engineered tissues poses serious concerns on their clinical translation ability. A more exciting paradigm consists in exploiting cell-laid, engineered extracellular matrices (eECM), which can be used as off-the-shelf materials. Here, the regenerative capacity solely relies on the preservation of the eECM structure and embedded signals to instruct an endogenous repair. We recently described the possibility to exploit custom human stem cell lines for eECM manufacturing. In addition to the conferred standardization, the availability of such cell lines opened avenues for the design of tailored eECMs by applying dedicated genetic tools. In this study, we demonstrated the exploitation of CRISPR/Cas9 as a high precision system for editing the composition and function of eECMs. Human mesenchymal stromal/stem cell (hMSC) lines were modified to knockout VEGF and RUNX2 and assessed for their capacity to generate osteoinductive cartilage matrices. We report the successful editing of hMSCs, subsequently leading to targeted VEGF and RUNX2-knockout cartilage eECMs. Despite the absence of VEGF, eECMs retained full capacity to instruct ectopic endochondral ossification. Conversely, RUNX2-edited eECMs exhibited impaired hypertrophy, reduced ectopic ossification and superior cartilage repair in a rat osteochondral defect. In summary, our approach can be harnessed to identify the necessary eECM factors driving endogenous repair. Our work paves the road towards the compositional eECMs editing and their exploitation in broad regenerative contexts.

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