类有机物
自愈水凝胶
粘弹性
间充质干细胞
组织工程
基质(化学分析)
间质细胞
诱导多能干细胞
再生医学
材料科学
细胞生物学
生物物理学
纳米技术
生物医学工程
干细胞
生物系统
化学
生物
胚胎干细胞
工程类
生物化学
复合材料
基因
高分子化学
癌症研究
作者
Yu‐Hsuan Peng,Syuan‐Ku Hsiao,Krishna Gupta,A. Ruland,Günter K. Auernhammer,Manfred F. Maitz,Susanne Boye,Johanna Lattner,Claudia Gerri,Alf Honigmann,Carsten Werner,Elisha Krieg
出处
期刊:
[Cold Spring Harbor Laboratory]
日期:2022-10-08
被引量:2
标识
DOI:10.1101/2022.10.08.510936
摘要
Abstract 3D cell and organoid cultures, which allow in vitro studies of organogenesis and carcinogenesis, rely on the mechanical support of viscoelastic matrices. However, commonly used matrix materials lack rational design and control over key cell-instructive properties. Herein, we report a class of fully synthetic hydrogels based on novel DNA libraries that self-assemble with ultra-high molecular weight polymers, forming a dynamic DNA-crosslinked matrix (DyNAtrix). DyNAtrix enables, for the first time, computationally predictable, systematic, and independent control over critical viscoelasticity parameters by merely changing DNA sequence information without affecting the compositional features of the system. This approach enables: (1) thermodynamic and kinetic control over network formation; (2) adjustable heat-activation for the homogeneous embedding of mammalian cells; and (3) dynamic tuning of stress relaxation times over several orders of magnitude, recapitulating the mechanical characteristics of living tissues. DyNAtrix is self-healing, printable, exhibits high stability, cyto-and hemocompatibility, and controllable degradation. DyNAtrix-based 3D cultures of human mesenchymal stromal cells, pluripotent stem cells, canine kidney cysts, and human placental organoids exhibit high viability (on par or superior to reference matrices), proliferation, and morphogenesis over several days to weeks. DyNAtrix thus represents a programmable and versatile precision matrix, paving the way for advanced approaches to biomechanics, biophysics, and tissue engineering.
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