细胞骨架
化学
DNA
生物物理学
微管
纳米技术
分子马达
凝胶电泳
化学能
生物系统
化学物理
细胞生物学
生物化学
有机化学
细胞
材料科学
生物
作者
Yuliia Vyborna,Jean-Christophe Galas,André Estévez‐Torres
摘要
Living cells move and change their shape because signaling chemical reactions modify the state of their cytoskeleton, an active gel that converts chemical energy into mechanical forces. To create life-like materials, it is thus key to engineer chemical pathways that drive active gels. Here we describe the preparation of DNA-responsive surfaces that control the activity of a cytoskeletal active gel composed of microtubules: A DNA signal triggers the release of molecular motors from the surface into the gel bulk, generating forces that structure the gel. Depending on the DNA sequence and concentration, the gel forms a periodic band pattern or contracts globally. Finally, we show that the structuration of the active gel can be spatially controlled in the presence of a gradient of DNA concentration. We anticipate that such DNA-controlled active matter will contribute to the development of life-like materials with self-shaping properties.
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