4.8 Article

Patterning Cellular Alignment through Stretching Hydrogels with Programmable Strain Gradients

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 7, 期 27, 页码 15088-15097

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.5b04450

关键词

gradient hydrogels; programmable; cellular alignment; stress/strain; stiffness

资金

  1. National Natural Science Foundation of China [11372243, 11372279]
  2. Natural Science Basic Research Plan in Shaanxi Province of China [2015JQ1009]
  3. International Science & Technology Cooperation Program of China [2013DFG02930]
  4. Fundamental Research Funds for the Central Universities [2013QNA4045]
  5. Key Program for International S&T Cooperation Projects of Shaanxi [2013KW33-01, 2014KW12-01]
  6. China Young 1000-Talent Program
  7. Program for New Century Excellent Talents in University [NCET-12-0437]

向作者/读者索取更多资源

The graded mechanical properties (e.g., stiffness and stress/strain) of excellular matrix play an important role in guiding cellular alignment, as vital in tissue reconstruction with proper functions. Though various methods have been developed to engineer a graded mechanical environment to study its effect on cellular behaviors, most of them failed to distinguish stiffness effect from stress/strain effect during mechanical loading. Here, we construct a mechanical environment with programmable strain gradients by using a hydrogel of a linear elastic property. When seeding cells on such hydrogels, we demonstrate that the pattern of cellular alignment can be rather precisely tailored by substrate strains. The experiment is in consistency with a theoritical prediction when assuming that focal adhesions (FAs) would drive a cell to reorient to the directions where they are most stable. A fundamental theory has also been developed and is excellent in agreement with the complete temporal alignment Of cells. This work not only provides important insights into the cellular response to the local mechanical microenvironment but can also be utilized to engineer patterned cellular alignment that can be critical in tissue remodeling and regenerative medicine applications.

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