4.8 Article

Photoactive 3D-Printed Hypertensile Metamaterials for Improving Dynamic Modeling of Stem Cells

期刊

NANO LETTERS
卷 22, 期 1, 页码 135-144

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.nanolett.1c03472

关键词

3D printing; photoactive; hypertensile metamaterials; dynamic cell culture system; materials science

资金

  1. National Key Research and Development Program of China [2021YFF1000700]
  2. National Key Research and Dev elopment Program of China [2021YFF1000700, 2019YFA0802800]
  3. National Natural Science Foundation of China [21472090]
  4. Natural Science Foundation of Jiangsu Province [BK20180334]
  5. Fundamental Research Funds for Central Universities Nanjing University
  6. Key Research and Development Program of Jiangsu Provincial Department of Science and Technology of China [BE2019002]

向作者/读者索取更多资源

The developed photoactive 3D-printed hypertensile metamaterial-based dynamic cell culture system (MetaFold) can enhance cell activity and promote the differentiation efficacy of stem cells into cardiomyocytes, offering high-quality precious candidates for cell therapy.
Current three-dimensional (3D) cell culture systems mainly rely on static cell culture and lack the ability to thoroughly manage cell intrinsic behaviors and biological characteristics, leading to unsatisfied cell activity. Herein, we have developed photoactive 3D-printed hypertensile metamaterials based dynamic cell culture system (MetaFold) for guiding cell fate. MetaFold exhibited high elasticity and photothermal conversion efficiency due to its metapattern architecture and micro/nanoscale polydopamine coating, allowing for responding to mechanical and light stimulation to construct dynamic culture conditions. In addition, MetaFold possessed excellent cell adhesion capability and could promote cell viability and function under dynamic stimulation, thereby maximizing cell activity. Importantly, MetaFold could improve the differentiation efficacy of stem cells into cardiomyocytes and even their maturation, offering high-quality precious candidates for cell therapy. Therefore, we present a dual stimuli-responsive dynamic culture system, which provides a physiologically realistic environment for cell culture and biological study.

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