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具有 DNA 编码粘弹性的动态基质用于细胞和类器官培养。

Dynamic matrices with DNA-encoded viscoelasticity for cell and organoid culture.

机构信息

Institute for Biofunctional Polymer Materials, Leibniz Institute of Polymer Research Dresden, Dresden, Germany.

Center for Regenerative Therapies Dresden, Cluster of Excellence Physics of Life and Faculty of Chemistry and Food Chemistry, Technische Universität Dresden, Dresden, Germany.

出版信息

Nat Nanotechnol. 2023 Dec;18(12):1463-1473. doi: 10.1038/s41565-023-01483-3. Epub 2023 Aug 7.

Abstract

Three-dimensional cell and organoid cultures rely on the mechanical support of viscoelastic matrices. However, commonly used matrix materials lack control over key cell-instructive properties. Here we report on fully synthetic hydrogels based on DNA libraries that self-assemble with ultrahigh-molecular-weight polymers, forming a dynamic DNA-crosslinked matrix (DyNAtrix). DyNAtrix enables computationally predictable and systematic control over its viscoelasticity, thermodynamic and kinetic parameters by changing DNA sequence information. Adjustable heat activation allows homogeneous embedding of mammalian cells. Intriguingly, stress-relaxation times can be tuned over four orders of magnitude, recapitulating mechanical characteristics of living tissues. DyNAtrix is self-healing, printable, exhibits high stability, cyto- and haemocompatibility, and controllable degradation. DyNAtrix-based cultures of human mesenchymal stromal cells, pluripotent stem cells, canine kidney cysts and human trophoblast organoids show high viability, proliferation and morphogenesis. DyNAtrix thus represents a programmable and versatile precision matrix for advanced approaches to biomechanics, biophysics and tissue engineering.

摘要

三维细胞和类器官培养依赖于粘弹性基质的机械支撑。然而,常用的基质材料缺乏对关键的细胞指令性特性的控制。在这里,我们报告了完全基于 DNA 文库的合成水凝胶,该水凝胶与超高分子量聚合物自组装,形成动态 DNA 交联基质 (DyNAtrix)。DyNAtrix 通过改变 DNA 序列信息,能够对其粘弹性、热力学和动力学参数进行可计算的、系统的控制。可调热激活允许哺乳动物细胞均匀嵌入。有趣的是,应力松弛时间可以在四个数量级上进行调节,再现了活组织的力学特性。DyNAtrix 具有自修复、可打印、高稳定性、细胞和血液相容性以及可控降解等特性。基于 DyNAtrix 的人基质间充质干细胞、多能干细胞、犬肾囊肿和人滋养层类器官培养物显示出高存活率、增殖和形态发生。因此,DyNAtrix 代表了一种可编程和通用的精密基质,可用于先进的生物力学、生物物理学和组织工程方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/eea6/10716043/b097119c47c0/41565_2023_1483_Fig1_HTML.jpg

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